Showing posts with label Seychelles. Show all posts
Showing posts with label Seychelles. Show all posts

Saturday, 17 March 2018

Crocodiles and Tortoises from the Late Pleistocene of Aldabra Atoll in the Seychelles

Understanding predator-prey relationships is a key part of reconstructing past ecosystems, yet this is often difficult to do. The most reliable ways to do this are to find traces of prey items within the digestive tracts of fossilised predators, but such fossils are extremely rare, so palaeontologists often look for other evidence, such as preserved material within copralites (fossilised feces) or bite marks on bones or shells. Testudines (Turtles and Tortoises) have been around since the Triassic, and their fossils often show signs of feeding traces from predatory animals. Thus fossil Testudines are known with damage assigned to the actions of a number of different predators, from Dinosaurs to Badgers, while modern Testudines are known to be predated by a wide range of Mammals, Crododylians, Birds, Sharks, Fish and even Crabs.

In a paper published in the journal Royal Society Open Science on 24 January 2018, Torsten Scheyer of the Palaeontological Institute and Museum at the University of Zurich, Massimo Delfino of the Dipartimento di Scienze della Terra at the Università di Torino, and the Institut Català de Paleontologia Miquel Crusafont at the Universitat Autònoma de Barcelona, Nicole Klein of the Steinmann Institut für Geologie, Paläontologie und Mineralogie at the Universität Bonn, Nancy Bunbury and Frauke Fleischer-Dogley of the Seychelles Islands Foundation and Dennis Hansen of the Zoological Museum and the Department of Evolutionary Biology and Environmental Studies at the University of Zurich, describe a series of Crocodylian and Tortoise remains from around a Late Pleistocene pool on Aldabra Atol in the Seychelles, and infer a predator-prey relationship between them.

Aldabra is currently home to about 100 000 Giant Seychelles Tortoises, Aldabrachelys gigantea, a population that was almost wiped out by Human predation in the nineteenth century, but which, like the Giant Tortoises of the Galapagos Islands, is thought to be largely immune from non-Human predation on account of the size and heavy armour of the Tortoises. Scheyer et al. record the discovery of a large number of disarticulated Tortoise shell fragments from the Late Pleistocene of Aldabra Atoll, which appear to have come from animals identical to the modern population, and are therefore assumed to be the same species. Many of these fragments show round puncture marks, thought most likely to have been caused by the bite of a large Crocodylian, as they are inconsistent with bite marks made by any known Mammal species (and no large Mammals are known from the Pleistocene of the Seychelles) but similar to bite marks made by living Crocodiles.

Overview of new Giant Tortoise material fromthe Late Pleistocene of Aldabra Atoll. (a) Large nuchal still sutured to first left peripheral in dorsal and ventral view; (b) small nuchal in dorsal and ventral view, note cervical scute in both nuchals; (c) larger costal fragment in ventral view; (d) a smaller costal fragment with sulcus in dorsal and ventral view; (e) smaller hyo- or hypoplastron fragment  in ventral and dorsal view; (f ) larger hyo- or hypoplastron fragment in ventral and dorsal view; (g) small shell fragment which might also pertain to a costal in purported dorsal view; (h–k) associated pelvic girdle elements; (h) distal part of an ilium in lateral and medial view; (i) fused pubes in angled anterodorsal view; (j) fused ischia in angled posterodorsal, angled posteroventral and posterior view; (k) fused pubes and ischia in natural articulated position in dorsal view. Scheyer et al. (2018).

Scheyer et al. also report the discovery of a number of Crocodile bones from the site. These are not  assigned to a specific species due to their fragmentary nature, but are thought likely to have come from Aldabrachampsus dilophus, an extinct species previously described from Pleistocene deposits on the island. The original material assigned to Aldabrachampsus dilophus was from an animal estimated to have been about 2-2.5 m in length, and therefore unlikely to have been able to tackle Tortoises which themselves could exceed a meter in length, but the new material appears to have come from an animal as large as 3.7 m  long, much more likely to have been capable of handling such prey. Scheyer et al. stop short of positively identifying Aldabrachampsus dilophus as the animal responsible for the attacks, however, as the islands are known to have previously been home to at least one other large Crocodylian, the Saltwater Crocodile, Crocodylus porosus, which was present in the Seychelles until wiped out by Human activity in the early nineteenth century.

 Overview of new Crocodylian material from the Late Pleistocene of Aldabra Atoll. (a) Larger left dentary fragment with alveoli d3–d8 preserved in dorsal, medial and lateral view; (b) small left dentary fragment with alveoli d4–d6 preserved in dorsal and ventral view; (c) skull roof fragment consisting mainly of the left postorbital and partial frontal and parietal fragments in dorsal and ventral view; (d) dorsal procoelous vertebra with neural arch preserving the postzygapophyses in left lateral, right lateral and anterior view; (e) strongly eroded vertebral centrum still preserving the prezygapophyses in dorsal, ventral, right lateral and anterior view; (f ) isolated left prezygapophysis in dorsal view; (g) posterior half of osteoderm in dorsal, ventral and posterior view. Scheyer et al. (2018).

Scheyer et al. further note that all of the observed damage to Tortoise shell scutes (plates) is from the area around the front aperture of the shell, and that none of the shells show signs of having become disarticulated by any means other than natural decay. This indicates that the Crocodiles were using the front aperture of the shell to gain access to meat of the Tortoise, but that they were incapable of actually breaking open the shells.

 Size comparison of Crocodylian and Giant Tortoise remains. (a) Image and interpretative drawing of larger left dentary fragment; broken bone surface area indicated by grey patch) scaled and fitted to lower jaw of extant Crocodylus niloticus. In addition, the outline of right dentary fragment of Aldabrachampsus dilophus has been added for comparison; (b) image and interpretative drawing of skull roof fragment consisting of the postorbital (broken bone surface area indicated by grey patch), and frontal and parietal fragments scaled and fitted to skull of extant Crocodylus niloticus. For comparison, the outline of the right squamosal of Albadrachampsus dilophus; (c) dorsal and ventral sides of the larger nuchal with interpretative drawings of sutures and scute sulci superimposed. Note equidistance of some of the feeding traces (marked by white arrowheads connected by thin white stippled line), whichmight indicate repeated bites of the same Crocodylian jaw portion; (d) larger nuchal scaled to fit a large male Aldabrachelys gigantea with a headwidth of 95.1 mm and a curved carapace length of 114.4 cm. This specimen has a cervical scute width of about 30 mm, comparable to the maximum width of the same element in the fossil. ce, cervical scute;m1–2, marginal scute 1–2; d3–d10, dentary alveolus 1–10; df, dental foramina; f, frontal; n, nuchal; p, parietal; p1, first peripheral; po, postorbital, sq, squamosal, v1, first vertebral scute. Scheyer et al. (2018).

The presence of Crocodylian bite marks around the front apertures of Giant Tortoise shells could indicate that the Crocodiles were ambushing the Tortoises at water holes, hiding beneath the water then seizing the Tortoises as they attempted to drink with their vulnerable heads and necks extended, which would be consistent with the hunting methods of modern Crocodiles.

 Possible Pleistocene trophic interaction scenario including Crocodylian and Giant Tortoise based on new fossil evidence. Hunting Crocodylian attracted by drinking Tortoise. The attack likely occurred frontally or fronto-laterally where the head, neck and soft tissue parts of the anterior shell aperture are exposed. Scheyer et al. (2018).

However it cannot be ruled out that the Crocodiles were simply scavenging the bodies of Tortoises that had died for other reasons (also consistent with the behaviour of modern Crocodiles), and that they were concentrating this scavenging around the front aperture as this was the only way in which they could gain access to the meat of the Tortoises.

Second possible Pleistocene trophic interaction scenario including Crocodylian and Giant Tortoise based on new fossil evidence. Decomposing tortoise carcass at breakdown stage 2 (putrid stage, with Dipterans and Ants) attracting scavenging Crocodylian and Coconut Crab. The spreading of the latter throughout the Indo-Pacific region has been proposed to have happened during the Pleistocene, and today this Crab is one of the most active decomposition agents on Aldabra Atoll. As in the previous scenario, the Crocodylian is hypothesised to approach the carcass from the front, at the point of easiest access to the viscera. Scheyer et al. (2018).

See also...

http://sciencythoughts.blogspot.co.uk/2018/02/saltwater-crocodile-kills-man-in.htmlhttp://sciencythoughts.blogspot.co.uk/2017/12/crocodile-kills-man-in-karonga.html
http://sciencythoughts.blogspot.co.uk/2017/12/britisg-tourist-attacked-by-crocodile.htmlhttp://sciencythoughts.blogspot.co.uk/2017/10/hypogeophis-pti-new-species-of.html
http://sciencythoughts.blogspot.co.uk/2017/09/woman-killed-by-crocodile-in-lusaka.htmlhttp://sciencythoughts.blogspot.co.uk/2017/02/understanding-origins-of-giant.html
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Monday, 9 October 2017

Hypogeophis pti: A new species of Caecilian from Praslin Island, the Seychelles.

Caecilians are limbless burrowing Amphibians found in tropical regions of Asia, Africa and South America. They resemble Earthworms, with circular folds on their skin which make them look segmented and skin covering their eyes (though they can see). Unlike snakes they have greatly reduced or even absent tails with their anus close to or at the tips of their bodies. Caecilians are predatory with a well developed sense of smell. Most Caecilians are found on continents; island dwelling species are very rare in this group. However one island group they have colonised are the tropical Seychelles in the Indian Ocean, where six species have been described to date. Four of these six species, Hypogeophis rostratus, Grandisonia alternans, Grandisonia larvata, and Grandisonia sechellensis, are found across several islands, and appear to be tolerant of a wide range of habitats, while the remaining two, Praslinia cooperi, and Hypogeophis brevis, appear to be restricted to habitats above 350 m, and are found on the two islands of the Seychelles that reach over 400 m, Mahé and Silhouette, with Hypogeophis brevis only ever recorded from Mahé.

In a paper published in the journal Zootaxa on 6 October 2017, Simon Maddock of the Department of Life Sciences at The Natural History Museum, Department of Genetics, Evolution and Environment at University College London, and the School of Biology, Chemistry and Forensic Science at the University of Wolverhampton, Mark Wilkinson, also of the Department of Life Sciences at The Natural History Museum, Ronald Nussbaum of the Museum of Zoology and Department of Ecology and Evolutionary Biology at the University of Michigan, and David Gower, again of the Department of Life Sciences at The Natural History Museum, describe a new species of Caecillian from Praslin Island in the Seychelles.

The new species is named Hypogeophis pti, where 'pti' means small in Seychellois Creole (deriving from the French 'petit'). The species is notably smaller than any other Caecilian from the Seychelles, with less than 70 vertebrae and a maximum recorded length of 116 mm. This species is grey brown in colour, lighter on the underside, with eyes visible as dark spots. The species was found at three locations, around the village of Ma Katrine, and at Fond Peper and Glacis Noir in the Praslin National Park. All specimens were found at altitudes of between 170 and 350 m, in slightly acid silty clay loam or sandy loam soils beneath dense layers of dried leaves.

Live specimen of Hypogeophis pti from Fond Peper in thr Praslin National Park. Maddock et al. (2017).

See also...

http://sciencythoughts.blogspot.co.uk/2017/02/understanding-origins-of-giant.htmlhttp://sciencythoughts.blogspot.co.uk/2015/02/a-new-species-of-caecilian-from-brazil.html
http://sciencythoughts.blogspot.co.uk/2014/11/the-impact-of-yellow-crazy-ant-on.htmlhttp://sciencythoughts.blogspot.co.uk/2014/05/a-new-species-of-caecilian-from-french.html
http://sciencythoughts.blogspot.co.uk/2012/02/new-amphibians-from-northeast-india.html
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Saturday, 4 February 2017

Understanding the origins of the Giant Tortoises of the southwest Indian Ocean.

Giant Tortoises were once numerous on both continental and island landmasses, though most of the continental species became extinct in the Late Pleistocene and most of the island species in the Holocene, all of which extinctions have been linked to a single cause, the spread of Modern Humans around the globe. Today only two species of Giant Turtle remain, Chelonoidis nigra in the Galapagos and Aldabrachelys gigantean on Aldabra Island, a small coral atoll in the Indian Ocean, about 400 km north of Madagascar and about 600 km west of the east coast of Africa. The southwest Indian Ocean was formerly somewhat of a hotspot for Giant Tortoise diversity, with at least two species on Madagascar, plus two species on Mauritius, two species on Rodrigues and one on La Réunion.

An Aldabra Giant Tortoise, Aldabrachelys gigantean. Wikipedia.

How the Tortoises got to these islands is somewhat of a mystery; the ancestors of the Giant Tortoises of Madagascar presumably reached there while Madagascar was still attached to the Gondwanan supercontinent in the Cretaceous, or floating there from Africa in the Eocene or earlier, when prevalent currents in the southwest Indian Ocean ran from Africa towards Madagascar (Giant Tortoises seldom voluntarily swim, but float well and can survive long periods at sea, so Tortoises swept out to sea by, for example, flood events, have a reasonable chance of surviving till they reach a new landmass). However from the end of the Eocene onwards, prevalent currents in the southern Indian Ocean have all flowed east-to-west, making it highly unlikely that a Tortoise could drift from island to island in this direction without swimming hundreds of kilometres against the current. This makes the presence of Tortoises on smaller Indian Ocean islands hard to understand, as all of these islands have appeared since the end of the Eocene; Mauritius having first appeared about 8.9 million years ago, La Réunion about 2.2 million years ago and Rodrigues about 1.5 million years ago, while Aldabra, with a highest point only eight meters above sea level, has emerged from and been covered by the sea several times during the past million years, and is thought to have been continuously exposed only for the last 80 000 years.

In a paper published in the Journal of Biogeography on 11 March 2016, Lucienne Wilmé of the School of Agronomy at the University of Antananarivo, and the Missouri Botanical Garden's Madagascar Research & Conservation Program, Patrick Waeber of Forest Management and Development at the Swiss Federal Institute of Technology Zurich, and Joerg Ganzhorn of Animal Ecology and Conservation at Hamburg University, discuss the possibility that Giant Tortoises may have reached the islands of the southwest Indian Ocean not by drifting on ocean currents, but by active movement by Humans.

The earliest Humans arrived on Madagascar about 4000 years ago. These were fairly advanced, already having metal tools, and are thought to have come from Southeast Asia, with subsequent waves of arrivals from Arabia, Africa and eventually Europe. People from Southeast Asia began making ocean-crossing journeys about 45 000 years ago, hopping from island-to-island to reach remote parts of the Indian and Pacific Oceans, as well as the continent of Australia, and possibly South America.

During this process they introduced many animals and plants to the islands they visited, such as Pacific Rat, Rattus exulans, Chicken, Gallus gallus, Sweet Potato, Ipomea batatas, Taro, Colocasia sp., and Banana, Musa sp.. Giant Tortoises have been considered to be excellent eating by most cultures that have encountered them (most species being wiped out by encounters with hungry European sailors in the eighteenth and nineteenth centuries). It is not, therefore, an outlandish idea that early navigators might, having encountered Giant Tortoises on Madagascar, have moved small populations to other islands in the Indian Ocean as a potential food source, either for colonists living permanently on the islands or for other sailors visiting the islands (European sailors introduced Sheep and Goats to many small islands for similar reasons).

Giant land tortoises, geology, oceanography, archaeology of the south-western Indian Ocean, and distance between islands and ocean surface currents prevailing since the closure of the Tethys Ocean. (SdM = Saya de Malha; N = Nazareth; StB = St Brandon; LGM = Last Glacial Maximum). Wilmé et al. (2016).

Wilmé et al. note that no ancient archaeological sites have been found on the Mascarine Islands (Mauritius, Rodrigues and La Réunion), which would seem to present a problem to this theory. However they note that sealevels have varied considerably over the past few thousand years, which has a particularly strong effect on small islands, so that it is quite possible ancient coastal settlements around these islands may have been covered by rising seas.

More problematically, the Tortoises of the southwest Indian Ocean are considered to have belonged to eight different species, which seems unlikely if they were all transplanted from Madagascar (where only two species are known). Wilmé et al. do not dispute the current accepted taxonomy of these species, however they do observe that species isolated on small islands are known to evolve rapidly, and that Tortoises, which produce particularly large clutches of young, are potentially more prone to this effect than slower breeding groups such as Birds or Mammals.

See also...

http://sciencythoughts.blogspot.co.uk/2016/10/mendozachelys-wichmanni-new-species-of.htmlhttp://sciencythoughts.blogspot.co.uk/2016/10/paiutemys-tibert-new-species-of.html
http://sciencythoughts.blogspot.co.uk/2015/12/xiaochelys-ningchengensis-sinemydid.htmlhttp://sciencythoughts.blogspot.co.uk/2015/11/turtle-remains-from-late-miocene-to.html
http://sciencythoughts.blogspot.co.uk/2015/10/turtle-eggs-from-late-cretaceous-of.htmlhttp://sciencythoughts.blogspot.co.uk/2015/10/pappochelys-rosinae-proto-turtle-from.html
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Friday, 7 November 2014

The impact of the Yellow Crazy Ant on the Vallée de Mai Palm Forest of Praslin Island.


Ants are often highly adaptable animals, and many species have proven to be highly invasive pests, able to reach new homes by hitching a ride on cargo moved by Humans, and often proceeding modify the environment in their new homes, to the detriment of organisms already living there. The Yellow Crazy Ant, Anoplolepis gracilipes, is considered to be one of the world’s top 100 invasive species, and has had a catastrophic impact on the ecosystems of a number of small islands. The origin of the Yellow Crazy Ant is unknown, though it is thought to come from central East Africa or an unknown location in Asia, but is now distributed widely in tropical and subtropical ecosystems; everywhere it has been encountered it is an invasive species, rapidly modifying its new environment  with its 24 hour aggressive foraging and wide food tolerances. 

A Yellow Crazy Ants, Anoplolepis gracilipes. April Nobile/AntWeb.

In a paper published in the journal NeoBiota on 26 June 2014, Christopher Kaiser-Bunbury of the Seychelles Islands Foundation and Ecological Networks at Technischen Universität Darmstadt, Harriet Cuthbert of the Centre for Ecology, Evolutionand Conservation at the University of East Anglia, Rebeckah Fox of the Seychelles Islands Foundation and the Centre for Ecology, Evolution and Conservation at the University of East Anglia and Darryl Birch and Nancy Bunbury of the Seychelles Islands Foundation describe the impact of the Yellow Crazy Ant on the Vallée de Mai Palm Forest of Praslin Island in the Seychelles.

The Vallée de Mai Palm Forest is one of the last surviving areas of relatively undisturbed Island Palm Forest in the Seychelles, and indeed the world. As such it is a UNESCO designated World Heritage Site considered extremely important by conservationists, as well as an area of renowned natural beauty which is a major attraction for tourists, tourism being a major industry in the Seychelles. The forest is dominated by the iconic Coco de Mer Palm, Lodoicea maldivica, which is famous for producing the world’s largest seed, and is home to a wide range of endemic (not found anywhere else) animals and plants.

A Coco de Mer Palm, Lodoicea maldivica, in the Jardin botanique de Kandy. Wikimedia Commons.

Yellow Crazy Ants were first reported in the Seychelles on the island of Mahé in 1962. They reached Praslin by 1975, but were eradicated by the rapid implementation of control measures. Since then they have spread across the archipelago, and by 2000 were established on nine of the central islands, including Praslin again. They were first sighted in Vallée de Mai in August 2009, prompting an extensive survey of the park in March-June 2010, followed by subsequent surveys in April and December 2012.

Kaiser-Bunbury et al. report that in 2010 Yellow Crazy Ants occupied 28% of the Vallée de Mai. By April 2012 they occupied 36% of the area, with 12% of the park newly occupied and 4% previously occupied but now abandoned by the Ants. By December 2012 the range occupied by the Ants had contracted to 28% again, with no new areas invaded. The area invaded by the Ants was in the northeastern corner of the forest, where a new visitor centre, constructed in 2007-09, and it is likely that the Ants were introduced with building materials brought to the site for this project, and that the operating visitor centre was also facilitating the continued presence of the ants in an area where they otherwise appeared to have difficulty becoming established, possibly by providing the Ants with additional sources of food.

Within the invaded areas the Ants were most abundant on the ground, though they were clearly able to climb the Coco de Mer trees and even move from tree-to-tree within the canopy. The Ants were more abundant in introduced where they were tending two species the honeydew-producing Hemipterans (Bugs) Pulvinariaur bicola and Icerya seychellarum, both of which are introduced species. Many Ant species cultivate sap-suckingHemipterans in this way, relying on the carbohydrate-rich honeydew as a source of food, and Yellow Crazy Ants have been observed to utilise a variety of species in this way. Hemipterans are not usually able to able to feed from Palms, however, making it harder for the Ants to find a food source there.

A Cinnamon Tree, Cinnamomum verum, on Curieuse Island in the Seychelles. Marion Schneider & Christoph Aistleitner/Wikimedia Commons.

In areas where the Ants were present the numbers of indigenous Molluscs living in the Palms was greatly reduced, and one species, the White Slug, Vaginula seychellensis, was completely excluded. Several species of Lizards also showed reduced numbers, particularly the Bronze Gecko, Ailuronyx tachyscopaeus, though one species, the Day Gecko, Phelsuma astriata, showed an increase in numbers. It was not clear whether Phelsuma astriata was prospering because it was able to utilise the Ants as a food source, or because of increased access to its natural food supply, the pollen produced by the male Coco de Mer trees, which is also consumed by several other species of Gecko and Mollusc (though this is produced in great abundance all year round and not usually thought to be a limiting resource).

See also…

Madagascar is considered to be one of the world’s biodiversity hotspots. The island has an area of 592 750 km2 and is located in the southern Indian Ocean, giving it a tropical climate with a diverse range of habitats..
 
Ants and Termites are eusocial Insects that have dominated many tropical ecosystems since at least the Early Cretaceous. Relationships between the two groups (which are not closely related) are complex, with some species able to tolerate one-another and even share nests, while others are deeply hostile, typically with Ants feeding on Termites or Termites fighting to keep all Ants away from their territories. However...
 
 Leafcutter Ants harvest vegetation from the tropical rainforests of South and Central America, which they then carry back to their nests and use as feed in fungal farms. Each species of Ant has its own unique...
 
 
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