Showing posts with label Coelacanth. Show all posts
Showing posts with label Coelacanth. Show all posts

Monday, 30 March 2020

Latimeria chalumnae: A live Coelocanth seen living off the KwaZulu-Natal South Coast, South Africa.

When a living coelacanth was trawled off East London, South Africa, at a depth between 72 m and 100 m on 22 December 1938, it caused an international sensation. The specimen was saved for science by the young curator of the East London Museum, Marjorie Courtenay-Latimer and identified by JLB Smith of Rhodes University College. Smith named it Latimeria chalumnae, after Courtenay-Latimer and the river off which it was caught. JLB Smith, who was a keen angler and had an excellent knowledge of Fish anatomy, behaviour and habitat preferences, predicted that the East London Fish was a stray from relatively shallow rocky reefs further north on the tropical east coast of Africa. Latimeria chalumnae has since been found in the Comoros (over 200 specimens), Mozambique (one specimen), Madagascar (over 13 specimens), Kenya (one specimen), and Tanzania (over 70 specimens), and a colony was discovered in the iSimangaliso Wetland Park in northern Zululand, South Africa, in 2000. Another species of living Coelacanth, Latimeria. menadoensis, was found on the other side of the Indian Ocean off North Sulawesi Island in Indonesia in 1997.this species is smaller than Latimeria chalumnae and its body, which is also covered with white spots, is brown rather than blue.

In a paper published in the South African Journal of Science on 26 March 2020, Michael Fraser of Pumula in KwaZulu-Natal, Bruce Henderson and Pieter Carstens of Somerset West in Western Cape Province, Alan Fraser, also of Pumula in KwaZulu-Natal, Benjamin Henderson and Marc Dukes, also of Somerset West in Western Cape Province, and Michael Bruton of the South African Institute for Aquatic Biodiversity, describe the sighting of a living Coelocanth, Latimeria chalumnae, off the KwaZulu-Natal South Coast Region, and present a review of Coelocanth sightings off the African coast and in the western Indian Ocean.

The first scientist to observe a living Coelacanth was Jacques Millot of France who briefly examined a dying immature female Fish (142 cm, 41 kg) in a flooded wooden boat at Mutsamudu on Anjouan Island in the Comoros in 1954. The Fish was captured at 8.00 pm on 12 November 1954 and was kept alive in the sunken boat from about 11.30 pm until 3.30 pm on 13 November 1954. The Fish was stressed and exhibited only feeble movements.

Several Coelacanths that were subsequently caught by traditional fishermen in the Comoros (mainly Grand Comoro), and brought to the attention of scientists, survived for periods of 1–42 hours, (usually less than 11 hours), near the water surface where they could be observed by divers.

Hans Fricke and his team from Germany were the first to study the living Coelacanth in detail from their research submersible Jago. They compiled an extraordinary data series on the living Coelacanth in the Comoros spanning 21 years and including 145 specimens that had been individually identified using the unique patterns of white spots on their bodies.

On 28 October 2000, mixed-gas divers Pieter Venter, Peter Timm and Etienne le Roux discovered Coelacanths living at a depth of 104 m in Jesser Canyon at Sodwana Bay in the newly proclaimed iSimangaliso Wetland Park in Maputaland; the shallowest sighting of Coelacanths at that time. On 27 November 2000 they filmed three coelacanths at a depth of 106 m in Jesser Canyon. These discoveries led to the establishment of the African Coelacanth Ecosystem Programme in April 2002 which aimed to initiate and promote a new phase of multidisciplinary research on the coelacanth and its habitats.

The South African Institute for Aquatic Biodiversity in Makhanda (previously Grahamstown) was appointed as the lead organisation for African Coelacanth Ecosystem Programme, which has been carried out in three phases: 2001–2006, 2007–2011 and 2012–2015. From 2002 to 2004, Professor Hans Fricke and his team returned to South Africa with the Jago submersible to study Coelacanths in the iSimangaliso Wetland Park from the FRS Algoa as part of African Coelacanth Ecosystem Programme. They carried out 47 survey dives with a total bottom time of 166 hours at depths ranging from 46 m to 359 m. Initially, 24 Coelacanths were identified in three submarine canyons at depths from 96 m to 133 m along a 48 km stretch of coast in the iSimangaliso Wetland Park. This number was later increased to 32 individuals. Over time the African Coelacanth Ecosystem Programme extended its research programme further north into other countries in East Africa and the Western Indian Ocean Islands using the FRS Algoa and other motherships, the Jago submersible and a Sea-Eye Falcon underwater remotely operated vehicle.

On 15 February 2004, mixed-gas diver Christo van Jaarsveld observed a coelacanth at a depth of about 54 m in Diepgat Canyon south of Sodwana Bay in the iSimangaliso Wetland Park. This sighting is the shallowest on record for a healthy adult Coelacanth and was the 19th specimen known from the iSimangaliso Wetland Park, but it has not been seen again. Christo van Jaarsveld has subsequently seen and filmed another specimen on 7 August 2018 in the iSimangaliso Wetland Park; this Fish has also not been seen since.

At about 9.00 am on 22 November 2019, a team of divers observed and filmed a single Coelacanth at a depth of 69 m off the village of Umzumbe (between Hibberdene and Pumula) on the South Coast of KwaZulu-Natal. This site is about 325 km south of the iSimangaliso Wetland Park. The divers, Mike Fraser and Alan Fraser from Pumula and Bruce Henderson and Pieter Carstens from Somerset West, launched from the Injambili launch site at Pumula, with Benjamin Henderson and Marc Dukes acting as surface support in the boat. Bruce Henderson and Pieter Carstens used open circuit trimix and Mike and Alan Fraser used rebreathers with trimix diluent.

Coelacanth off Pumula on the KwaZulu-Natal South Coast, South Africa, on 22 November 2019. Bruce Henderson in Fraser et al. (2020).

Mike and Alan Fraser are keen anglers and have fished the reef on which the Coelacanth was found for many years. They are also avid scuba divers who have been using AP diving rebreathers for the past 9 years and are familiar with the underwater terrain on this coast. Mike and Alan Fraser had previously speculated that the Umzumbe River Canyon would be an ideal place to spot a Coelacanth, because the caves and cracks seen on the sonar would offer good shelter from predators.

The reef on which the dive took place (the longitude and latitude coordinates for the discovery site are known but are being kept confidential in order to safeguard the Coelacanth) is about 1 km from the continental shelf edge and is washed by strong currents. The Coelacanth was first found by Alan Fraser who was swimming ahead of the other divers. On the video recorded during the dive he can be heard shouting for Bruce Henderson, who had the GoPro 7 video camera with a 150 m underwater housing. The maximum depth of the dive was 72 m and the total bottom time 15 minutes, of which about half was spent with the Coelacanth. Bruce Henderson filmed the Coelacanth at a depth of 69 m.


This is the original footage of the Coelacanth discovered off the coast of Pumula at 70m on 22 November 2019. It was filmed by Bruce Henderson and discovered by Alan Fraser. They were accompanied by Mike Fraser and Pieter Carstens. Ben Henderson and Marc Dukes were the top men for the dive. Wreckless Divers/YouTube.

The single Coelacanth that was sighted remained relatively motionless under an overhang despite the attentions of the four divers and their strobe lights. It maintained a head-down position, slowly moving its paired fins. Although the epicaudal ridge along the middle of the tail was prominent, the fin rays on the epicaudal lobe of the tail fin did not extend beyond the curve of the rays on the dorsal and ventral portions of the fin, as in the second Coelacanth, which JLB Smith initially thought was a separate species.

The size of the Coelacanth was estimated to be 180–200 cm and about 100 kg by comparing its dimensions with those of the divers, although it is difficult to estimate a Fish’s size accurately under water. It would almost certainly have been a female individual as male Coelacanths rarely exceed 150 cm in length.

This estimated size is comparable to the largest Coelacanths on record which include a 179 cm, 98 kg female caught off Pebane in Mozambique, a 183 cm female caught off Mutsamudu, Anjouan, a 187 cm, 85 kg individual caught off Toliara in Madagascar, and a 190 cm female caught off Chiconi, Anjouan.

What is the significance of the Pumula coelacanth discovery? It indicates that Coelacanths live along our coast further south than the iSimangaliso Wetland Park in Maputaland and raises the possibility that they may live elsewhere along the KwaZulu-Natal coast and even further south along the Transkei coast into the Eastern Cape. If this is the case, then the first Coelacanth that was caught off East London over 80 years ago may not have been a stray but a member of a resident population. Instead of being washed southwards from the tropics by the south-flowing Mozambique current, as JLB Smith had suggested; Coelacanths may have moved purposefully over time into suitable habitats further south than their optimal range in the tropics.

Dives conducted using the research submersible Jago off the Eastern Cape coast near East London and Port Elizabeth in 1991 by Hans Fricke, Jurgen Schaüer, Mike Bruton and others revealed that underwater habitats there were suboptimal, with only small overhangs and no deep caves. On these dives large ambush predators, such as the Wreckfish, Polyprion americanus, seemed to fill the Coelacanth’s niche.More suitable habitats for Coelacanths along the Eastern Cape coast have since been found in the Chalumna Canyon by Kerry Sink of the African Coelacanth Ecosystem Programme using remotely operated vehicles near the capture site of the first specimen in December 1938.

The depth preferences of Coelacanths throughout their range extends from about 54 m to over 800 m, shallow by marine standards as the average depth of the ocean is 3688 m. The Pumula Coelacanth record is therefore the second shallowest yet recorded for a healthy, non-pregnant adult Coelacanth. Coelacanth specimens, and the data associated with their capture, are well documented; the latest edition of the Coelacanth inventory compiled by Rik Nulens for the Coelacanth Conservation Council lists 323 specimens caught to date.

Dead or dying Coelacanths, some with their guts full of plastic, one with a Tetradon Blaasop Pufferfish stuck in its mouth, have been found floating at the water surface off Tanzania. A large Coelacanth (179 cm, 98 kg) pregnant with 26 pups, was caught between 40 m and 44 m on the continental shelf off Pebane in northern Mozambique in August 1991.

The discovery of a Coelacanth at a depth of only 69 m off Pumula (and at 54 m in the Diepgat Canyon) suggests that they may live shallower than previously thought, at least at the southern end of their range, which means that they may be more accessible to mixed-gas divers, as well as to shallow-water remotely operated vehicles and research submersibles, for study. Many aspects of Coelacanth biology and behaviour have not been documented, including whether they guard their young after birth and the diet and habitat preferences of the young.

The shallower depths at which Coelacanths appear to live off South Africa, compared to the Comoros, Tanzania or Madagascar, may be a consequence of their relatively low tolerance of high water temperatures and low oxygen saturations. As oxygen saturations are lower in warmer water, they may tend to live deeper in the warmer waters of the tropics and shallower in the cooler subtemperate waters off South Africa’s east coast. Mike Fraser has reported that, although the surface water temperature on the day of the discovery (22 November 2019) was about 25 °C, there was a marked thermocline at about 15 m from the bottom where the recorded temperature fell to 17 °C.

The discovery of a living Coelacanth off the South Coast of KwaZulu-Natal also reveals how little we know about marine life off our coast, despite intensive research, increasingly intense deep diving ventures and longterm commercial and recreational fishing pressure. That Coelacanths have been living undiscovered off the heavily fished south coast of KwaZulu-Natal, despite the high profile of the Fish over the past 80 years, suggests that many remarkable discoveries remain to be made in our oceans.

The African Coelacanth Ecosystem Programme and other programmes that promote and facilitate multi-disciplinary research in our marine environment should therefore continue to receive priority financial and logistical support, and recreational divers should be encouraged to collaborate with scientists so that their valuable observations can be included in the scientific dialogue. More effort should also be made to create organised platforms that make it possible for ‘citizen scientists’, especially deep divers, to participate meaningfully in scientific research. The possibility of creating an offshore Marine Protected Area off Pumula, without unduly impacting on the activities of recreational anglers, also needs to be considered.

See also...

https://sciencythoughts.blogspot.com/2016/05/latimeria-chalumnae-tanzanian.htmlhttps://sciencythoughts.blogspot.com/2014/11/an-early-tetrapod-from-late.html
https://sciencythoughts.blogspot.com/2013/03/a-new-species-of-lungfish-from-late.htmlhttp://sciencythoughts.blogspot.com/2013/01/new-species-of-devonian-tetrapod-from.html
https://sciencythoughts.blogspot.com/2012/05/novel-coelacanth-from-early-triassic-of.htmlhttp://sciencythoughts.blogspot.com/2012/03/new-tetrapodomorph-fish-from-devonian.html
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Tuesday, 3 May 2016

Latimeria chalumnae: Tanzanian population of the African Coelacanth declared to be Threatened under the terms of the United States Endangered Species Act.

The United States National Marine Fisheries Service has declared the Tanzanian population of the African Coelacanth, Latimeria chalumnae, to be officially Threatened under the terms of the Endangered Species Act, in a ruling that was published on 29 March this year and became law on 28 April. This judgement will not result in the creation of a protected area, as the entire range of the species is outside of US jurisdiction, nor in the implementation of any new trade regulations, as the species is already listed under the terms of the Convention on International Trade in Endangered Species of Wild Flora and Fauna and trade in the species is unknown beyond a small number of scientific specimens. However it is hoped that this ruling will help to raise awareness of the current plight of the species, and the ruling will allow potential US funding of conservation projects targeting the species.

An African Coelacanth, at Sodwana Bay, South Africa. Laurent Ballesta/Blancpain Ocean Commitment.

The ruling was made in response to a request by the conservation organisation WildEarth Guardians made in July 2013, and was the subject of a series of assessments before the ruling could be made. 

Firstly it was necessary to establish that the Coelocanth was a distinct species or subspecies, and therefore eligible for protection under the terms of the Endangered Species Act. This can be problematic for some organisms, however there are only two species of surviving species of Coelacanth, (the African Coelacanth and the Indonesian Coelacanth, Latimeria menadoensis), a group considered to be highly important by scientists studying the origin of terrestrial vertebrates, and as such the group have been extensively studied and there is no doubt over the status of the two species.

Secondly it was necessary to establish that the group is Endangered or Threatened throughout all or part of its range. The term Endangered implies at current risk of extinction, while Threatened implies at danger of extinction in the foreseeable future, a harder criteria to define. The African Coelacanth could not be classed as at risk throughout its range, as current conservation measures in the Comoros are believed to be highly effective, however the Tanzanian population does not currently receive any such protection, and is currently deemed to be at risk from drift-netting, a fishing technique that does not directly target the species, but which can result in Coelocanths being caught as by-catch, and is considered to be at risk due to the proposed construction of a deep water port at Mwambani Bay in the Tanga Region of the country, a project which is centred on the site of a proposed marine park intended to protect the species, and which has already resulted in local communities being evicted from the area ahead of any Environmental Impact Assessment, leading to concerns that any such assessment may either not be carried out or will simply be a rubber-stamp exercise intended to give legitimacy to the project.

See also...

http://sciencythoughts.blogspot.co.uk/2013/07/african-barrick-gold-sued-over-deaths.htmlAfrican Barrick Gold sued over deaths at Tanzanian mine.                                           The mining company African Barrick Gold, a subsidiary of the Canadian Barrick Gold Corp, is being sued by representatives of 12 Tanzanian villagers over a...
http://sciencythoughts.blogspot.co.uk/2013/05/pregnant-woman-killed-in-rioting-over.htmlPregnant woman killed in rioting over Tanzania gas pipeline.                                    A pregnant woman was reportedly shot and killed by security forces during rioting in the southern Tanzanian city of Mtwara on Thursday 23 May 2013, that led to...
http://sciencythoughts.blogspot.co.uk/2013/04/uranium-mining-to-begin-in-tanzania.htmlUranium mining to begin in Tanzania.            A uranium mining project at Mkuju River has been granted a license by the Tanzanian Ministry of Energy and Mineral Resources, despite widespread opposition within the country. The license has been granted to Mantra Tanzania, a subsidiary of the Australian Mantra Resources, which is itself owned...
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Environmental Impact Assessment
Mwambani Bay
Mwambani Bay in Tanga Region
Mwambani Bay in Tanga Region
Mwambani Bay in Tanga Region
Mwambani Bay in Tanga Region
Mwambani Bay in Tanga Region
Mwambani Bay in Tanga Region
Mwambani Bay in Tanga Region

Friday, 11 May 2012

A novel Coelacanth from the Early Triassic of British Columbia.

Coelacanths are Sarcopterygian (lobe finned) Fish, related to Lungfish and Tetrapods (terrestrial vertebrates). Modern Coelacanths are deepwater ambush predators, able to survive in waters with low oxygen levels. They move primarily using their fins, with the tail being used for short busts of movement in pursuit of prey. Coelacanths evolved this basic body-plan before the Permian, and have changed little since. They were at there most diverse in terms of species numbers in the Early Triassic, having apparently survived the Permian extinction, which is widely thought to have been associated with low ocean oxygen levels, relatively unscathed and prospered in the absence of other large marine predators.

In a paper published in the Journal of Vertebrate Paleontology on 3 May 2012, Andrew Wendruff of the Department of Biological Sciences and Laboratory for Vertebrate Paleontology at the University of Alberta and the School of Earth Sciences at The Ohio State University and Mark Wilson of the Department of Biological Sciences and Laboratory for Vertebrate Paleontology at the University of Alberta describe a new species of Coelacanth from the Early Triassic Sulphur Mountain Formation in the Wapiti Lake Provincial Park of British Columbia.

The new species is described as Rebellatrix divaricerca, the 'rebel-finned fork-tail'. It has an elongate, apparently fairly rigid body, with a large, forked tail, similar to that of a modern tuna. This body-plan is associated with rapid pursuit predators in open water today, a very different lifestyle to that generally associated with Coelacanths.

Rebellatrix divaricerca, (A) Photograph of specimen. (B) Close up of lateral line system. (C) Close up of a scale, dotted line indicating scale margin. (D) Line drawing of (A). (E) Cast made of skull in ammonium chloride dusted silicone peel. (F) Line drawing of skull. Abbreviations: Acl, anocleithrum; A.f, anal fin; Ang, angular; Art, articular; Cl, cleithrum; Cla, clavicle; D1.b, anterior dorsal basal plate; D1.f, anterior dorsal fin; D2.b, posterior dorsal basal plate; D2.f, posterior dorsal fin; Ecl, extracleithrum; lPG, left pectoral girdle; occ.n.a, occipital neural arches; Op, operculum; o.p.l, oral pit line; Rart, retroarticular. Scale bars: (A) 10 cm. (B) 2 mm. (C) 2 mm. (D) 10 cm. (E) 2 cm. (F) 2 cm. Wendruff & Wilson (2012).

Rebellatrix divaricerca, second specimen. (A) Photograph. (B) Lobed base of posterior dorsal fin. (C) Tapered anal fin. (D) Posterior dorsal basal plate (E) Anal basal plate. (F) Pelvic girdle. (G) Line drawing of (A). Abbreviations: A.b, anal basal plate; A.f, anal fin; D2.b, posterior dorsal basal plate; D2.f, posterior dorsal fin; P.b, pelvic bone; P.f, pelvic fins; sb, swim bladder; s.l, supplementary lobe. Scale bars (A) 10 cm. (B-F) 2 cm. (G) 10 cm. Wendruff & Wilson (2012).

Rebellatrix divaricerca does not appear to have been distantly related to other post-Palaeozoic Coelacanths; it is unlikely to have been a relic of some more ancient lineage that survived into Triassic times. Rather it appears to have been a unique Early Triassic innovation, a Coelocanth that evolved to fill a niche that had been filled by Sharks in the Permian, after this group had been badly hit in the end Permian extinction. While this may have been a temporary success, the niche was soon reclaimed by other groups, notably Ray-Finned Fish and Marine Reptiles, suggesting that the slow Coelacanth metabolism was not ultimately well suited to this lifestyle.

Reconstruction of Rebellatrix divaricerca as a living animal. Michael Skrepnick.


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Wednesday, 11 April 2012

Live birth in a Middle Triassic Coelacanth.

Coelacanths are Sarcopterygian (lobe finned) Fish, members of the same group as Lungfish and Tetrapods, which makes them of interest to palaeontologists studying the colonization of land by vertebrates. They were thought to have been extinct until the 1950s, when a surviving species of Coelacanth was discovered in the deep waters of the Mozambique Channel. A second species of modern Coelacanth was discovered in Indonesia in the 1990s.

Diver Arnaz Mehta Erdmann with an Indonesian Coelacanth. Mark Erdmann/Smithsonian National Museum of Natural History.

In a forthcoming paper in the journal Acta Palaeontologica Polonica, a team of scientists led by Wen Wen of the Chengdu Institute of Geology and Mineral Resources at Chengdu University of Technology describe two new species of Coelacanth from the Middle Triassic Luoping Biota of Yunnan Province.

The first of these, Luopingocoelacanthus eurylacrimalis (Coelacanth from Louping with a triangular, broad lachrymojugal bone) is described from four specimens, one of which has two well developed embryos within it.

The specimen of Luopingocoelacanthus eurylacrimalis with two embryos within (A), and closer images of the embryos (B & C). Wen et al. (2012).

The discovery of embryos within L. eurylacrimalis is not entirely surprising. While only 1-2% of modern boney fish produce live young (compared to 55% of sharks) the modern Coelacanth, Latimaria, does, practicing a form of live bearing called Ovoviviparity, in which eggs are retained within the mother until they hatch. This has also been found in the Cretaceous Coelacanth Axelrodichthys and the Jurassic Coelacanth Undina, whereas egg-laying has been determined for the Carboniferous Coelacanth Rhabdoderma. The eggs of Rhabdoderma were up to 53 mm in diameter, compared to a 600 mm fish, suggesting the animal invested heavily in a small number of eggs. For such an animal retaining the eggs within the adult until they hatch would be distinctly advantageous.

The second new species is named as Yunnancoelacanthus acrotuberculatus (Coelacanth from Yunnan with sharp dermal tubercles), named from a single 255 mm specimen.

Yunnancoelacanthus acrotuberculatus. Wen et al. (2012).

Wen et al. note that Coelacanths underwent a dramatic increase in species number worldwide in the Early Triassic, having been somewhat rare in the Permian, and subsequently suffered from falling numebers throughout the Mesozoic, apparently becoming extinct at the end of the Cretaceous (without the living species we would conclude that they had done just that, since we have no Cenozoic fossils). They suggest that Coelacanths may have been well adapted to conditions during the End Permian Extinction, as they have low metabolisms, a slow reproductive cycle and can tolerate low oxygen levels (if the modern species are typical of the group). Since it is generally believed that the during End Permian there was widespread ocean anoxia and food was scarce, conditions to which Coelacanths were pre-adapted, providing them with the opportunity for an adaptive radiation at a time when many other groups were in decline. As other groups recovered after the extinction event Coelacanths again became rarer.


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