Mostrando postagens com marcador Euplokamis. Mostrar todas as postagens
Mostrando postagens com marcador Euplokamis. Mostrar todas as postagens

sábado, 23 de março de 2019

Half a billion-year-old fossil reveals the origins of comb jellies

A living comb jelly, Euplokamis. The rainbow iridescence is caused by the ciliary comb bands alongside the body. Alexander Semenov
The holotype specimen of Daihua sanqiong Yang Zhao

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Press release issued: 21 March 2019
One of the ocean’s little known carnivores has been allocated a new place in the evolutionary tree of life after scientists discovered its unmistakable resemblance with other sea-floor dwelling creatures.
Comb jellies occupy a pivotal place in the history of animal evolution with some arguing that they were among the first animals to evolve. Now an international team of palaeontologists have found fossil evidence that proves comb jellies are related to ancestors that sat on the sea floor with polyp-like tentacles.

As reported today in Current Biology, researchers from the University of Bristol, Yunnan University in China and London’s Natural History Museum, compared a 520 million-year-old fossil with fossils of a similar skeletal structure and found that all evolved from the same ancestors.
The fossil, set in a yellow and olive coloured mudstone and resembling a flower, was found in outcrops south of Kunming in the Yunnan Province, South China by Professor Hou Xianguang, co-author of the study.

Several amazingly preserved fossils have been unearthed from outcrops scattered among rice fields and farmlands in this part of tropical China in the last three decades.
It has been named Daihua after the Dai tribe in Yunnan and the Mandarin word for flower ‘Hua’, a cup-shaped organism with 18 tentacles surrounding its mouth. On the tentacles are fine feather-like branches with rows of large ciliary hairs preserved.
“When I first saw the fossil, I immediately noticed some features I had seen in comb jellies,” said Dr Jakob Vinther, a molecular palaeobiologist from the University of Bristol's School of Earth Sciences. “You could see these repeated dark stains along each tentacle that resembles how comb jelly combs fossilise. The fossil also preserves rows of cilia, which can be seen because they are huge. Across the Tree of Life, such large ciliary structures are only found in comb jellies.”
In today's oceans, comb jellies are swimming carnivores. Some of them have become invasive pests. They swim using bands of iridescent, rainbow coloured comb rows along their body composed of densely packed cellular protrusions, known as cilia. Their hair-like structures are the largest seen anywhere in the tree of life.
The researchers noticed that Daihua resembled another fossil, a famous weird wonder from the Burgess Shale (508 million years old) called Dinomischus. This stalked creature also had 18 tentacles and an organic skeleton and was previously assigned to a group called entoprocts.
“We also realised that a fossil, Xianguangia, that we always thought was a sea anemone is actually part of the comb jelly branch,” said co-author Prof Cong Peiyun.
This emerging pattern led researchers to see a perfect transition from their fossils all the way up to comb jellies.
“It was probably one of the most exhilarating moments of my life,” said Dr Vinther. “We pulled out a zoology textbook and tried to wrap our head around the various differences and similarities, and then, bam!—here is another fossil that fills this gap.”
The study shows how comb jellies evolved from ancestors with an organic skeleton, which some still possessed and swam with during the Cambrian. Their combs evolved from tentacles in polyp-like ancestors that were attached to the seafloor.  Their mouths then expanded into balloon-like spheres while their original body reduced in size so that the tentacles that used to surround the mouth now emerges from the back-end of the animal.

“With such body transformations, I think we have some of the answers to understand why comb jellies are so hard to figure out. It explains why they have lost so many genes and possess a morphology that we see in other animals,” added co-author Dr Luke Parry.

Until around 150 years ago, zoologists had considered comb jellies and cnidarians to be related. This theory was challenged more recently by new genetic information suggesting comb jellies could be a distant relative to all living animals below the very simple looking sponges.
The authors of this new study believe their findings make a strong case for repositioning the comb jelly back alongside corals, sea anemones and jellyfish.

Further information

Paper: ‘Cambrian sessile, suspension feeding stem-group ctenophores and evolution of the comb jelly body plan.’ By Yang Zhao, Jakob Vinther, Luke Parry, Xianguang Hoy, Gregory Edgecombe, Peiyun Cong.

520-Million-Year-Old Sea Monster Had 18 Mouth Tentacles


520-Million-Year-Old Sea Monster Had 18 Mouth Tentacles

A detailed fossil of the newly identified Daihua sanqiong.
Credit: Yang Zhao
A descoberta de um fóssil que mostra uma criatura marinha antiga com 18 tentáculos em torno de sua boca ajudou a resolver um mistério moderno sobre as origens de um carnívoro gelatinoso chamado pentes de gel, segundo um novo estudo.

O anteriormente desconhecido "monstro marinho", que os cientistas apelidaram de Daihua sanqiong, viveu um colossal 518 milhões de anos atrás no que hoje é a China. E o animal extinto compartilha uma série de características anatômicas com a geleia de pente moderna, uma pequena criatura marinha que usa as chamadas fileiras de pentes cheias de cílios parecidos com cabelos para nadar pelos oceanos.

The discovery suggests that this newfound species may be the comb jelly's distant relative, said study lead researcher Jakob Vinther, a paleobiologist at Bristol University in the United Kingdom. [Photos: Ancient Shrimp-Like Critter Was Tiny But Fierce]  

"Com os fósseis, nós pudemos descobrir de onde as geleias de pente bizarras se originaram", disse Vinther à Live Science. "Mesmo que agora possamos mostrar que eles vieram de um lugar muito sensato, isso não os torna menos estranhos".

Essa descoberta, no entanto, provocou um debate. Embora a descoberta de D. sanqiong seja impressionante, é difícil dizer se essa criatura antiga faz parte da linhagem que produzia geleias de pente, disse Casey Dunn, professor de ecologia e biologia evolutiva na Universidade de Yale, que não esteve envolvido no estudo. .

"Sou altamente cético em relação às conclusões que eles tiram", disse Dunn à Live Science.
A magnified shot of the rows of cilia on <i>Daihua sanqiong</i>, which suggest that it might be a distant relative of the modern comb jelly.

A magnified shot of the rows of cilia on Daihua sanqiong, which suggest that it might be a distant relative of the modern comb jelly.
Credit: Jakob Vinther
Vinther came across the D. sanqiong fossil while visiting colleagues at Yunnan University in China. The scientists there showed him a number of fossils in their collection, including the mysterious creature they later named Daihua sanqiong, which was discovered by study co-researcher Xianguang Hou, a paleobiologist at Yunnan University. The genus name honors the Dai tribe in Yunnan; "hua" means flower in Mandarin, and refers to the critter's flower-like shape.

On each of D. sanqiong's tentacles are fine, feather-like branches with rows of large ciliary hairs, which likely helped it catch prey. These hairs, according to Vinther, grabbed his attention "because we only find big cilia on comb jellies." To swim, comb jellies move their cilia, which then flicker in beautiful iridescent colors.
A living comb jelly, known as <i>Euplokamis</i>. The creature's rainbow iridescence is caused by the movement of the ciliary comb bands on the animal's body.

A living comb jelly, known as Euplokamis. The creature's rainbow iridescence is caused by the movement of the ciliary comb bands on the animal's body.
Credit: Photograph by Alexander Semenov
Moreover, the D. sanqiong fossil bears an intriguing resemblance to other known ancient animals, including Xianguangia, another ancient creature with 18 tentacles, and the tulip-like sea creatures Dinomischus and Siphusauctum.

"To make a long story short, we were able to reconstruct the whole [early] lineage of comb jellies," by doing anatomical comparisons, Vinther said. This is a big deal, because some scientists argue that these swimming carnivores were among the first animals to evolve on Earth, based on family trees analyses and genetic modeling of modern comb jellies. But now, this international team has possibly shown that comb jellies have a long lineage that precedes them, Vinther said.
This newly described lineage suggests that some of the ancestors of comb jellies had skeletons and that their ancient tentacles evolved into the combs with the densely packed cilia seen on comb jellies today.
An artist's illustration of <i>Daihua sanqiong</i>.
An artist's illustration of Daihua sanqiong.
Credit: Xiaodong Wang
The discovery also sheds light on where these ancient animals likely sat on the tree of life. For instance, researchers previously thought that Xianguangia was a sea anemone, but it "is actually part of the comb jelly branch," study co-researcher Peiyun Cong , a professor of paleobiology at Yunnan University, said in a statement.

These findings also make a strong case that comb jellies are related to corals, sea anemones and jellyfish, the researchers said. "Those [ancient] tentacles are the same tentacles that you see on corals and sea anemones," Vinther said. "We can trace comb jellies to these flower-like animals that lived more than half a billion years ago." [Photos: Strange, Eyeless Creatures from the Cambrian Period]

But not everyone agrees with this analysis. While Dunn commended the researchers for their detailed description of D. sanqiong and its proposed relatives, some of these creatures have such different body shapes that it's challenging to see how they could be related, he said. It's possible that the tulip-looking Dinomischus and Siphusayctum creatures are related to each other. But Siphusauctum has ciliary rows on the inside of its body, and the animal purported to come after it, Galeactena, has these rows on the outside of its body. It's hard to see how this animal would, in effect, turn inside out as it evolved, Dunn said. Given that some of these claims are tenuous, the burden of proof is higher, and the researchers don't quite get there, Dunn said.

"These are exciting animals no matter how they're related to each other," Dunn said. "Even though I'm skeptical that tentacles and comb rows are homologous [evolutionarily related], I think that as we describe more diversity from these deposits, certainly we're going to learn a lot more about animal evolution."
The study was published online yesterday (March 21) in the journal Current Biology.