Showing posts with label Volcanic Islands. Show all posts
Showing posts with label Volcanic Islands. Show all posts

Monday, 6 February 2023

Early Microbial colonisers of a short-lived volcanic island.

Micro-organisms are, unsurprisingly, typically the first organisms to colonise newly formed or exposed land surfaces, such as those exposed by a rockfall or glacial retreat, or the deposition of volcanic ash. These first colonisers typically comprise oligotrophic (able to survive on very limited nutrition) and autotrophic (able to generate their own energy through chemical reactions or photosynthesis) groups, which are able to survive in environments with very limited environments, as well as groups able to fix nitrogen and carbon obtained from the atmosphere. However, the precise nature of the earliest colonisers is not consistent, and varies from environment to environment. Thus, sediments exposed after the retreat of a glacier are typically first colonised by photosynthetic Cyanobacteria as are newly formed sand dunes, while newly laid lava-flow deposits are typically first colonised by chemolithic (able to obtain nutrients from rock) Micro-organisms.

Volcanic eruptions often create totally new land surfaces very rapidly, either by covering the existing landscape in a new layer of lava, ash, and tephra, or, less commonly, by creating totally new land-masses in the form of volcanic islands. These new volcanic islands are known as 'Surtseyan islands', in reference to the island of Surtsey, which was formed by a volcanic eruption on 14 November 1963. However, unlike Surtsey (which still exists), most such islands are very short lived, formed principally of soft volcanic ash, which is washed away by the sea within a few months, or at most one or two years. Surtseyan islands provide a completely new 'blank state' for micro-organisms to colonise, with little-or-no organic material within the new sediments, an unusually high level of heavy metals, and, frequently, intermittent exposure to toxic volcanic gasses.

Such environments are likely to be challenging to new microbial colonisers, as they are also for microbiologists hoping to study them. The extremely short-lived nature, and general instability, of most Surtseyan islands, makes it close to impossible to carry out field work upon them before they disappear. Persisting Surtseyan islands, however, present a much more interesting scenario, with the potential for biologists to study their long-term succession from a bare-volcanic environment to a developed terrestrial ecosystem. The two most recent persisting Surtseyan islands were Surtsey itself, which emerged in 1963, and Vulcão dos Capelinhos in the Azores, which emerged in 1957. Both of these were extensively studied by the biologists of the time, but in a period when the importance of Micro-organisms as environment shapers was poorly understood, an consequently little attention was paid to these organisms. The first survey of Micro-organisms on the island of Surysey did not take place until the year 2000, 37 years after the island formed. Based upon studies of other volcanic terrains and borehole evidence from the island itself (which expose evidence from early island surfaces covered up by subsequent volcanic activity) it has been suggested that the first Micro-organisms to settle on Surtsey were probably species capable of photosynthesis and lithotrophic species capable of oxidizing trace gasses, sulphur, and/or iron, and possibly some oligotrophic species capable of surviving on the very low levels of carbon and nitrogen found in volcanic sediments.

On 19 December 2014, the Hunga underwater volcano within the Kingdom of Tonga began a series of eruptions, which by 15 January had produced a new island, named Hunga Tonga Hunga Ha'apai, which connected the two older, and much smaller, islands of Hunga Tonga and Hunga Ha'apai into a single landmass. This new landmass included a cone of tephra and ash which rose to about 120 m above sealevel. Initially it was predicted that this new island would erode away within a few months, but this was not in fact the case, making the island the third such persistent Surtseyan island to have formed in the past 150 years. The new island in fact persisted until 2022, when it was destroyed by an explosive eruption of the Hunga volcano. However, the island was visited by scientists in October 2018 and again in October 2019, who collected samples of tephra from across its surface.

In a paper published in the journal mBio on 11 January 2023, Nicholas Dragone of the Department of Ecology and Evolutionary Biology at the University of Colorado Boulder, and the Cooperative Institute for Research in Environmental Science, Kerry Whittaker of the Corning School of Ocean Sciences at the Maine Maritime Academy, Olivia Lord of the Sea Education Association, Emily Burke of the School of Marine Science and Ocean Engineering at the University of New HampshireHelen Dufel of the Scripps Institute of Oceanography at the University of California San Diego, Emily Hite of the School of Earth Sciences and Environmental Sustainability at Northern Arizona University, Farley Miller and Gabrielle Page of the Université de Bretagne OccidentaleDan Slayback of Science Systems & Applications, Inc., and the Biospheric Sciences Lab at NASA's Goddard Spaceflight Center, and Noah Fierer, also of the Department of Ecology and Evolutionary Biology at the University of Colorado Boulder, and the Cooperative Institute for Research in Environmental Science, present the results of a study of the Micro-organisms from these samples, which aimed to answer the questions:  'What taxa were the earliest microbial colonizers of sediments on Hunga Tonga Hunga Ha'apai?' 'From where did these microbial colonizers originate?' and 'What metabolic strategies were used by these microbes to persist in the challenging environmental conditions found on the recently formed landmass?

The island of Hunga Tonga Hunga Ha’apai, Kingdom of Tonga (latitude, 20.536°S; longitude,175.382°W). The locations of the 32 surfaces where samples were collected are shown. The background image is from 19 August 2018 and is orthorectified. The inset image displays the islands of Hunga Ha’apai (west) and Hunga Tonga (east) on 11 September 2010, prior to the 2014–2015 eruption. Dragone et al. (2023).

Dragone et al. collected 32 samples from across the new landmass, at altitudes ranging from sealevel to the summit of the cone, at roughly 120 m higher. At the time of the collecting, some Plants and Animals had begun to settle on the island, although the majority of the samples were collected at sites away from such incursions.

The samples collected from unvegetated areas of the Hunga Tonga Hunga Ha'apai tuff cone show very low levels of nutrients, and organic carbon, but high levels of heavy metals and sulphur. The concentration of organic carbon in these tuff samples ranged from 0.19 to 0.50 mg per gram (with an average of 0.32 mg per gram), which was about ten times lower than the level from vegetated samples (i.e. samples collected from around plants, at the edge of the original landmass of Hunga Tonga). The tuff samples lacked any detectable nitrogen, while sulphur levels ranged from 0.1 to 19.8 mg per gram, with an average of 2.1 mg per gram, and iron levels ranged from 74 to 86 mg per gram, with an average of 80.1. Copper, vanadium, cobalt, and other metals were also present at levels far higher than typical of natural soils, but comparable to those often seen in contaminated soils from former industrial sites. 

All of the samples yielded both Bacterial and Archaean DNA, although the levels of DNA from tuff samples was typically two orders of magnitude lower than that from vegetated samples. The tuff samples were also apparently much less biodiverse, with an average of 108 variants on the 16SrRNA gene sequence (a highly conserved, but still variable, sequence found in all known Bacteria and Archaeans, as well as in the nuclei, mitochondria, and chloroplasts of Eukaryotes, which is considered extremely useful as a marker by Prokaryote taxonomists), compared to 473 in the vegetated samples. 

The Microbial community represented in the tuff samples was also distinct from the community found in the vegetated samples, dominated by members of the Bacterial phylum Chloroflexi making up 24.6% of the genetic reads, followed by Actinobacteria, 18.1% of genetic reads, Firmicutes, 15.7, and Proteobacteria, 15.5%. Present at lower concentrations were members of the Bacteroidetes, 6.2% of genetic reads, Planctomycetes, 5.4%, Acidobacteria, 3.3%, Cyanobacteria, 2.8%, Gemmatimonadetes, 1.5%, and candidate phylum WPS-2 'Eremiobacteria', 1.5%. The Archaean phylum Thaumarchaeota was also present in all samples, but in all cases at levels of less than 2% of the total number of genetic reads. 

The most commonly found Bacterial families were Acidiferrobacteraceae (Proteobacteria), Ktedonobacteraceae (Chloroflexi), and Sulfuricellaceae (Proteobacteria), all of which contain autotrophic chemolithotrophs capable of gaining energy by oxidizing sulphur or iron. However, many of the samples came from little known groups, so that 40% of the total genetic reads could not be classified to family level. This means that the majority of Bacteria which were colonising the new land surface belonged to taxa for which their ecological role is at best poorly understood, with only 52% belonging to families from which any member has ever been cultivated in the lab.

This Microbial community is quite distinct from that found in the initial stages of colonisation of new land surfaces in other terrestrial settings. Cyanobacteria, typically among the earliest settlers on new land surfaces in other environments, and thus widely considered to be indicative of such communities, were absent on Hunga Tonga Hunga Ha'apai. Dragone et al. suggest that this absence of Cyanobacteria may be linked to the presence of high concentrations of hydrogen sulphide, which is produced by most volcanic systems and known to be an inhibiting agent for Cyanobacteria. Members of the Phylum Chloroflexi dominated the Microbial community on Hunga Tonga Hunga Ha'apai. This dominance has not been seen elsewhere, but these Bacteria are known to be hydrogen sulphide-tollerant and are often found in volcanic settings with high hydrogen sulphide levels.

The Microbial community from Hunga Tonga Hunga Ha'apai does show some similarities to Microbial communities observed on older volcanic deposits at other sites. For example, on basaltic deposits in Iceland, the Bacterial orders Planctomycetales (Planctomycetota), Rhizobiales (Proteobacteria), Rhodospirillales (Proteobacteria), and Sphingomonadales (Proteobacteria) were apparently ubiquitous, being found in all samples, as were members of the Phylum Chloroflexi.

Theoretically, the most likely source of Microbial colonisers on a new island landmass are is the surrounding ocean, followed by gut Bacteria from Birds deposited in their feces. Neither of these seems to be a particularly likely source for the Microbes colonising Hunga Tonga Hunga Ha'apai. Another possibility is that Microbes could have migrated to the new landmass from the two original landmasses, Hunga Tonga and Hunga Ha'apai. However, while Dragone et al. did find some similarities between the Microbial community of Hunga Tonga Hunga Ha'apai and that of Hunga Tonga, this did not appear to be the main source of the new landmass's Microbiota. 

As an alternative, Dragone et al. suggest that the Bacteria may have originated from nearby volcanic and/or hydrothermal vent systems. Unfortunately, not information was available on the Microbial communities at submarine or subaerial geothermal systems in Tonga prior to the 2014-15 eruption, but the Microbes observed on Hunga Tonga Hunga Ha'apai does reflect that often found in such environments. Gene sequences associated with the Planctomycetales, Rhizobiales, Rhodospirillales, and Sphingomonadales have all been recovered from volcanic environments in Alaska, Hawai'i, and New Zealand. Dragone et al. also note that many of the most abundant gene sequences from the Hunga Tonga Hunga Ha'apai deposits, including the uncultivated Chloroflexi sequences, are common in marine water samples from the deep euphotic zone, and in particular around hydrothermal vents, on organic-poor seafloor surfaces, and in organic-poor deep marine sediments. The most abundant 16S rRNA gene sequence in the Hunga Tonga Hunga Ha'apai material, Chloroflexi AD3, is identical to a sequence recovered from sediments from the Brothers Volcano Complex in the Tonga-Kermadec Arc. Other gene sequences from Hunga Tonga Hunga Ha'apai are similar to sequences recovered from hot springs in Yellowstone National Park, and hydrothermal vent fields in the Atlantic and Pacific.

The island of Hunga Tonga Hunga Ha'apai (and the original islands of Hunga Tonga and Hunga Ha'apai) was a subaerial projection of the much larger submarine Hunga Volcanic Caldara, which covers a today area of about 16 km². This is an extremely active volcanic complex, with submarine venting recorded since 1912, and significant eruptions recorded in 2009, 2014-25, and 2022. It is possible that Microbes living in sediments on submarine parts of the volcano were transported to the new land surface during the 2014-15 eruption. Something similar has been observed on Surtsey, where Micro-organisms from subsurface sediment pore waters have been shown to be transported to the surface via fumerole systems. An alternative is that the Microbes could have been blown to the island from exposed volcanic surfaces on nearby islands. Hunga is one of about 20 active volcanic systems within the Kingdom of Tonga, the closest of which is the submarine Fonuafo’ou Volcano, only 25 km from Hunga Tonga Hunga Ha'apai. The nearest volcano which reaches the surface is Tofua, about 100 km away, while Late’iki, another submarine volcano about 200 km to the north, underwent an explosive eruption in 2019, which could have aerosolised Micro-organisms. Previous work in New Zealand has suggested that Microbes could be dispersed over 850 km following a volcanic eruption. Given the presence of gene sequences associated with deep marine sediments in the Hunga Tonga Hunga Ha'apai tuff samples, Dragone et al. suggest that many of the Microbes on the island are likely to have arrived from a subsurface environment.

The taxonomic identities of the Hunga Tonga Hunga Ha'apai Microbes, combined with our current knowledge of the ecological roles of these groups, suggests that the earliest stages of settlement on the island were dominated by hemolithotrophic Bacteria and anoxygenic phototrophs. Dragone et al. found gene sequences associated with the metabolism of sulphur, the oxidation of carbon monoxide and hydrogen, and bacteriochlorophyll-mediated anoxygenic photosynthesis in tuff samples at levels two-to-five times as high as in the vegetated samples, while genes associated with other Bacteria functions were present at roughly equal levels in both sets of samples. 

The high concentration of genes for sulphur metabolism in the Hunga Tonga Hunga Ha'apai tuff samples accords well with the high concentration of sulphur found in the same samples. Notably, genes associated with the metabolism of thiosulphate where far more abundant in the tuff samples than in the vegetated samples, notably thiosulphate reductase, thiosulphate sulphurtransferase, sulphur oxidation pathway, and thiosulphate dehydrogenase, were found in all samples. Thiosulphates serve as an intermediary phase in many sulphur metabolising pathways, with the effect that almost all sulphur-processing chemolithotrophic Microbes, including those from terrestrial volcanic systems and deep sea hydrothermal systems. Since the surface sediments on Hunga Tonga Hunga Ha'apai were well aerated and not likely to be lacking in oxygen, it is unlikely that the Bacteria here were engaged in the anaerobic reduction of sulphur, leading Dragone et al. to conclude that sulphur oxidation is likely to be the most important ecological strategy for these Micro-organisms.

No photosynthetic Cyanobacteria were found in any of the samples, nor were genes for oxygenic photosynthesis found. However, a number of genes associated with anoxygenic photosynthesis were found. These are known to be present in a wide range of Bacteria, including the Actinobacteria, which were a major component of the Hunga Tonga Hunga Ha'apai Microbiota, as well as more specific anoxygenic photosynthesis genes associated with the families Beijerinckiaceae (Proteobacteria) and Acetobaceraceae (Actinobacteria). This suggests that photosynthesis was occurring on Hunga Tonga Hunga Ha'apai, but that this was anoxygenic photosynthesis, in which sulphur is used as an electron doner.

Also widely present were genes associated with the oxidation of trace gasses, notably carbon monoxide and hydrogen. Many groups found within the samples, including the Ktedonobacteraceae and other members of the Chloroflexi are known to have this capability. The oxygenation of trace gasses is generally associated with Bacteria surviving in extremely resource-poor environments, such as Antarctic soils, and is also known to play an important role in more mature volcanic soils, 10-20 years after an eruption. Dragone et al. hypothesize that trace gas oxygenation may play the same role in volcanic soils as photosynthesis does in other newly colonised environments, enabling the very first Microbes to gain a foothold from which more developed communities can then develop.

Dragone et al.'s study indicates that Micro-organisms begin to settle on new volcanic islands very soon after their formation. However, unlike other new environments, the first colonisers on volcanic islands are not photosynthetic Cyanobacteria, but rather Bacteria capable of utilising the abundant sulphur resources of these environments, and oxidizing trace gasses. Furthermore, these Bacteria do not appear to have come from the neighbouring surface-marine or vegetated island environments, but rather to have originated from geothermal systems, potentially those deep beneath the sea or land surfaces. These Micro-organisms may well have reached the island as a result of volcanic activity elsewhere, which has the potential to disperse Micro-organisms over wide areas. It is quite possible that the Microbiota of the island went through a number of changes in the three years between the formation of the island, and the collection of the first samples there, and almost certain that, had the island survived, the Microbial community would have continued to evolve as the island developed from a bare rocky surface into a vegetated island. However, the complete destruction of the island by a new eruption in January 2022 made any further work impossible on that island, and scientists will have to wait for the formation of new volcanic islands elsewhere to take this field of study further foreward.

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Thursday, 2 September 2021

Eruption on the Fukutoku Oka-no-Ba submarine volcano undergoes forms a new (temporary) island.

Fukutoku Oka-no-Ba, a submarine volcano about 5 km to the north of South Iwo Jima Island in Japan's Bonin Islands, erupted in August 2021. The volcano was first observed to be active by the the Japan Meteorological Agency's Himawari 8 satellite at about 6.00 am on Friday 13 August 2021, Japan Standard Time (about 9.00 pm on Thursday 12 August, GMT), with subsequent observations being made by the Moderate Resolution Imaging Spectroradiometer (MODIS) instrument on NASA's Terra satelite. The eruption produced a plume that lasted for over 24 hours, and which reached a height of about 16 km (impressive for a terrestrial volcano, let alone one under about 80 m of water), presenting a hazard to aviation.

 
An ash column over the Fukutoku Oka-no-Ba submarine volcano on 12 August 2021. Japan Coast Guard.

Volcanic ash is extremely hazardous to aircraft in a number of ways. At its most obvious it is opaque, both visually and to radar. Then it is abrasive, ash particles physically scour aircraft, damaging components and frosting windows. However, the ash is most dangerous when it is sucked into jet engines, here the high temperatures can melt the tiny silica particles, forming volcanic glass which then clogs engine. When this happens the only hope the aircraft has is to dive sharply, in the hope that cold air passing through the engine during the descent will cause the glass to shatter, allowing the engine to be restarted. Obviously, this is a procedure that pilots try to avoid having to perform.

Animation showing the movement of the ash and dust cloud generated by the 13 August 2021 eruption on the Fukutoku Oka-no-Ba submarine volcano. NOAA/SSEC/University of Wisconsin-Madison.

The eruption led to the formation of a new island above the volcano's caldera, the first such island to form over the volcano since 1986, as well as the formation of extensive rafts of pumice, which forms when hot lava from submarine volcanic eruptions encounters seawater and cools rapidly, simultaneously crystalizing and degassing to form a lightweight volcanic rock with many gas-filled vesicles (bubbles) within it, which often floats on the sea surface. Big submarine eruptions can produce large volumes of pumice, forming rafts of pumice that cover hundreds of square kilometres, and drift on the ocean surface for months before dissipating or washing ashore.

A pumice raft associated with the 13 August 2021 Fukutoku Oka-no-Ba eruption, imaged by the Landsat 8 satellite five days after the initial eruption. NASA/Earth Observatory.

Smaller gas emissions were intermittently recorded from the volcano until 22 August. The new island was overflown by a Japan Coast Guard aircraft on 26 August, which revealed that most of its eastern side had eroded away, effectively splitting the remaining portion into two smaller islands. No visible eruptions were ongoing, but the water around the volcano was discoloured to brown, and cloudy grey material was being intermittently emitted from the volcano's submarine vent, and was drifting to the west.

 
Submarine topographic map of the Fukutoku Oka-no-Ba area. Japan Coast Guard.

The Bonin Islands lie on the boundary between the Pacific and Philippine Plates, where the Pacific Plate is passing beneath the Philippine Plate as it is subducted into the Earth. As the Pacific Plate is subducted it is melted by the heat and pressure of the planet's interior. The lighter fractions of this melted material then rise through the overlying Philippine  Plate as magma, fuelling the volcanoes of the various islands and island groups that lie along the boundary.

 
The movement of the Pacific and Philippine Plates beneath eastern Honshu. Laurent Jolivet/Institut des Sciences de la Terre d'Orléans/Sciences de la Terre et de l'Environnement.

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Thursday, 21 November 2013

Volcano creates new island in the west Pacific.

A volcano has created a new island off the shore of Nishinoshima, a remote and uninhabited island Belonging to Japan, which is about 1000 km south of Tokyo and about 1600 km north of Guam. The island is about 200 m in diameter. It is unclear exactly when the island first appeared, but on Wednesday 20 November 2013 the Japan Coast Guard issued a warning about smoke and ash issuing from the new island (aircraft need to avoid volcanic ash as it melts in their engines, forming a glassy substance), and TV footage of an eruption on the island has subsequently emerged.

Steam issuing from the new volcanic island on Wednesday 21 November 2013. Japan Coast Guard.

Nishinishima lies on he boundary between the Pacific and Philippine Plates, where the Pacific Plate is passing beneath the Philippine Plate as it is subducted into the Earth. As the Pacific Plate is subducted it is melted by the heat and pressure of the planet's interior. The lighter fractions of this melted material then rise through the overlying Philippine  Plate as magma, fueling the volcanoes of the various islands and island groups that lie along the boundary.

The approximate location of the new island. Google Maps.

While the island can accurately be described as new, it is not evidence of a new volcano, rather a new vent on the side of the main Nishinishima volcano. It is unlikely to remain as a new island. Most probably the bulk of the material is poorly consolidated ash and cinders, which will be quickly eroded away. If the vent does start to produce more permanent rock-forming lava then this will be more resilient to erosion, but in this case the island is likely to grow and become attached to the Nishinishima mainland.


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Monday, 14 October 2013

Submarine eruption to the northwest of Jebel Zubair.

The Zubair Archipelago are a group of volcanic islands off the southwest coast of Yemen; they are essentially a shield volcano on the Red Sea Rift with a number of vents. The had been quiet from about 1848 until December 2011, when a series of eruptions from a vent to the northeast of Jebel Zubair island (the largest island of the group) began, persisting through January 2012. A new eruption began on 28 September 2013 a new series of eruptions began, this time to the northwest of Jebel Zubair and the southeast of the 2011/12 eruptions. This eruption has the form of a steam plume and increase in atmospheric sulphur dioxide (SO₂), detected by NASA's Terra Satellite, and further observed over the following days. To date no ash or pumice produced by this eruption has been detected, suggesting that it is not (yet) a major event.

The approximate location of the Jebel Zubair eruption. Google Maps.

The Red Sea Rift is a spreading boundary between two tectonic plates, the African Plate and the Arabian, where new oceanic crust is being formed. Arabia was formerly part of the African Plate, but split away about 30 million years ago. The Great Rift Valley of Africa is a continuation of this rift, that is slowly splitting Africa in two from the north to the south.


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Saturday, 30 March 2013

Earthquake of the coast of El Hierro.

On Friday 29 March 2013, slightly after 5.00 pm GMT, the United States Geological Survey recorded a Magnitude 4.6 Earthquake at a depth of 17.3 km, roughly 30 km southwest of El Hierro in the Canary Islands. This is a moderately large Earthquake, but is unlikely to have been felt this far offshore.


The location of the 29 March 2013 Earthquake. Google Maps.

The Canary Islands are a group of volcanic islands fueled by a mantle plume rising through the African Plate, on which they are situated. The plume is rising from deep within the Earth, and is independent of the movement of the tectonic plates at the Earth's surface. As the plate moves relative to the hotspot new volcanic islands form on its surface, each over the hotspot when it forms, with the oldest islands of the chain in the east (the African Plate is being pushed east by the expansion of the Atlantic Ocean, but the hotspot is relatively motionless). Earthquake activity to the south of El Hierro began in July 2011, since when there has been considerably activity including a number of volcanic eruptions. In December 2011 it was confirmed that a new volcanic fissure had opened up beneath the sea to the south of El Hierro, and a new volcanic island is apparently in the process of being born.

See also Fresh volcanic activity on El HierroOngoing volcanic activity on El Hierro in the Canary Islands, Tourists evacuated due to volcanic activity on El Hierro in the Canary Islands and Volcanoes and Earthquakes on Sciency Thoughts YouTube.

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Thursday, 26 January 2012

A living fossil eel discovered in Palau.

Eels first appear in the fossil record about 100 million years ago, in the Mid Cretaceous. These Cretaceous forms are primitive compared to modern forms, with incomplete fusion of the dorsal, caudal and anal fins, scales on their bodies and many of the bones lost or fused still present. However they are still clearly eels, with elongate bodies and the loss and fusion of some bones associated with the group, in particular the gill rakers and the pectoral fins.

Volume 279 of the Proceedings of the Royal Society B (Biological Sciences) contains a paper by a team lead by David Johnson of the Division of Fishes at the National Museum of Natural History at the Smithsonian Institution, describing the discovery of a remarkable living fossil eel from a submarine cave in a coral reef fringing Ngemelis Island, part of the Pacific Ocean Republic of Palau. This eel shows many features in common with Cretaceous eels, and has been named Protanguilla palau (the first/earliest eel from Palau).

Protanguila palau. Top, adult female named as the Holotype, 176 mm in length. All other pictures of juvenile specimen named as Paratype. Top centre, whole specimen, 65 mm in length, scale bar is 5 mm. Left centre, head in lateral view, scale bar is 5 mm. Right centre, head in ventral view, scale bar is 2 mm. Bottom left, close up of left gill opening in ventral view, scale bar is o.5 mm. Bottom centre, stained scales on lateral body-line, scale bar is 0.5 mm. Bottom right, close up of scales, scale bar is 0.5 mm. From Johnson et al. (2012).

Protoanguila palau shows many similarities to Cretaceous eels, it has an unfused palette, incompletely fused fins, and retains its scales and some bones lost in modern eels. In addition it shows some features lost in even Cretaceous eels, it retains its gill rakers, and whilst clearly an eel, lacks the elongate form found in all other eels. Gene sequencing of P. palau confirms that while it is more closely related to eels than any other fish, all other eels are more closely related to one-another than they are to P. palau.

Based upon this Johnson et al. suggest that P. palau is a living fossil, which branched off from other eels at some time around the boundary between the Triassic and the Jurassic, and has been living in isolation ever since. Whilst this seems fairly reasonable (the date is suspiciously precise, 'before the Mid Cretaceous' would have been more defensible), Ngemelis Island is a coraline limestone platform on top of an extinct submarine volcano - a feature that is unlikely to have remained unaltered since the Mesozoic. This implies that P. palau must have migrated here some time in the more recent past, and may well have relatives elsewhere in the West Pacific.

See also New Mouse Lemur discovered in Madagascar and Boney Fish on Sciency Thoughts YouTube.