Showing posts with label Xenarthra. Show all posts
Showing posts with label Xenarthra. Show all posts

Wednesday, 18 November 2020

Panochthus sp.: Preserved tracheal rings in a Late Pleistocene Glyptodont Mammal from Argentina.

The trachea of Mammals is a relatively flexible cartilaginous and membranous tube that extends from the cricoid cartilage of the larynx to the middle mediastinum, where it bifurcates into the main bronchi. The framework of the trachea is formed by C-shaped plates of hyaline cartilage ('tracheal rings'). These vary in shape according to the species and in some cases according to the location on the trachea. The number also varies according to the species. The cartilaginous rings provide the tube: (i) some rigidity, otherwise it would collapse as the lungs expand; (ii) some expansion, to be able to accommodate any increase in air volume, by means of the flexibility of the hyaline cartilage, and the dorsal incompleteness of the rings; and (iii) flexibility and extensibility, to be able to follow the movements of the head, neck and larynx. Tracheal cartilages originate from the splanchnic mesoderm and form the true tracheal skeleton.

Xenarthrans are a particular group of Mammals, characteristic of the Neotropical Region, widely represented in the South American fossil record, both in temporal extension and frequency of records. The Family Glyptodontidae is a group of armored Xenarthrans, whose representatives reached large to very large sizes, even exceeding 2300 kg, and are recorded from the middle Eocene to the early Holocene. From an evolutionary stand point, the evidence strongly suggests that Glyptodonts are a monophyletic group.

Panochthus is one of the most abundant and diversified Glyptodontids of the South American Pleistocene, as well as one of the largest Cingulata. Likewise, it is also among the most abundantly recorded groups in the Pampean region. Together with Glyptodon they are the most widely distributed Glyptodontids in South America, both latitudinally and altitudinally.

In a paper published in the journal Acta Palaeontologica Polonica on 7 February 2020, Martín Zamorano of the División Paleontología de Vertebrados at the Museo de La Plata, describe several fragments of tracheal rings and the cricoid cartilage assigned to Panochthus sp. Zamorano intends to contribute to the understanding of these cartilages, which allow the indispensable entry of oxygen into a Mammal body, an issue that is poorly studied in the extant Mammals and seemingly never studied in extinct forms.

The fossil material was found on the right margin of the Salado River, near the city of General Belgrano, Buenos Aires, Argentina. The remains were collected in sediments of the Luján Formation dated between about 14 and 12 thousand years ago (Late Pleistocene), in the transitional limit between La Chumbiada Member (about 14 to 12 thousand years old, Lujanian Stage/Age) and Gorch Member (about 11.5 to 5 thousand years old), downstream the Paraje La Chumbiada, near Estancia La Invernada. In Paraje La Chumbiada, a gray to black clayey deposit has been interpreted as a palaeolagoon, in which several remains of fossil Mammals were collected (Hippidion principale, Smilodon populator, Doedicurus clavicaudatus, and Megatherium americanum, among others), which corroborated the age of the level.

 
(A) Geographic location of studied area within Buenos Aires Province, Argentina (inset) near General Belgrano city, Los Tobianos Farm, asterisk indicates where the studied specimen was discovered. (B) Photo of the outcroup along the Salado River right bank, the site where Panochthus sp. (MHM-P 87) was found. Zamorano (2020).

In general, the material recovered in the area where the remains studied here were collected are exceptionally preserved. Fossils of Mammals recovered in this area contain large amounts of preserved collagen, and mummified exoskeletons of Insects were found. The high percentage of collagen preserved is a rare condition with respect to the rest of the Pleistocene deposits of the Pampas region, and this is probably what allowed the exceptional preservation of the cartilage studied by Zamorano.

The fossil specimen described here was compared with tracheal rings and cricoid cartilage of domestic mammals, whose shape has been studied in detail, e.g. Bos primigenius taurus (Artiodactyla, Bovidae), Canis lupus familiaris (Carnivora, Canidae), Capra aegagrus hircus (Artiodactyla, Bovidae), Equus ferus caballus (Perissodactyla, Equidae), Felis silvestris catus (Carnivora, Felidae), Ovis orientalis aries (Artiodactyla, Bovidae), and Sus scrofa domestica (Artiodactyla, Suidae). Zamorano also used wild Mammals for comparison, but only through literature, e.g. Cerdocyon thous (Carnivora, Canidae), Didelphis sp. (Didelphimorphia, Didelphidae), Hydrochoerus hydrochaeris (Rodentia, Caviidae), Mirounga angustirostris (Carnivora, Phocidae), Odobenus rosmarus (Carnivora, Odobenidae), Ursus maritimus (Carnivora, Ursidae), Phoca vitulina (Carnivora, Phocidae), and Zalophus californianus (Carnivora, Otariidae).

The specimen, MHM-P 87, comprises twenty-three fragments of tracheal rings, including fragments that probably belong to the crioid cartilage. The specimen consists of part of the skull (badly preserved), mandibular rami, postcranial bones (both humeri, radii-ulnae, both femurs, tibiae-fibulae, several elements of the carpus and tarsus, thoracic and lumbar vertebrae, cervical ribs) and the almost complete dorsal carapace. Because of the exceptional preservation of this material, fragments of tracheal rings, the crycoid cartilage and, some elements of the hyoid apparatus could be identified.

The tracheal cartilages are mostly small and fragile fragments; their thickness does not exceed 3 mm. Twenty-three fragments of these tracheal rings were found, twelve of them belong exclusively to lateral sectors 19–54 mm in length and 6–8 mm in width. The three longest of these last fragments are fully curved (none of them cover the lateral sector completely), whereas the other nine are almost straight. Eight fragments belong to ventral portions of the rings; in this category are also included fragments of fused ventral and lateral portions, three of them, the largest ones, probably belong to the cricoid cartilage (this latter is similar in shape to a tracheal ring, although larger). A tracheal ring was reconstructed; it is 80 mm high and 60 mm wide. Its diameter occupies approximately 15% of the skull height (without the mandible). The tracheal rings of Panochthus sp. would belong to a cylindrical trachea, slightly flattened on the dorsal and ventral sides, the free ends of each ring (that is, on its dorsal side) overlap, the left one above the right one.

 
Tracheal cartilages of Glyptodont Mammal Panochthus sp. (MHM-P 87) from the Late Pleistocene of General Belgrano, Argentina, in ventral views. Lateral (A₁), ventral and ventro-lateral (A₂) portions, fragment of cricoid cartilage (A₃) in ventral views. Zamorano (2020).

Among domestic Mammals, it is similar to those of Sus scrofa domestica, whereas among wild Mammals it is similar to those of Zalophus californianus. Tracheal rings of Sus scrofa scrofa, a wild subspecies similar to its conspecific, are also similar, but those of Zalophus californianus resemble even more those of Panochthus sp., since these rings are flattened dorsally and ventrally, and not as in cross section as those of Sus scrofa scrofa. Noteworthy, in Sus scrofa domestica and Zalophus californianus the shape of the rings is constant along the entire trachea, as well as the overlapping of their free ends. It has to be taken into account that the free ends of the tracheal cartilage of living Mammals (in this case Sus scrofa domestica and Zalophus californianus) are practically in contact, because the tracheal muscle holds them together, whereas in the fossils of Panochthus sp. these free ends are more widely separated.

 
Cartilages present in the neck of Glyptodont Mammal Panochthus sp. compared with Recent California Sea Lion and Domestic Pig. (A) Thyroid, cricoid, and tracheal cartilages in ventral view; generalised Mammal (A₁), Panochthus sp. (A₂). (B) Explanatory drawing of the Panochthus sp. skull in lateral view, with hyoid apparatus and tracheal rings. (C)–(E) Tracheal rings in anterior view. (C) Panochthus sp. (MHM-P 87). (D) California Sea Lion, Zalophus californianus. (E) Domestic Pig, Sus scrofa domestica. Abbreviations: cc, cricoid cartilage; hy, hyoid apparatus; mr, mandibular rami; sk, skull; tc, thyroid cartilage; tr, tracheal rings. Zamorano (2020).

During inspiration the air pressure is lower in the trachea than the atmospheric pressure, and without the tracheal rings, the trachea would collapse. For this reason the tracheal rings are totally indispensable for animals with lung breathing. In Mammals these rings have the only basic and fundamental function of maintaining an open channel that allows the circulation of air from the larynx to the lungs and vice versa. A previous comparative analysis studied the structure and rigidity of the tracheae of Marine Mammals and observed how the flow of air circulating through the tracheae behaved during diving. The rigidity of the trachea, deduced from the shape of the rings, is expressed in the capacity not to collapse. For some authors, this rigidity is an adaptation of Marine Mammals. However, several previous studies stated that it is similar to the rigidity of the tracheae of Terrestrial Mammals. In this sense, it has been suggested that Sus scrofa (Sus scrofa crofa and Sus scrofa domestica) is the Terrestrial Mammal most similar to Marine Mammals. In turn, Donald Harrison and Susan Denny suggested that the influence of the shape and size of tracheal rings has to be taken into account on the running speed reached by mammals. To test this hypothesis, they used the relationship between the area occupied by the glottis lumen, the tracheal lumen (generated by the tracheal ring) and the body mass. In fossil Mammals, these relationships cannot be calculated as a whole. Although the body mass has been estimated in several species of different groups the surface of the glottis lumen is unknown, and as for the lumen of the trachea, Zamorano's contribution is the first to report, figures and describes a tracheal ring of a fossil Mammal. Tracheal rings have only previously been published in extinct Birds: Llallawavis scagliai (Cariamiformes, Phorusrhacidae) and Vegavis iaai (Anseriformes, Vegaviidae); and other dinosaurs: Scipionyx samniticus (Theropoda, Coelurosauria).

In the literature, data on cricoid cartilage and tracheal rings of living Xenarthrans are very scarce. Virginia Naples states that the cricoid cartilage is partially ossified in the skull of the Giant Anteater Myrmecophaga tridactyla, and that small movements between this and the back of the tracheal rings are likely; in Myrmecophaga tridactyla the trachea begins at the sixth cervical. For the Folivores, it has been reported that the differences in length of the trachea between the Tree Sloths, Choloepus, in which it is extremely short and Bradypus, in which it is very long (25-28 cm) and would be probably correlated with the wide range of movement between the neck and the head.

Thanks to exceptional preservation conditions, three cartilaginous structures of the neck of a Glyptodontid referred to the genus Panochthus are preserved, corresponding to a first record in an extinct Mammal. Two of these structures belong to the laryngeal zone, the thyroid cartilage described in was described in a previous study and the cricoid cartilage, and the third originates in the tracheal zone, the cartilages of the tracheal rings; the last two structures are presented in Zamorano's new communication.

In summary, the tracheal rings of Panochthus sp. correspond to a cylindrical trachea, slightly flattened on the dorsal and ventral sides, the free ends of each ring overlap, the left one above the right one. Similar to those of Sus scrofa domestica and Zalophus californianus, but those of  Zalophus californianus resemble even more those of Panochthus sp., since these rings are flattened dorsally and ventrally.

There are currently no other studies on tracheal rings in extinct Mammals and in extant Xenartrans; similar studies in extant Xenartrans would provide valuable information on their adaptations. Future, more detailed analyses of the MHM-P 87, and possibly new findings of exceptionally preserved fossils could provide information on the palaeobiological implications of this structure in Glyptodonts. Likewise, the new data on the trachea and its adaptations in Glyptodonts would allow to make inferences in other fossil Mammals.

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Tuesday, 17 November 2020

Lestodon armatus: Understanding the ecology and behaviour of a Late Pleistocene Ground Sloth from the Argentine Pampas.

In recent years there have been multiple studies on the Quaternary South American Megamammals (Mammals with an estimated body mass at least 1000 kg), including Ground Sloths. Even so, there are several aspects of their life history that have not been addressed in detail, such as growth patterns, diseases, social behavior, habitat preference, feeding strategies, and trophic relationships with other mammals, both endemic to South America and immigrants from North America. Sloths (Xenarthra, Folivora), are one of the most conspicuous groups of Mammals, include representatives of, at least, five monophyletic families, Bradypodidae, Megalonychidae, Megatheriidae, Mylodontidae, and Nothrotheriidae. Representatives of this clade were very abundant and diverse in the Quaternary terrestrial ecosystems in South America. The extinction of Ground Sloths occurred in the late Pleistocene-early Holocene, along with that of the remaining Megamammals; it has been proposed that the main causes of the extinction could be related to climate and environmental changes, diseases, Human action, and combinations thereof. They have no ecological analogues living today, as extant sloths are only represented by obligatory arboreal species of Bradypus (Three-toed Sloths) and Choloepus (Two-toed Sloths), which are restricted to the Neotropical rain forests.

The ground sloth Lestodon armatus is the only valid species of the genus for the Quaternary; it is the largest representative of Mylodontidae, with an estimated body mass of about 3400–4100 kg for adult individuals. Remains assigned to this taxon are particularly abundant in late Pleistocene-early Holocene deposits of central Argentina, but there are also records in Brazil, Uruguay, Bolivia and Paraguay.

In a paper published in the journal Scientific Reports on 2 July 2020, Rodrigo Tomassini of the Departamento de Geología at the Universidad Nacional del Sur, Claudia Montalvo of the Facultad de Ciencias Exactas y Naturales at the Universidad Nacional de La Pampa, Mariana Garrone, also of the Departamento de Geología at the Universidad Nacional del Sur, Laura Domingo of the Departamento de Geodinámica, Estratigrafía y Paleontología at the Universidad Complutense de Madrid, and the Earth and Planetary Sciences Department at the University of California Santa Cruz, Jorge Ferigolo of the Museu de Ciências Naturais, Laura Cruz of the Museo Argentino de Ciencias Naturales, Dánae Sanz‑Pérez, also of the Departamento de Geodinámica, Estratigrafía y Paleontología at the Universidad Complutense de Madrid, Yolanda Fernández‑Jalvo of the Departamento de Paleobiología at the Museo Nacional de Ciencias Naturales, and Ignacio Cerda of the Instituto de Investigación en Paleobiología y Geología at the Universidad Nacional de Río Negro and Museo Carlos Ameghino, perform a multi-proxy analysis of a late Pleistocene assemblage constituted by several individuals of different ontogenetic stages assigned to the Giant Ground Sloth Lestodon armatus, from the Pampean Region of Argentina. Diverse taphonomic, pathological, osteohistological, and isotopic issues are evaluated in order to interpret and discuss palaeoecological and palaeobiological aspects of this species and the genesis of the assemblage.

A dating of 19 849 year before present (using a Lestodon armatus vertebra) places the studied Lestodon armatus assemblage at the end of the Last Glacial Maximum. Although the timing of Megamammal extinction in South America is not well-constrained, it seems that this phenomenon occurred since about 40 000 years ago, with an accelerated pace starting at about 13 500 years ago. Therefore, Tomassini et al.'s study provides novel information, based on multiple lines of evidence, on the life history of one of the largest members of the Quaternary fauna under an extinction scenario.

The Pampean Region of Argentina is characterised by several continental Pleistocene sites, some recognised from the nineteenth century by their palaeontological richness. Mammal assemblages recovered in this area are of great importance and have constituted the basis to define the biochronostratigraphical schemes used in several regions of South America. Playa del Barco is a fossiliferous locality in southwestern Buenos Aires Province, Argentina. There have been few studies on its geology and palaeontology due to the discontinuity of the outcrops, the reduced areal distribution, and the location in the current intertidal zone, which implies that they are usually covered by beach sand and are visible only during extreme low tides; however, several researchers highlighted the abundance and diversity of continental Vertebrate remains.

 
Geographical and stratigraphical settings of Playa del Barco site. (A) Map showing the location of the fossiliferous site in the coast of Buenos Aires Province (in red color). (B) Stratigraphic section of Playa del Barco site showing the different Quaternary levels. (C) View of the Upper Pleistocene bearing level; note the presence of several Lestodon armatus specimens. Abbreviations: MP cd, Middle Pleistocene continental deposits; UP cd, Upper Pleistocene continental deposits; H md, Holocene marine deposits. Tomassi et al. (2020).

Most skeletal elements are represented in the sample, but calcaneus, pelves, and sacral vertebrae are absent. The average value of relative abundance is low, 20.6%. There are no skeletal elements with relative abundance values of 70% or higher. The atlas displays the highest value, with 69.2%, followed by hemimandibles, hemimaxillae, tibiae, thoracic vertebrae, and scapulae. The remaining elements have values are lower than 20%. All the indicators proposed to evaluate the susceptibility of the skeletal elements to be transported by water flows are recorded in the sample.

 
Relative abundance (%Ri) of Lestodon armatus skeletal elements from Playa del Barco site. Note that there are no skeletal elements with relative abundance values between 81 and 100%. No differentiation was made between left- and right-side elements. Tomassini et al. (2020).

Specimens of Lestodon armatus were distributed in a small area (about 500 m²), all of them disarticulated and isolated, but in close spatial proximity to one another. Broken specimens predominate in the assemblage. Complete specimens are mainly represented by metapodials and phalanges, but also include astragali, different long bones (humerus, ulna, tibia, and fibula), and thoracic and caudal vertebrae. Two almost complete skulls were recovered, although most of the cranial elements correspond to maxillae fragments. All the hemimandibles lack totally or partially the posterior portion. In most cases, both hemimaxillae and hemimandibles retain all teeth. Broken long bones mainly show smooth transverse fractures (about 90%), although stepped fractures (~ 10%) are also recorded. Ribs are mainly broken at the middle or distal portions, and show smooth transverse fractures, whereas most vertebrae do not preserve the processes. All scapulae are broken and represented by small portions.

 
Taphonomic features of the Lestodon armatus specimens from Playa del Barco site. (A) MD-PDB-85-105, skull (dorsal view) with the anterior portion broken. (B) MD-PDB-85-106, skull (dorsal view) with the anterior portion broken. (C) MD-PDB-99-63, right hemimandible with complete dental series, lacking part of the posterior portion. (D) MD-PDB-85-17, right hemimandible with complete dental series, lacking part of the posterior portion. (E) MACN-PV-9478, distal portion of humerus showing a transversal fracture. (F) MD-PDB-05-148, fragment of rib with signs of weathering (slight splitting). (G) MD-PDB-85-150, metapodial with signs of abrasion (slight rounding). (H) MD-PDB-85-152, right hemimandible with crenulated edges in the posterior border, related with predators/scavengers activity. (I) MD-PDB-85-176, atlas with crenulated edges in the transverse processes, related with predators/scavengers activity. (J) Details of the marks on the vertebra shown in (I). Tomassini et al. (2020).

Specimens with weathering show slight splitting parallel to the fiber structure, some of them reflect changes in the humidity, possibly related to water immersion and exposure events. Teeth (both isolated and retained in the alveoli) present slight splitting of dentine and orthodentine. Specimens with abrasion have slight rounding on the broken edges and ridges. Predation/scavenging marks, observed in vertebrae and hemimandibles, are represented by crenulated edges. Tomassini et al. did not recognise any trampling marks.

Pathological alterations are present in 41 skeletal elements (about 14% of the sample). The affected elements include cervical, thoracic, lumbar, and caudal vertebrae, ribs, metapodials, and phalanges. Evidences of palaeopathologies were also identified in long bones of Lestodon armatus from other fossiliferous localities of the Pampean Region. All types of vertebrae have osteophytes or bony spurs, which are mostly located in the margins of the vertebral body, but also in the costal articular facets of thoracic vertebrae; some osteophytes of thoracic and caudal vertebrae are very large and could have been part of intervertebral bone bridges. One cervical vertebra has subchondral erosion in the posterior vertebral endplate. Several thoracic vertebrae display reduced height, asymmetry in the shape/size of zygapophyses, transverse processes and neural arch, deformity of the spinous process, ossification of the ventral vertebral ligament, subchondral erosion in the vertebral endplates, and osteoporotic cancellous bone. Lumbar vertebrae show subchondral erosion in the vertebral endplates, deformity of the vertebral body (related to osteoporosis), and asymmetry of the neural arch. Caudal vertebrae also show destruction of the posterior surface of the vertebral body, and subchondral erosion in the vertebral endplates. Ribs display irregular bone surface and ossification of ligaments. Metapodials and phalanges present small osteophytes and irregular bone surface.

 
Palaeopathological features of the Lestodon armatus specimens from Playa del Barco site. (A) MD-PDB-85-144, thoracic vertebra (right lateral view) with a very large osteophyte in the ventral margin of the vertebral body, possibly as part of an intervertebral bone bridge. (B) Detail of the osteophyte on the vertebra shown in A. (C), (D) MD-PDB-85-55, cervical vertebra (C) anterior view; (D) posterior view, with several osteophytes in the margins of the vertebral body (black arrow) and subchondral erosion in the posterior vertebral endplate (gray arrow). (E), (F) MD-PDB-85-52, thoracic vertebra (E) anterior view; (F) posterior view, with reduced height, several osteophytes in the margins of the vertebral body (black arrows), and discrete asymmetry in the neural arch. (G), (H) MD-PDB-84-8, thoracic vertebra (G) anterior view; (H) posterior view, with reduced height, several osteophytes in the margin of the vertebral body (black arrows), discrete arthrosis in the zygapophyses, and asymmetry in the neural arch. (I) MD-PDB-85-145, lumbar vertebrae (anterior view) with several osteophytes in the margin of the vertebral body (black arrow), subchondral erosion in the vertebral endplates (gray arrow), deformity of the vertebral body, and asymmetry of the neural arch. (J) MD-PDB-85-74, caudal vertebra (posterior view) with several osteophytes in the margin of the vertebral body (black arrow), and destruction of the posterior surface of the vertebral body. (K) MD-PDB-05-50, caudal vertebra (posterior view) with subchondral erosion (black arrow). (L) MD-PDB-05-139, rib with irregular bone surface and ossification of ligaments. (M) MD-PDB-85-250, metapodial with osteophytes (black arrow). Tomassini et al. (2020).

Spinous vertebral processes of juvenile, adult, and senile individuals show a compact cortex surrounding a medullary cavity constituted by trabecular tissue. Primary bone tissue is present in the compact cortex of both juvenile and adult individuals. The primary bone matrix grades from parallel fibered to lamellar bone tissue. Osteocyte lacunae exhibit elongated shapes. Vascularisation is reduced, characterised by the presence of randomly arranged longitudinal channels. Primary bone tissue is well developed in the middle and outer portions of the juvenile individual, while in the adult individual it is restricted to a thin subperiosteal layer. Primary bone tissue of the juvenile individual includes abundant Sharpey’s fibers bundles and three lines of arrested growth. Secondary remodeling of compact bone is recorded in both individuals, represented in some sectors by Haversian bone with at least three partly overlapping generations of secondary osteons and resorption cavities. Haversian bone is clearly more extensive in the adult individual than in the juvenile. The cortical bone of the senile individual is completely remodeled, formed by Haversian bone with, at least, three partly overlapping generations of secondary osteons and resorption cavities. Cancellous bone in all the individuals is formed by secondarily deposited lamellar bone tissue.      

 
Osteohistological features of the Lestodon armatus specimens from Playa del Barco site. (A)–(C) General view of the spinous vertebral processes cross sections belonging to juvenile (MD-PDB-16-23), adult (MD-PDB- without catalogue number), and senile (MD-PDB-05-63) individuals. (D), (E) details of the bone microstructure of the juvenile individual, in natural light, showing the primary bone tissue partially remodeled. Note the presence of three lines of arrested growth (LAGs, white arrows). (F), (G) details of the bone microstructure of the adult individual, in natural light, showing the primary bone tissue (as a remnant) intensely remodeled. (H)–(I) details of the bone microstructure of the senile individual, in natural light, showing the primary bone tissue completely remodeled. Abbreviations: cc, compact cortex; lc, longitudinal channels; mc, medullary cavity; ol, osteocyte lacunae; pbt, primary bone tissue; rc, resorption cavity; Shf, Sharpey’s fibers; so, secondary osteon. Black scale bars are 1 cm. Tomassini et al. (2020).

The mean proportional carbon¹³ value of the herbivore Mammal assemblage is -6.3 ± 2.6‰ compared to the Vienna Pee Dee Belemnite standard. The highest mean proportional carbon¹³ value occurs in Lestodon armatus (-3.8 ± 1.6‰), whereas the lowest mean value occurs in Morenelaphus sp. (-10.2 ± 0.8‰). Significant differences have been detected among taxa.

 
Raw and mean proportional carbon¹³ values  (δ13C ‰, compared to the Vienna Pee Dee Belemnite standard) and proportional oxygen¹⁸ values (δ18O ‰, compared to the Vienna Standard Mean Ocean Water standard) values for different  ammals from Playa del Barco site. The grey bars represent the vegetation proportional carbon¹³ cut-off values between a C₃-dominated diet, a mixed C₃-C₄ diet, and a C₄-dominated diet. The lightest grey denotes a proportional carbon¹³ bioapatite-diet enrichment of +14.1‰. Tomassini et al. (2020).

The mean bioapatite proportional oxygen¹⁸ carbonate values of the herbivore Mammal assemblage is 28.6 ± 0.9‰ (compared to the Vienna Standard Mean Ocean Water standard), with the highest mean proportional oxygen¹⁸ carbonate value recorded by Morenelaphus sp. (29.3 ± 0.4‰) and the lowest mean proportional oxygen¹⁸ carbonate value depicted by Scelidotherium leptocephalum (26.8‰). The mean proportional oxygen¹⁸ carbonate value of Lestodon armatus is 27.9 ± 0.5‰. Significant differences also occur among taxa.

Values of proportional oxygen¹⁸ phosphate are used here as a control for diagenetic alteration of biopatite, particularly in Xenarthran orthodentine. The difference between proportional oxygen¹⁸ carbonate and proportional oxygen¹⁸ phosphate values obtained for all taxa from Playa del Barco are close to the obtained values from modern unaltered bioapatite. Thus, stable isotope data from Playa del Barco sample can be used to assess past conditions.

Playa del Barco is a very rich fossiliferous locality of the Pampean Region, represented by several extinct large and Megamammal taxa, both endemic to South America and immigrant from North America. An age of 19 849 years before present allows assigning the studied assemblage from Playa del Barco to a period of Marine Isotope Stage 2 related to the end of the Last Glacial Maximum, already within an extinction scenario of the South American megafauna. It is a multitaxic, with high diversity, and monodominant bonebed, being Lestodon armatus the most abundant taxon in terms of number of specimens and individuals. The sample of Lestodon armatus includes several cranial and postcranial elements belonging to at least 13 juvenile, adult, and senile individuals, possibly both males and females. Tomassini et al. performed a detailed analysis of the Lestodon armatus specimens from Playa del Barco site following several lines of evidence. This evaluation allowed them to interpret the origin and the possible taphonomic history of the assemblage.

The low average value of relative abundance reflects an important loss of skeletal elements; part of this loss could be linked with pre-burial processes. Based on the environmental context and the taphonomic evidence, Tomassini et al. consider that most of the bones exposed in the surface would have been winnowed out towards other sectors by the high-density sheetflood generated during the flooding (i.e. events of overbank floods or rainfall) of the plain. All groups proposed to evaluate the susceptibility of skeletal elements to be transported by water flows were recorded; however, the values of relative abundance evidence a lower representativeness of the elements with high susceptibility (e.g. ribs, vertebrae, phalanges) with respect to the elements with low susceptibility (e.g. mandibles, maxillae), which suggest hydrodynamic sorting and differential loss of the elements.

The record of isolated specimens, but in close spatial proximity to one another, suggests that, during the exposure lapse in the surface, the carcasses became disarticulated and the bones sparsely mobilised and scattered, probably by water flows. The marked predominance of unweathered specimens (and weathered specimens showing very slight modifications), the scarcity of marks attributed to predation/scavenging, and the absence of clear trampling evidences would indicate that, in general, the exposure time was relatively short. Minimal abrasion in a few specimens reflects that the time of interaction between bones and sedimentary particles was short or that the intensity was very low, which is concordant with the environmental context of accumulation. The absence of anthropic activity signs is consistent with the proposed age (about 13–12 thousand years ago) for the arrival of the first Human groups to the Pampean Region of Argentina. Taking into account the location of the fossiliferous site, in the current intertidal zone, Tomassini et al. consider that the high degree of breakage obtained (with a clear predominance transversal fractures) could be related to the sea action during systematic current re-expositions of the outcrops occurred in extreme low tides.

The record of a high density of specimens distributed in a thin stratigraphic level restricted to a small area (about 500 m²), belonging to several individuals of the same taxon, Lestodon armatus, with different ontogenetic stages and possibly different sex, together with the observed taphonomic features, supports the interpretation of a local single event of catastrophic mortality to explain the origin of the Lestodon armatus assemblage studied by Tomassini et al. This event would have been associated to a relatively short time of exposure in surface of elements that remained close to the place of death. It was not possible to determine the cause of death of the individuals, but an ontogenetic selective phenomenon can be discarded. Assemblages of extant Vertebrates originated by catastrophic death events are, in general, representative of living social groups. This type of monodominant assemblage is very useful to the study of palaeobiological and palaeoecological issues of a particular taxon. 

Different pathologies are identified in several postcranial elements. The asymmetry degree of neural arches, zygapophyses, and transverse processes reflects discrete osteoarthrosis. Marked height reduction, deformities, and high porosity of the vertebral body are modifications indicative of severe osteoporosis. The record of osteophytes and subchondral erosion in the vertebral bodies reflects the development of intervertebral discopathies. The presence of osteophytes in the costal articular facets of a thoracic vertebra suggests osteoarthrosis at the level of the costovertebral joints. The identified intervertebral bone bridges would have prevented the sliding of a vertebra over another, avoiding injuries in the spinal medulla and nerves. On the other hand, this situation would also have significantly reduced the movements of the individual. Destruction of the posterior surface of the vertebral body in some caudal vertebrae is interpreted as osteochondritis dissecans. Both discopathies and osteochondritis dissecans of the caudal vertebrae could be related to a habit proposed for some Ground Sloths, which involves the use of the tail as a 'third limb' to sit; this situation would produce an overload on that segment of the spine.

The observed postcranial pathologies are frequent in large and Megamammals, including extinct Folivora. As it is mentioned previously, particularly in the case of the vertebrae, these pathologies are compatible with individuals of advanced age and a huge body mass. This evidence improves the knowledge on the diverse diseases that affected the skeletal elements of the extinct Ground Sloths.

The recorded microstructural features are consistent with the published descriptions on both extant and extinct Folivora, including Lestodon. Some minor differences are fundamentally linked with the type of skeletal element analysed, as most osteohistological studies are based on long bones and ribs.

The poorly vascularised parallel fibered to lamellar primary bone tissue, present in both juvenile and adult (as a remnant) individuals, indicates a slow apposition rate; this tissue is not recorded in the senile individuals because of the profuse Haversian remodeling. The record of dense Haversian bone in individuals of different ontogenetic stages suggests remodeling in progress of the primary bone tissue, until it is complete in the senile individual.

A previous study mentioned that long bones of adult Xenarthra individuals are characterised by an important development of dense Haversian bone and highlighted that secondary remodeling is more important in large taxa than in small taxa, and particularly for Folivorans, in extinct species more than in extant species. A proposal to explain this situation is that extinct Folivora had a more prolonged life span than extant representatives, which would favour the increase of size and loading, resulting in an extensive remodeling. This idea is compatible with Tomassini et al.'s results, which reflect a relative increase of the remodeling degree throughout the ontogeny; however, as they evaluated a different skeletal element (thoracic vertebrae instead of long bones), other possible causes to explain the observed ontogenetic histological variations cannot be discarded.

According to several authors, lines of arrested growth would allow estimating the minimum age of an individual at the time of death. Following this proposal, the identification of three lines of arrested growth in the juvenile individual suggests an age of, at least, three years; however, the age of this individual is possibly underestimated due to the loss of primary bone tissue by secondary remodeling and to the expansion of spongy tissue. The absence of lines of arrested growth in both adult and senile individuals would be linked with the extensive secondary remodeling. 

The obtained results reflect significant changes in the osteohistology of Lestodon armatus during the ontogeny. In this sense, Tomassini et al. observe a remarkable correspondence between the ontogenetic stages determined on the basis of macroscopic anatomical characters and the microstructural features.

The obtained values of proportional carbon¹³ from the Playa del Barco point to a preferential intermediate C₃–C₄ diet by most herbivorous taxa, Morenelaphus sp. being the only taxon consuming exclusively C₃ Plants. Concerning Lestodon armatus, proportional carbon¹³ data (-6.3±1.6‰, compared to the Vienna Pee Dee Belemnite standard) reflect a mixed C₃–C₄ diet or an intermediate diet between open C₃ vegetation and mixed C₃–C₄ vegetation, which depends on the proportional carbon¹³ bioapatite-diet enrichment applied to Xenarthrans (+14.1‰ or +15.6‰); in any case, there is a large variability among individuals, probably indicating some extent of dietary flexibility. These results agree with proportional carbon¹³ values obtained for Lestodon armatus from Uruguay, which point to foraging in relatively open areas, and support the proposal that considers Lestodon armatus as a wide-muzzled Sloth, mostly bulk-feeder, with a diet probably based on Grass and herbaceous Plants. 

When comparing different ground sloths from the Playa del Barco locality, Megatherium americanum depicts significantly lower proportional carbon¹³ values than Lestodon armatus, pointing to a more browsing behavior for the former and the incorporation of food items from mixed C₃–C₄ areas for the latter. In turn, the only analysed sample of Scelidotherium leptocephalum shows a proportional carbon¹³ value (− 3.9‰, relative to the Vienna Pee Dee Belemnite standard) similar to that depicted by Lestodon armatus. It has been suggested that the marked hypsodonty of Scelidotherium leptocephalum would support a digging behavior and the ingestion of abrasive food items. Differential dietary preferences and/or strategies among sympatric Ground Sloths may have eased the competition pressure and facilitated their coexistence. On the other hand, the dietary flexibility depicted by Lestodon armatus from Playa del Barco may have as well enabled the sympatry with endemic (e.g. Toxodon platensis) and immigrant (e.g. Stegomastodon platensis) herbivorous taxa, as no significant differences have been pinpointed among them.

Unlike extant Sloths, restricted to the Neotropical rain forest, extinct Ground Sloths were able to diversify in climates with arid and cool conditions, pointing to some mode of body temperature regulation. It has been suggested that Ground Sloths may have coped with climatic fluctuations by developing a hairy covering and by reaching large body sizes, which may have allowed them to better maintain a constant body temperature. This is supported by the difference between proportional oxygen¹⁸ carbonate and proportional oxygen¹⁸ phosphate values obtained for Ground Sloths from Playa del Barco, similar to the difference observed in extant homeotherm Mammals. This means that their bioapatite proportional oxygen¹⁸ carbonate and proportional oxygen¹⁸ phosphate values are likely related to their body water proportional oxygen¹⁸ signal under a constant body temperature and therefore, it may have been directly routed from the proportional oxygen¹⁸ value of ingested water. If so, the lack of significant differences with other herbivorous taxa from Playa del Barco would mean that Lestodon armatus may have ingested water from the same hydrological sources.

Gregariousness is a common behavior among living Mammals, which favors the survival of the most vulnerable members against adverse intrinsic and extrinsic natural factors (e.g. predator attack, diseases, scarcity of resources such as food or water, adverse environmental and climatic conditions), parental care, and territory/resource defense, among others issues. For that reason, several species of herbivorous Negamammals form large aggregations.

There are diverse biological and ecological traits of the extant Megamammals that were also considered for extinct species, in order to shed more light on the relevance of this behavior in the past. Gregory McDonald suggested, based on the remarkable differences in size and anatomy, that the extinct Ground Sloths probably had a more complex social structure than their extant relatives, which are solitary Animals. However, specific studies including considerations on the social structure of extinct South American Ground Sloths are very scarce.

In this context, Tomassini et al. highlight the significance of the Lestodon armatus sample from Playa del Barco site. The identification of an assemblage formed by several individuals of different ontogenetic stages, possibly belonging to both males and females, likely originated by a local single event of catastrophic mortality, constitute and evidence of an intrinsic biogenic concentration that reflects a social behavior. Therefore, Tomassini et al. interpret here that this Mylodontid had, at least sometimes, gregarious habits forming intergenerational herds. Other assemblages dominated by Lestodon armatus have been reported for the Pleistocene of southern South America, but in these studies there are not references on the possible social behavior of this species.

 
Artistic representation of a Lestodon armatus social group. Pedro Cuaranta in Tomassini et al. (2020).

It is difficult to evaluate when and why gregarious behavior was acquired, because pre-Pleistocene record of Lestodon, and Mylodontidae in general, is very scarce. Although speculative, it could have been adopted or have been relevant during the Pleistocene in response to: (1) the occurrence of several glacial-interglacial cycles, which involved continuous and pronounced climatic and environmental changes, and the consequent loss of habitats and/or temporal lack of resources; and (2) the impact linked with the most important pulses of the Great American Biotic Interchange. This event implied, on the one hand, the arrival of several herbivorous large and Megamammals that would have generated competition for resources and habitats. On the other hand, the interaction with new predators; isotopic analyses suggest that Lestodon armatus was a probable prey of the carnivores Smilodon populator (present at Playa del Barco) and Protocyon troglodytes.

Tomassini et al. report and analyse a bonebed, from the late Pleistocene of Pampean Region of Argentina, where the Ground Sloth Lestodon armatus represents the dominant component. Sedimentological characteristics of the host level, density of specimens, number of individuals, ontogenetic representation, possible sexual dimorphism, and taphonomic features, allow Tomassini et al. to interpret that the Lestodon armatus accumulation was originated by a local single event of catastrophic mortality and represents, at least part of, a social group. This record is the first accurate evidence of gregariousness for this taxon, providing novel information on a poorly-known behavior among extinct Folivora.

This comprehensive multi-proxy study sheds new light on several palaeobiological and palaeoecological issues (e.g. social behavior, ontogenetic changes, sexual dimorphism, osteological diseases, resource and habitat use, trophic relationships) of a giant Ground Sloth endemic to southern South America. In an extinction scenario that began about 40 000 years ago, the age of the assemblage from Playa del Barco (dated to 19 849 years before present) results interesting to evaluate the state of the megamammal communities, because it represents a moment: (1) linked with a key climatic event, the end of the Last Glacial Maximum; (2) posterior to the massive arrival of North American immigrants (herbivorous and carnivorous Mammals); and (3) previous to the arrival of the first Human groups. Finally, this type of analysis integrating different lines of evidence on bonebeds is critical to understanding the ecological relevance of the late Pleistocene megafauna and the possible impact of its extinction in the late Pleistocene-early Holocene.

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Sunday, 15 November 2020

Catonyx tarijensis: Reconstruction of the cranial anatomy and palaeoneurology of a extinct Scelidotheriine Sloth from the Pleistocene of Bolivia.

Sloths, Folivora, are today represented by only two genera, Bradypus and Choloepus, and constitute an endemic South and Central American Mammalian clade restricted to Neotropical rain forests. By contrast, their fossil record is extremely rich and diverse, spanning chronologically from the late Eocene to the early Holocene, and geographically covering nearly all of the American supercontinent. The Mylodontidae is one of the most important Folivoran clades, representing a major subdivision of Sloths diversity. Its representatives were mainly quadrupedal and terrestrial, and in some cases developed digging capabilities. Mylodontid Sloths were particularly widespread and abundant in South America, but they also reached Central and North America in different migratory events.

Among Mylodontids, the Mylodontinae includes medium to large-sized herbivorous forms and, with a few exceptions (e.g. Mylodon and Pseudoprepotherium), they show mediolaterally wide muzzles that are indicative of grazing diets. A different morphology is observed in the sister group to Mylodontinae, Scelidotheriinae. The narrow muzzle of Scelidotheriines have been associated with more selective diets. Indeed, Scelidotheriine Sloths have long been recognised as distinctive, based on their unusual dentition and skull morphology. In 1987 Hugh McDonald noted that all Scelidotheriine species possess elongated and narrow skulls. The dentition is also buccolingually compressed, so that every tooth has a long axis that is much longer than its orthogonal width, although the orientation of the long axis varies along the toothrow. In 2004 Timothy Gaudin identified additional unique synapomorphies of Scelidotheriinae. For example, the maxilla is deeper in its midsection to accommodate the elongated tooth roots, and narrows anteriorly and posteriorly, in lateral view. This results in a ventrally convex profile of the palate in lateral view that is also unique to the group.

The Scelidotheriine fossil record ranges chronologically from the middle Miocene to the Pleistocene/Holocene transition (Friasian to Bonaerian/Lujanian South American Land Mammal Ages). In contrast to Mylodontines, Scelidotheriines were restricted to South America, and did not participate in the Great American Biotic Interchange, as a probable consequence o their ecological restrictions due to specialised feeding habits. During the Pleistocene, this clade was represented by three genera: (i) Valgipes, endemic to the intertropical region of Brazil, (ii) Scelidotherium, from the Pampas region of Argentina and Uruguay, and (iii) Catonyx (Scelidodon) a more widespread taxon known from Argentina, Bolivia, Brazil, Chile, Ecuador, Peru, and Uruguay.

According to Timothy Gaudin, features that serve to differentiate the two scelidotheriine Catonyx and Scelidotherium include: the posterior extension of the temporal fossa, which is more pronounced in the former taxon; in Catonyx, the orbital portion of the lacrimal is more expanded than the facial, whereas the two portions are equal in size in Scelidotherium; a maxillo-lacrimal contact within the orbit is present in Catonyx, whereas it is absent in Scelidotherium; the sphenorbital fissure is more posteriorly located in Scelidotherium than in Catonyx, and Scelidotherium exhibits a smaller hypoglossal foramen than Catonyx. Finally, Catonyx possesses distinct fossae for the rectus capitis muscles on the basioccipital that are lacking in Scelidotherium.

Following the latest revisions of the group Catonyx includes three species: (i) Catonyx chiliensis from the Lujanian South American Land Mammal Age of Argentina, Bolivia, Chile, Ecuador, and Peru, (ii) Catonyx cuvieri from the Lujanian South American Land Mammal Age of Brazil and Uruguay, and (iii) Catonyx tarijensis, from the Ensenadan–Lujanian South American Land Mammal Ages of Argentina, Bolivia, and Uruguay. Only Catonyx chiliensis and Catonyx tarijensis have previously been recovered from Bolivia. The two species are easily recognisable by their general body size, the shape of the nasals, the development of the sagittal crest, and the morphology of the dentition in occlusal view.

In a paper published in the journal Frontiers in Ecology and Evolution on 7 April 2020, Alberto Boscaini of the Instituto Argentino de Nivología, Glaciología y Ciencias Ambientales, Dawid Iurino of the Dipartimento di Scienze della Terra and Paleo Factory at the Sapienza Università di Roma, Bernardino Mamani Quispe and Rubén Andrade Flores of the Departamento de Paleontología at the Museo Nacional de Historia Natural de Bolivia, Raffaele Sardella, also of the Dipartimento di Scienze della Terra and Paleo Factory at the Sapienza Università di Roma, François Pujos, also of the Instituto Argentino de Nivología, Glaciología y Ciencias Ambientales, and Timothy Gaudin of the Department of Biology, Geology, and Environmental Sciences at the University of Tennessee at Chattanooga, describe an almost complete skull of Catonyx tarijensis from late Pleistocene deposits of the Department of Oruro, and provide a detailed description of its skull and mandible, with special emphasis on its poorly known ear region. Boscaini et al. also provide a description of the almost complete hyoid apparatus of this species, together with the first digital reconstructions of the main endocranial structures of a Scelidotherine Sloth.

The specimen of Catonyx tarijensis MNHN-Bol V 13364 analysed by Boscaini et al. was recovered in 2013 from late Pleistocene deposits at Chokxo Pata, Ayllu Yuruma locality. This locality is situated on the western side of Lake Poopó (Municipality of Santiago de Andamarca, Sud Carangas Province, Department of Oruro, southwestern Bolivia). The specimen was recovered in a friable non-laminated yellowish sandstone of lacustrine origin, without any other associated faunistic elements. However, the late Pleistocene age of the fossils is suggested by the unconsolidated nature of the sediments and low degree of petrification of the remains, together with absolute dates obtained in neighboring areas. At the moment, a late Pleistocene age for these remains is the most plausible, given the wide distribution of Catonyx in other South American localities in this period. However, further palaeontological surveys and detailed analyses at Chokxo Pata are necessary for a reliable chronological assessment of the recovered remains. The specimen labeled as MNHN-Bol V 13364 includes an almost complete skull, both mandibular rami, most of the hyoid apparatus, an incomplete left humerus and radius, and other postcranial fragments.

 
Map of the locality in which the remains of Catonyx tarijensis MNHN-Bol V 13364 have been recovered. Circles: cities; Star: fossil locality. Boscaini et al. (2020).

MNHN-Bol V 13364 is particularly well-preserved and exhibits only slight deformation, allowing detailed descriptions of the cranial and mandibular remains, with special emphasis on the ear region and the hyoid apparatus. Moreover, Boscaini et al. report the first digital models of the endocranial cavities of a Scelidotheriine Sloth, based on scans of MNHN-Bol V 13364, taken with a Siemens Somatom Scope CT scanner at the 'Clínica Alemana' Institute of La Paz (Bolivia).

MNHN-Bol V 13364i s a complete skull, associated with both mandibular rami and most of the hyoid apparatus, incomplete left humerus and radius, and isolated postcranial fragments from late Pleistocene deposits at Chokxo Pata, Ayllu Yuruma locality (Sud Carangas Province, Department of Oruro, southwestern Bolivia). The specimen is from the Tolomosa Formation, which has been estimated to be 0.76 ± 0.03 million years old (Middle Pleistocene) based on uranium/lead dating, or 44 000-21 000 years old based upon carbon¹⁴ dating.

The skull of Catonyx tarijensis MNHN-Bol V 13364 is tubular in section, anteroposteriorly elongated, and somewhat low dorsoventrally, all typical of scelidotheriine cranial morphology.

 
Skull and mandible of Catonyx tarijensis MNHN-Bol V 13364 from the Pleistocene of Oruro (Bolivian Altiplano). Skull in dorsal (A), ventral (B), lateral (C), anterior (D), and posterior (E) views. Mandible in lateral (F) and occlusal (G) views. al, alisphenoid; ama, accessory mandibular articulation; angp, angular process; bo, basioccipital; bs, basisphenoid; caf, condylar accessory facet; cf, condylar facet; conp, condyloid process; corp, coronoid process; dnm, dorsal nasal meatus; eoc, external occipital crest; eomc, external opening of the mandibular canal; fm, foramen magnum; fov, foramen ovale; fr, frontal; hr, horizontal ramus of mandible; jug, jugal; lac, lacrimal; lf, lacrimal foramen; lt, lacrimal tubercle; mf, mental foramen; ms, mandibular spout; mx, maxilla; mxt, maxilloturbinate; n, nasal; nc, nuchal crest, ns, nasal septum; nt, nasoturbinate; oc, occipital; occ, occipital condyle; opt/fsph, common aperture for the optic foramen and sphenorbital fissure; or, orbitosphenoid; pal, palatine; p, parietal; pmx, premaxilla; ps, presphenoid; pt, pterygoid; sb, sutural bone; sq, squamosal; vm, vomer. Scale bar equals 10 cm. Boscaini et al. (2020).

The medial and lateral anterior processes of the nasal are separated by a deep notch, as is typical in Scelidotheriines. The anterior portion of the nasal is mediolaterally expanded and tapers posteriorly in a gradual and uniform fashion. The nasofrontal suture is almost transverse and straight.

Only the posteriormost portion of the right premaxilla is present, preserving a minor portion of the lateral ramus. The palatal portion of the maxilla exhibits a ventrally convex profile in lateral view, a characteristic feature of Scelidotheriines. The palate itself is elongated and narrow, and extends well posterior to the last uppermolariformas a broad postpalatal shelf that extends posteriorly along themedial surface of the pterygoid flange for almost half its anteroposterior length. This shelf is pierced by at least one large postpalatal foramen (the minor palatine foramen of other Mammals). The anterior palatal foramen is only preserved on the right side, where it forms a small opening emptying into a short, shallow anterior groove, roughly halfway between the lateral ramus of the premaxilla and the first molariform. The incisive foramina are largely hidden by the large medial palatal processes of the maxilla (as in Scelidotherium) and are located within an elongate median groove at the anterior end of the palate. The anterior end of the maxillopalatine suture lies medial to the third molariform, as it does in Scelidotherium.

The lacrimal is roughly quadrilateral in shape and has a relatively reduced facial exposure and an extensive orbital exposure. In this respect, Catonyx differs from Scelidotherium, in which the orbital exposure is no larger than the facial. There is a well-developed lacrimal tubercle just anterior to the single large and circular lacrimal foramen. The latter is located on the facial portion of the lacrimal and just anterior to the orbital rim. The facial exposure of the lacrimal contacts the maxilla anteriorly and the frontal posteriorly. This contrasts with the information presented by Timothy Gaudin in 2004, in which a contact between the nasal and lacrimal is considered a synapomorphy of Scelidotheres, suggesting that this feature may represent a variable feature at different taxonomic levels. The absence of contact between the nasal and the lacrimal in MNHN-Bol V 13364, differs from the arrangement depicted by Hugh McDonald for the same species. The variability of this feature was first mentioned by Lucas Kraglievich in 1923 for Scelidotherium and is now also confirmed for Catonyx. In MNHN-Bol V 13364, the orbital exposure of the lacrimal contacts the jugal and the maxilla ventrally and the frontal posteriorly. The contact between maxilla and lacrimal within the orbit is absent in Scelidotherium.

Another distinctive feature of MNHN-Bol V 13364 is the exceptional preservation of the nasopharyngeal roof. At the anterior end, both the alae and the median keel of the vomer are visible, the former well-outlined by sutures. A typical triangular presphenoid is observable posterior to the vomer. The basisphenoid is irregular in shape but reminiscent of the butterfly shape commonly observed in some Mylodontids, such as Mylodon, Glossotherium, and Paramylodon and other Sloths, such as Bradypus and Analcimorphus. The basisphenoid and basioccipital are completely fused. However, there are two strongly developed tubera which typically lie on the junction between the basisphenoid and the basioccipital, suggesting that the suture occurs in this region. The basioccipital is wide transversely and short anteroposteriorly, nearly flat but marked bilaterally by shallow depressions for the rectus capitis muscles. As noted above, these fossae are absent in Scelidotherium.

As is common in mylodontids, there is a large ovate depression near the bottom of the medial orbital wall that houses most of the major orbital foramina. The sphenopalatine/anterior palatal foramen, which is normally part of this complex, is not preserved on either side. However, the large opening, typical of Sloths, that serves as a common aperture for the optic foramen and sphenorbital fissure, is well-preserved bilaterally. Scelidotherium differs from Catonyx in the absence of a common depression for the orbital foramina, with the aperture of the optic foramen/sphenorbital fissure situated well posterior to the sphenopalatine/anterior palatal foramen. The sutural relationships of the bones surrounding the aperture for the optic foramen/sphenorbital fissure are complex in MNHN-Bol V. Indeed, four bones participate in the formation of the opening: frontal, orbitosphenoid, alisphenoid, and palatine. The frontal forms the anterior and dorsalmost portion of the aperture. The orbitosphenoid forms the roof and part of the lateral wall. The alisphenoid is the most complex, comprising a portion of the lateral wall, most of the medial wall, as well as a portion of the floor. The remaining part of the floor of the aperture is formed by the palatine. The orbitosphenoid has a small lateral exposure lateral to the aperture of the sphenorbital fissure/optic foramen, extending posteriorly to contact the squamosal and largely separating the alisphenoid and frontal. A lateral exposure of the orbitosphenoid like this is quite unusual, not only in Sloths, but for Xenarthrans in general, but has been reported in a single juvenile specimen of the extant Two-toed Sloth, Choloepus hoffmanni.

The foramen ovale of MNHN-Bol V 13364 is located between the alisphenoid, pterygoid, and squamosal. The last two elements form the bulk of the rim, with the alisphenoid contributing only a small portion of the anterior edge. In MNHN-Bol V 13364 there is also a rounded projection extending ventrally from the dorsolateral margin of the foramen ovale and partially shielding it in lateral view. This small projection is comprised of alisphenoid anteriorly and squamosal posteriorly, and bears a slightly concave articular surface laterally. This surface contacts a distinct medial facet on the mandibular condyle, and therefore we identify this as an accessory mandibular articulation, unknown in other Sloths.

Behind the foramen ovale, an ovoid, reduced sutural bone is present, just at the junction between the pterygoid and the squamosal. The pterygoid/squamosal suture extends posteriorly into the ear region. The pterygoid of Catonyx tarijensis appears less inflated basally than is the case in either Mylodon darwinii or Glossotherium robustum. In the latter two taxa, a pair of inflated areas, lateral and medial, are observed at the base of the pterygoid, whereas in Catonyx tarijensis, a single low pterygoid inflation is present. The ventral portion of the pterygoid extends ventrally into a large pterygoid flange, as is typical for Sloths. In Catonyx, the ventral margin of this flange is semicircular in shape, whereas in Scelidotherium it ismore nearly triangular.

In MNHN-Bol V 13364 many of the internal structures of the nasal cavity are visible in anterior view, including the nasal septum and the anteriormost portion of the nasoturbinates and maxilloturbinates. The nasoturbinates terminate anteriorly on the underside of the long lateral process of the nasal and delimit the dorsal nasal meatus ventrally. The surface of the maxilloturbinates form a relatively smooth and conical mass at its anterior end.

In dorsal view, the temporal lines are poorly developed and the sagittal crest is lacking, two features that are probably related to the immaturity of the individual. In MNHN-Bol V 13364, the temporal lines are only observable at the level of the poorly developed postorbital processes, and posteriorly, where they merge with the nuchal crest. Among Mylodontidae, the posterior convergence of the temporal lines and the nuchal crest is also observed in Nematherium, Octodontotherium, and Lestodontini. In Scelidotherium and other Mylodontines, the temporal lines turn ventrally, anterior to the nuchal crest. The frontoparietal suture is only partially detectable in MNHN-Bol V 13364, and shows an irregular and bilaterally asymmetric outline. The position of this suture, well posterior to the glenoid, represents a Scelidotheriine + Mylodontine synapomorphy as previously reported by Timothy Gaudin.

In posterior view, the occipital is subrectangular in shape, as is typical for Scelidotheriines, whereas the subtriangular occipital condyles are directed ventrally, as is typical for Catonyx.

The ectotympanic and themiddle ear ossicles aremissing on both sides of MNHN-Bol V 13364, but the remainder of the auditory region is well-preserved.

Both entotympanics are present and complete. As is typical for Sloths, they are located lateral to the basioccipital/basisphenoid tuber and ventral to the promontorium of the petrosal. Again as in most sloths, the entotympanic is divided into medial and lateral plates by a deep sulcus for the internal carotid artery. At the anterior end of this sulcus, the entotympanic encloses a canal through which the artery passed; the presence of this canal is a variable feature in Catonyx and Scelidotherium. A carotid foramen/canal in the entotympanic is also present in Nematherium and Pseudoprepotherium, but is missing in other Mylodontids.

 
Left ear region of Catonyx tarijensis MNHN-Bol V 13364 in ventrolateral view (anterior toward the right). aptt, anteroventral process of the tegmen tympani; bs, basisphenoid; cf, carotid foramen; en(lp), entotympanic (lateral plate); en(mp), entotympanic (medial plate); er, epitympanic recess; fc, fenestra cochleae; gEt, groove for the Eustachian tube; gvn, groove for the vidian nerve; hf, hypoglossal foramen; jf, jugular foramen; occ, occipital condyle; pcp, paracondylar process of exoccipital; prp, promontorium of petrosal; shf, stylohyal fossa; stmf, stylomastoid foramen; vooa, ventral opening for the occipital artery. Scale bar equals 1 cm. Boscaini et al. (2020).

On the right side of MNHN-Bol V 13364, the lateral plate of the entotympanic has a small opening near its anterior end that likely accommodated the exit of the greater petrosal nerve (vidian nerve) from the tympanic cavity. A short groove for the greater petrosal nerve extends from the opening toward the nasopharynx. On the left side, there is a much larger aperture in roughly the same position, suggesting that this difference in size could be related to the immature development of this individual.

In fact, there are several additional features in the ear region which indicate the subadult status of MNHN-Bol V 13364 including: (i) a small gap between the medial entotympanic and the basioccipital/basisphenoid tuber (visible on the left side of the skull), (ii) an unusually deep stylohyal fossa, and (iii) the presence of an open groove for the occipital artery on themastoid exposure of the petrosal. In all other Mylodontids except Nematherium, the occipital artery is either partially or fully enclosed in a canal. 

The petrosalmorphology ofMNHN-Bol V 13364 is typical for Scelidotheres, and indeed for Mylodontidae as a whole. One unusual aspect of this specimen is the small size of the anteroventral process of the tegmen tympani. The aptt is variable in size and shape among |Mylodontids, but was recorded as a 'large, rugose bony mass' in prior observations of Catonyx. The small and triangular shape of the aptt in MNHN-Bol V 13364 could also be related to its subadult status.

The large jugular foramen which marks the posteromedial boundary of the ear region is typical for Mylodontids. However, the hypoglossal foramen is distinctive in a number of aspects. First, in MNHN-Bol V 13364 it is nearly identical in size to the jugular foramen, whereas in Mylodon and Glossotherium the hypoglossal foramen is larger than the jugular. Moreover, it nearly abuts the jugular foramen, the two being separated by a sharp ventral crest. In other Mylodontids, the hypoglossal foramen is located farther posteriorly.

The mandible of MNHN-Bol V 13364 shows an almost horizontal ventral border, as is typical for Mylodontids. As in other Scelidotheres, it has a very elongated and narrow mandibular spout with a rounded anterior edge.

The very deep horizontal ramus of MNHN-Bol V 13364 is characteristic of Catonyx tarijensis and contrasts with the shallower ramus in Catonyx cuvieri and Catonyx chiliensis. The condyle is transversely extended as in other Scelidotheres, but with a peculiar concave articular surface, which differs from the flat articular surface that is typical of the group. The latter is bordered medially by a second articular surface for the accessory mandibular articulation, as discussed above.

Despite the apparent subadult status of the specimen, the grooves and ridges that mark the attachments of the masticatory muscles are very well-developed. This is particularly evident along the ventrolateral margin of the angular process, where two strong grooves are present.

A large part of the hyoid apparatus of MNHN-Bol V 13364 is preserved, the available elements including the right stylohyal and epihyal, the 'V-bone' (fused basihyal and thyrohyals), and the ossified thyroid cartilage. Both ceratohyals, however, are missing. On the whole, the hyoid morphology of Catonyx reflects the general Xenarthran pattern, which consists of three paired and unfused bones (representing the anterior cornua) and an unpaired V-bone (representing the posterior cornua).

 
Hyoid apparatus of Catonyx tarijensis MNHN-Bol V 13364 from the Pleistocene of Oruro (Bolivian Altiplano). Right stylohyal in medial view (A); right epihyal in medial view (B); V-bone in anterior view (C); and ossified thyroid cartilage in anterior view (D). Scale bar equals 5 cm. Boscaini et al. (2020).

The right stylohyal ofMNHN-BolV13364 is almost complete, lacking only the articular facet for the basicranium. The body of the stylohyal is cylindrical, with a slight enlargement toward the distal facet for the epihyal as is typical in Folivora. The shaft of the stylohyal is straight in Catonyx, a condition that is observed in other Scelidotheriines such as Scelidotherium and Valgipes, whereas the stylohyal shaft is curved in mylodontines such as Mylodon, Paramylodon, Glossotherium, and Lestodon. However, the curved condition can be occasionally observed in some specimens of Scelidotherium, and the straight condition in some Paramylodon specimens. In Paramylodon harlani, Chester Stock also identified an uncommon case of fusion between the stylohyal and the epihyal. This feature, commonly recovered among the extant Sloths is rarely observed in extinct taxa such as Paramylodon harlani, Megatherium americanum, and Eremotherium laurillardi. The stylohyal-epihyal contact is flat in lateral and medial views in MNHN-Bol V 13364. This feature is also typical of Sclelidotheriines, in contrast to the more concavo-convex articulation of Mylodontines.

The epihyal of Catonyx MNHN-Bol V 13364 is shorter in length than the stylohyal, a typical condition for Pilosans. The shaft of the epihyal is wide anteroposteriorly and compressed mediolaterally, resembling the shape of the epihyal of Scelidotherium and in contrast to that observed in Glossotherium and Paramylodon, in which the epihyal decreases uniformly in width from its proximal to its distal end. Both the facets for the stylohyal and the ceratohyal are flat, again resembling the condition in Scelidotherium and contrasting with the morphology of Paramylodon and Glossotherium, in which they are concave and convex, respectively. Both ceratohyals are missing in MNHN-Bol V 13364. As in all extinct sloths, and in contrast to the living forms, they were unfused to the epihyals.

The fusion between the basihyal and the thyrohyals, forming the so-called V-bone, is a typical Xenarthran feature. The two anterior eminences that articulate with the ceratohyals are well-developed in Catonyx and similar in shape to those of Glossotherium and Paramylodon. Posteriorly, the V-bone contacts the ossified thyroid cartilage through two roughly circular and flat facets. In Catonyx, the V-bone and ossified thyroid cartilage are markedly V-shaped in anterior view, similar to the morphology observed in Scelidotherium and distinct from the U-shaped homologous elements in Glossotherium and Paramylodon.

The facial part of the respiratory tract is preserved, both externally and internally. The main turbinates of this region, the nasoturbinate (an olfactory structure) and the maxilloturbinate (a respiratory structure), are observable in the anterior view of the nasal cavity and their morphology can be traced back posteriorly thanks to the digital endocranial reconstruction.

 
Digital reconstructions of the skull and mandible of Catonyx tarijensis MNHN-Bol V 13364 from the Pleistocene of Oruro (Bolivian Altiplano), showing internal features. Skull in dorsal (A), ventral (B), lateral (C), anterior (D), and posterior (E) views. Mandible in lateral (F) and occlusal (G) views. als, alisphenoid sinus; b, brain endocast; fs, frontal sinus; mc, mandibular canal; mcr, mandibular canal ramifications; mf, lower molariform tooth; Mf, upper molariform tooth; mxt, maxilloturbinate; nt, nasoturbinate; ors, orbitosphenoid sinus; ps, parietal sinus; pts, pterygoid sinus; sqs, squamosal sinus. Colours indicate: green, turbinates; purple, mandibular canal and ramifications; orange, dentition; red, sinuses. Scale bar equals 10 cm. Boscaini et al. (2020).

The nasoturbinate of Catonyx tarijensis MNHN-Bol V 13364 is anteroposteriorly elongated and mediolaterally narrow. It is also inclined ventromedially in anterior view, facing the nasal septum. It constitutes the floor of the relatively large and undivided dorsal nasal meatus. The nasoturbinate reaches the anterior edge of the nasal bone anteriorly (as noted above), and extends posteriorly to the level of the postorbital process of the frontal. Unfortunately, the ethmoidal crest and the ethmoturbinates are not preserved, preventing observation of the posterior attachment point for the nasoturbinates. The nasoturbinates appear to be somewhat shorter in Chester Stock’s of Paramylodon.

Themaxilloturbinates are also partially observable. They show the same anteroposterior elongation as the nasoturbinates, but their anatomical structure is more complex. In fact, even if they are only partially preserved (broken in places and likely lacking the most delicate bony scrolls), they are clearly enrolled in a corkscrew fashion throughout most of their length. The outermost scroll begins with a dorsolateral attachment to the inner wall of the nasal cavity, and then extends medially, curving ventrally as it approaches the nasal septum, then curving again medially, dorsally, and so on. Similarly scrolled maxilloturbinates are present in Paramylodon harlani. In ventral view, the maxilloturbinates of Catonyx appear thicker, forming a continuous surface, likely corresponding to the ventral concha.

Cranial sinuses are well-developed in Catonyx tarijensis MNHNBol V 13364, extending for about two thirds of the entire skull length. Pneumatisation reaches its largest extent in the middle cranial area, where the sinuses mirror the external morphology of the cranium. More posteriorly, at the level of the squamosal, parietal, and occipital bones, pneumatisation is less dense or missing. This set of features is more similar to that of Choloepus than that of other extinct Giant Sloths like Glossotherium robustum and Paramylodon harlani, where the sinuses invade every bone all the way back to the occiput.

The frontal shows the highest level of pneumatisation, with extensive sinuses extending from its anterior to posterior edges, in both dorsal and lateral views. In lateral view, the extent of the sinuses reflects the anterior contact with both the lacrimal and the maxilla. Frontal sinuses merge posteriorly with the orbitosphenoid and the alisphenoid sinuses. In fact, the latter bones are also largely pneumatised at the level of the common aperture for the optic foramen and sphenorbital fissure, a common feature in extant and extinct Sloths.

The squamosal of MNHN-Bol V 13364 is partially pneumatised, with large sinuses in its anteriormost portion, invading the tip of the zygomatic process. However, the posterior half of the squamosal is not pneumatised, in contrast to Glossotherium, Choloepus and Bradypus. It should be noted that the squamosal pneumatisation of the extant Sloths is an epitympanic sinus continuous with the tympanic cavity ventrally, whereas that of Catonyx and Glossotherium is confined to the squamosal itself, as is typical for Mylodontids. Parietal sinuses are observable in Catonyx, but only in proximity to the frontoparietal suture, as in Choloepus. In comparison to the frontal sinuses, the parietal sinuses are smaller in size, allowing observation of the underlying brain cavity in dorsal and lateral views. In MNHN-Bol V 13364, sinuses at the level of the parietal represent the posteriormost extension of pneumatisation, which is also lacking in most of the basicranium.

Ventrally, some sinuses were detected on the cranial base. As already noted from the external aspect of MNHN-Bol V 13364, isolated sinuses are present in the pterygoid. They are placed in the middle of the descending lamina, but also posteriorly, at the posterior edge of the descending lamina, as in Glossotherium and Choloepus. Moreover, some globose and individualized sinuses, similar to those of Choloepus, are visible in the basisphenoid, forming a 'v-shaped' pneumatisatized area on the cranial base. As in extant Sloths, sinuses are lacking in the occipital.

The CT images of the mandible reveal the entire height of the lower teeth and the morphology of the mandibular canal. The left first, second, and fourth molariforms are pushed dorsally far out of their alveoli due to infilling sediment. The strongly hypselodont teeth once penetrated deeply in the mandible, reaching the mandibular canal.

The mandibular canal housed the mandibular division (V₃) of the trigeminal nerve, which exited the skull at the foramen ovale, entering the mandible through the internal aperture of the mandibular canal, located on the medial side of the coronoid process. As in all Folivorans, the mandibular canal also presents a posteroexternal opening on the lateral surface of the mandible.

The main branch of the mandibular canal is located ventrally in the dentary, extending medially to the lower dentition. The most anterior portion of the mandibular canal diverges into several rami at the level of the mandibular spout, emerging from the numerous mental foramina. The development of the mandibular canal and its rami reveal the many neurovascular terminations that occurred in this area.

The brain endocast of Catonyx tarijensis MNHNBol V 13364 is generally similar to that of other Mylodontid Sloths and Choloepus, characterised by prominent olfactory bulbs, a globose telencephalon and mediolaterally expanded cerebellar hemispheres.

 
Digital reconstructions of the brain cavity of Catonyx tarijensis MNHN-Bol V 13364 from the Pleistocene of Oruro (Bolivian Altiplano) in dorsal (A), ventral (B), lateral (C), and anterior (D) views. arf, anterior rhinal fissure; eg, ectosylvian gyrus; es, entolateral sulcus; fov, foramen ovale groove; h, hypophysis; hf, hypoglossal foramen groove; iam, internal acoustic meatus; jf, jugular foramen groove; lch, left cerebellar hemisphere; lf, longitudinal fissure; lg, lateral gyrus; ls, lateral sulcus; ob, olfactory bulb; og, occipital gyrus; olg, olfactory gyrus; op, olfactory peduncle; opt, optic nerve; opt/fsph, common groove for the optic foramen and sphenorbital fissure; org, orbital gyrus; p, paraflocculus; pl, pyriform lobe; prf, posterior rhinal fissure; ps, presylvian sulcus; pss, pseudosylvian sulcus; rch, right cerebellar hemisphere; sg, suprasylvian gyrus; ss, suprasylvian sulcus; tf, transverse fissure; tl, temporal lobe; ve, vermis. Colors indicate: gray, cerebrum; blue, olfactory bulbs; turquoise, cerebellum; orange, neurovascular connections. Roman numeral designations indicate cranial nerves. Scale bar equals 5 cm. Boscaini et al. (2020).

In dorsal view, the olfactory bulbs of Catonyx are mediolaterally wide, as in Glossotherium and Choloepus. In MNHN-Bol V 13364, the olfactory bulbs are particularly protruded anteroposteriorly, and are connected to the telencephalon by two divergent olfactory peduncles. The olfactory bulbs are also dorsally directed in lateral view and appear elliptical in shape in anterior view.

Compared to Megatherium, Glossotherium, and Lestodon, the cerebrum of Catonyx is less domed in lateral view. It is similar to Choloepus in this respect. In the same view, the telencephalon of Catonyx appears anteroposteriorly elongated, with prominent convolutions that are well-preserved on the left hemisphere. This convolution pattern consists of orbital, olfactory, suprasylvian, ectosylvian, and occipital gyri bordered by shallow furrows represented by the lateral, presylvian, suprasylvian, and pseudosylvian sulci, as well as by the rhinal and the transverse fissures. The pyriform lobe is less developed than its homologue in Glossotherium, where it appears as a prominent bulge. In dorsal view, the longitudinal fissure is barely visible on the anterior and posterior edges of the cerebrum, appreciable as slight surface inflections, whereas it is completely missing along its middle part. A weakly marked longitudinal fissure is also present in Scelidotherium and Choloepus and differs from that in Bradypus, Megatherium, Mylodon, Lestodon, and Glossotherium, in which it is more marked and wider, particularly between the frontal lobes. Dorsally, both the frontal and temporal lobes are laterally expanded, crossed by wide gyri separated by slightly marked sulci. In dorsal view the lateral, suprasylvian, and occipital gyri, as well as the lateral and the entolateral sulci, are observable. The general pattern of convolutions in Choloepus tarijensis is comparable to that reported for Glossotherium and Choloepus.

More posteriorly, the cerebellum is mediolaterally expanded and separated from the cerebrum by a marked transverse fissure. As in Lestodon, Mylodon, Scelidotherium, Megatherium, Choloepus and Glossotherium, the cerebellar hemispheres are mediolaterally expanded and separated by a well-developed vermis. In Catonyx, the strong development of the vermis and the marked transverse fissure are also particularly clear in lateral view. As in Glossotherium, and in contrast to Megatherium, Scelidotherium and the extant Sloths, the cerebellum appears wider mediolaterally in dorsal view than the posterior portion of the cerebrum. However, when compared with Glossotherium, Catonyx shows a more anteroposteriorly compressed cerebellum, similar to the condition observed in Choloepus.

Neither the ramifications of the olfactory nerves (I) nor the canals for the optic nerves (II) are preserved in MNHN-Bol V 13364. However, the impression of the optic chiasma itself is preserved, and it is likely that the optic nerve traveled some distance forward to merge with the sphenorbital fissure as in other Mylodontids. In ventral view, the common groove for the optic foramen and the sphenorbital fissure (accommodating cranial nerves II, III, IV, V₁, V, and VI), as well as that for the foramen ovale (housing V, themandibular branch of the trigeminal nerve), are the largest andmost extended neurovascular canals in Catonyx. These openings are located at the level of the anteriormost portion of the brain and are more widely separated at their base than is the case in Glossotherium, in which the foramina converge at their origin. In lateral view, the sphenorbital fissure and the foramen ovale project forward strongly, forming an angle of about 30◦ to one another. The internal acoustic meatus appears as a small bump located under the cerebellar hemispheres, close to the well-developed jugular and hypoglossal foramina. The internal acoustic meatus is wider at its base and relatively larger than that of Glossotherium. In Catonyx tarijensis MNHN-Bol V 13364, the jugular and hypoglossal canals are similar in shape and close to each other, whereas in Glossotherium robustum the hypoglossal is relatively larger and originates farther posteriorly. This is also reflected in the external cranial anatomy of Catonyx, and a similar condition was also observed in Scelidotherium. In contrast, the hypoglossal foramen is larger than the jugular in Mylodon and Glossotherium.

The Pleistocene Scelidotheriine Sloth Catonyx tarijensis was first described on the basis of fossil remains recovered in the Tarija Valley (southern Bolivia). This locality is therefore the type locality of Catonyx tarijensis, but it also represents the site that has provided the greatest number of skeletal remains for this species. After the original description, many other remains referable to Catonyx tarijensis were recovered in Argentina and Uruguay, extending its palaeobiogeographic distribution to more southern latitudes in South America. The remains reported by Boscaini et al. represent the first record of this species from latitudes north of its type locality. They extend the geographic distribution of this taxon northward and also expand the spectrum of palaeoenvironments in which Catonyx tarijensis could survive. Palaeoenvironmental reconstructions of the Pleistocene of Tarija suggest the presence of open-county grasslands, with rivers and lakes surrounded by shrubs and scattered trees. The Bolivian Altiplano is distinguished by its higher altitude, but also its colder temperatures and dryer conditions relative to those recorded for the Tarija Valley. During the late Pleistocene, the Altiplano was characterized by periods of extreme dryness and shrinking bodies of water. The recovery of Catonyx tarijensis in the late Pleistocene of the Bolivian Altiplano suggests that this species could have been able to survive under a broad spectrum of palaeoecological conditions.

The exceptional preservation of the skull of MNHN-Bol V 13364, together with its subadult ontogenetic stage, offer the opportunity for detailed observation of its external and internal anatomy, and to characterize some anatomical areas previously unknown for Catonyx tarijensis. The subadult age of MNHN-Bol V 13364 is indicated by the presence of many sutural contacts and the poorly developed temporal ridges and sagittal crest, as well as other features detected in the ear region, such as the narrow gap between the entotympanic and the basioccipital/basisphenoid tuber, the unusually deep stylohyal fossa, the presence of an open groove for the occipital artery on the paraoccipital process of the petrosal, and the reduced anteroventral process of the tegmen tympani. The presence of clear sutures in this skull has allowed us to observe the distinct outlines of many of the cranial bones for the first time, and have revealed at least one noteworthy, unusual feature, the small lateral exposure of the orbitosphenoid posterior to the aperture for the optic foramen/sphenorbital fissure. Another probable ontogeny-related feature is the occurrence of the lacrimal-nasal contact, which is absent in MNHN-Bol V 13364, but figured as present in an adult  Catonyx tarijensis specimen by Hugh McDonald. This feature was observed as variably present in Scelidotherium leptocephalum but its presence was later considered a synapomorphy of Scelidotheriinae by  Timothy Gaudin. 

Other anatomical regions, such as the nasopharyngeal roof, the orbital foramina, and the hyoid apparatus are described in Catonyx for first time. Among these, the hyoid apparatus has been considered indicative of lingual anatomy and function, providing valuable information on the procurement and processing of dietary items in the oral cavity. Although Pleistocene Mylodontids were generally supposed to have had strong tongues, a 2010 study suggested that Scelidotherium had significantly reduced lingual protrusion, when compared with the Mylodontine Glossotherium. This was inferred mainly from the robust and barely mobile hyoid elements of Scelidotherium, which differ from the less rigidly articulated apparatus of Glossotherium. As a result, browsing species such as Scelidotherium leptocephalum possessed long skulls and mandibular symphyses, and likely had strong prehensile lips but reduced lingual protrusion. In contrast, grazing species like Glossotherium robustum were characterised by shorter and broader skulls and mandibles, associated with reduced lips and increased lingual protrusion. On the one hand, the hyoid apparatus of Catonyx tarijensis bears a strong resemblance to that of Scelidotherium leptocephalum, further demonstrating that the morphology of the hyoid elements is phylogenetically informative. On the other hand, the strong similarity in the morphology of the hyoid apparatus among Scelidotheriine Sloths suggests similar feeding behaviors, characterised by limited lingual protrusion, with prehensile upper lips compensating for the less mobile tongue. It has been proposed that in narrow-muzzled Sloths such as Scelidotherium and Megatherium, the upper lip was prehensile and used to select the plants. However, extinct Sloths generally show a large mandibular canal, several foramina connected to the mandibular canal through multiple rami, including multiple mental foramina, as well as a wide posterior external opening of the mandibular canal, suggesting that the whole mandible was probably well-innervated and vascularised, especially in its anteriormost part. Accordingly, it is plausible that the lower lip also had greater mobility, contributing to better sensitivity and greater control of their grip while browsing.

 
Hypothetical life reconstruction of Catonyx tarijensis showing its inferred feeding behavior. The reconstruction is based on the skull MNHN-Bol V 13364 from the Pleistocene of Oruro (Bolivian Altiplano). Dawid Iurino in Boscaini et al.(2020).

Strong bite movements concentrated in the mandible are also in accordance with the presence in MNHN-Bol V 13364 of two facets for the articulation of the mandible with cranial glenoid fossae. Moreover, the well-developed muscle scars in the ventral margin of the dentary are indicative of marked masticatory strength.

The digital model of the brain cavity of Catonyx tarijensis MNHN-Bol V 13364 is extremely similar to that of Glossotherium robustum and Choloepus hoffmanni and other giant extinct Mylodontid Sloths. In lateral view, only minor differences are observable between Catonyx tarijensis and Glossotherium robustum in the shape of the olfactory bulbs, cerebral hemispheres, and cerebellum. Moreover, the pattern of sulci and gyri is extremely similar among extinct Mylodontids Sloths and the extant Two-toed Sloths. Although Catonyx and Scelidotherium show a weakly marked longitudinal fissure in comparison to other Mylodontidae, the general pattern of convolutions is similar to that in other members of the clade. In general, the similar shape of the brain cavity and the shared pattern of convolutions among extinct Mylodontid Sloths and the living Two-toed Sloths, as well as the similar development of cranial sinuses in Cholopeus and the Scelidotheriines, is noteworthy. Indeed, recentmolecular-based phylogenetic studies recovered the Two-toed Sloths as living representatives of Mylodontidae. Further CT-scanning data on other Mylodontids and Antillean taxa is required to test this hypothesis, but the present study reveals the importance of accounting for novel morphological information from previously unexplored sources.

It should also be noted that there are also endocranial features which lack phylogenetic consistency among Mylodontid Sloths. Differences are evident in the pattern by which cranial nerves leave the brain cavity. As in Glossotherium robustum, but unlike extant Sloths, Catonyx tarijensis possesses grooves for the optic foramen/sphenorbital fissure, the foramen ovale, and the hypoglossal foramen that are enlarged relative to other foramina transmitting cranial nerves. This suggests a greater development of the trigeminal and hypoglossal nerves, compared to other cranial nerves. However, in Catonyx tarijensis, this relative difference in the size of cranial nerve grooves is not as marked as in Glossotherium robustum. This is particularly true for the groove for the hypoglossal nerve (XII), which is the only nerve leaving the skull from the hypoglossal foramen. In Catonyx tarijensis the hypoglossal foramen is roughly equivalent in size to the jugular foramen, whereas in Glossotherium robustum the hypoglossal foramen is larger. The hypoglossal nerve, which innervates the glossal musculature, controls most of the intrinsic and extrinsic lingual musculature. Together with evidence from the hyoid apparatus discussed above, this morphology can be viewed as further indirect evidence of more limited lingual protrusion of Catonyx tarijensis in comparison to Glossotherium robustum.

Other differences between Catonyx and Glossotherium are noted in the morphology of their cranial sinuses. In general, cranial pneumatisation is markedly reduced in the posteriormost portion of the skull of Catonyx tarijensis, relative to that observed in Glossotherium robustum. As in Choloepus, the sinuses of Catonyx become smaller and more separate from one another at the frontoparietal suture, and are absent in the more posterior parts of the braincase. Preliminary observations suggest that this morphology is present in other Scelidotheriinae, emphasising the possible phylogenetic value of cranial pneumatization anatomy. In fact, for other large Mammalian herbivores, the extent of cranial sinuses varies at the interspecific level according to both phylogeny and general body size. New body size estimations for Mylodontid Sloths predicted a larger body mass for Catonyx tarijensis (about 1640 kg) than Glossotherium robustum (about 1480 kg), suggesting that among both Xenarthrans and Bovids, sinus organisation could be driven primarily by phylogeny, and only secondarily related to general body mass.

However, the presence of functional or developmental constraints for explaining this alternative morphology cannot currently be refuted. Scelidotheriines have narrower heads than Mylodontines and so may not have required as much pneumatisation to reduce the weight of the head. However, it is also true that sinuses in Sloths are more frequently present in the middle cranial region, extending posteriorly only in some cases suggesting that this feature could be ontogeny-related. Thus, the question of the relative contributions of phylogeny and function to the pneumatic patterns observed in extinct sloths is clearly one that will require further study.

Boscaini et al. report novel data on the external and internal cranial anatomy of the Scelidotheriine Sloth Catonyx tarijensis, further extending knowledge on the cranial morphology of South American extinct Sloths. This discovery, from late Pleistocene deposits of the Department of Oruro (southwestern Bolivia), allowed them to extend the palaeobiogeographic range of  Catonyx tarijensis to more northern latitudes, as well as to the high altitudes of the Bolivian Altiplano.

The specimen described by Boscaini et al., a particularly well-preserved skull with associated mandible and hyoid apparatus, corresponds to a subadult individual of Catonyx tarijensis. Combined information from the external and the internal anatomy, obtained through CT-scanning followed by digital modeling techniques, allowed Boscaini et al. to analyse several anatomical regions that were unknown for this taxon.

Among these, the ear region, the nasopharyngeal area and the hyoid elements revealed several phylogenetically and functionally informative features. Digital models permitted observations of the brain cavity, neurovascular grooves and cranial sinuses, and comparisons of these features with other Pleistocene Mylodontids.

The information presented in Boscaini et al.'s report confirms previous hypotheses on inferred modes of food intake among extinct Scelidotheriine Sloths. According to the data now available, Catonyx tarijensis was likely a browsing species, which tore vegetation mainly using its strong lips, rather than the tongue. This habit was probably common among Scelidotheriinae and contrasts with that present in its sister clade, Mylodontinae, whose members were predominantly grazing species with smaller lips and more strongly protruding tongues.

Boscaini et al.'s study represents a further step in assembling broader morphological comparisons of digital endocranial models among extinct Sloths, and emphasises the importance of applying these new methodologies for understanding the evolution of this Mammalian group.

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