All about dinosaurs, fossils and prehistoric animals by Everything Dinosaur team members.

Articles, features and information which have slightly more scientific content with an emphasis on palaeontology, such as updates on academic papers, published papers etc.

22 03, 2022

Earliest Jaws in Evolutionary Trade-Off According to New Research

By |2024-10-30T10:02:57+00:00March 22nd, 2022|Categories: Adobe CS5, Dinosaur and Prehistoric Animal News Stories, Main Page, Palaeontological articles, Photos/Pictures of Fossils|0 Comments

Most vertebrates have jaws, specialised anatomical features for capturing and processing food. A newly published study suggests that the earliest jaws to evolve were caught in a trade-off between maximising their strength and their bite speed.

Dunkleosteus on display. A placoderm parent?

A spectacular Dunkleosteus exhibit. Dunkleosteus was one of 48 Placodermi genera whose jaws were examined in this study. Mathematical models of potential jaw shapes were compared against the actual fossil record. Jaw evolution has been constrained to shapes that have the highest possible speed and strength. Picture credit: Everything Dinosaur.

Picture credit: Everything Dinosaur

The Evolution of Jaws in Vertebrates

Jawed vertebrates dominate modern ecosystems emphasising the importance of jaw development in the evolutionary history of the vertebrates. Over 99% of all living vertebrates have jaws and the very first jaws evolved in prehistoric fish over 400 million years ago. These jaws evolved from gill arches, anatomical structures in fish that support their gills.

How jaws developed has been well documented, for example, Everything Dinosaur has blogged about their evolution: Ancient Shark Provides Insight into Jaw Development, however, researchers led by scientists from the University of Bristol have explored this important topic using a mathematical model to examine the early evolution and radiation of jaw types.

Megamastax amblyodus Illustration

Megamastax terrorises a group of jawless fish. The sarcopterygian Megamastax from the Late Silurian, a large, predatory fish with a powerful jaw attacking a group of jawless fish. The evolution of jaws probably led to the demise of the Agnatha (jawless fish) with only the Hagfish (Myxini) and the Lamprey (Hyperoartia) as the only living examples of this once extremely specious Infraphylum.  Picture credit: Dr Brian Choo.

Picture credit: Dr Brian Choo

The Development of a Novel Mathematical Model to Explore Jaw Development

Writing in the academic publication “Science Advances”, the researchers collected data on the shapes of fossil jaws and developed a mathematical model to assess their characteristics. The mathematical model produced permitted the scientists to extrapolate an extensive range of theoretical jaw shapes that could have been explored by the first evolving jaws. These theoretical jaws were tested for their strength – the amount of force they could endure without breaking, and their speed – how efficiently they could be opened and closed.

Jaw speed and jaw strength are two traits that conflict with each other. For example, really strong, powerful jaws like those associated with the giant placoderm Dunkleosteus would probably have been quite slow to open and close. Increasing bite force usually means a decrease in jaw speed.

By comparing the fossil record with the theoretical jaw shapes predicted by the mathematical model, the researchers deduced that jaw evolution has been constrained to shapes that have the highest possible speed in relation to their strength. Specifically, the jaws of early members of the Gnathostomata (jawed vertebrates) in the dataset were extremely optimal, and some groups evolved away from this optimum over time. These results suggest that the evolution of biting was very quick.

Studying the Earliest Jaws Using Mathematics

Bristol University PhD student William Deakin, the lead author of the paper explained:

“Jaws are an extremely important feature to gnathostomes – or jaw-mouths. They are not only extremely widespread, but almost all creatures that have them, use them in the same way – to grab food and process it. That’s more than can be said for an arm or a foot or a tail, which can be used for all sorts of things. This makes jaws extremely useful to anyone studying the evolution of function. Very different jaws from very different animals can be tested in similar ways. Here we have shown that studies on a large variety of jaws, using theoretical morphology and adaptive landscapes to capture their variety in function, can help shed some light on evolutionary questions.”

Scale drawing of a Coelacanth. What is a Coelacanth?

A scale drawing of a ceolacanth (Latimeria). he research team analysed the jaw shape of 121 extinct gnathostome taxa ranging in age from the Late Silurian to the end of the Devonian. The largest group of fossil fish studied were members of the Sarcopterygii (57 examples studied). The Sarcopterygii are the lobe-finned fishes an example of which is the extant Coelacanth (Latimeria). Picture credit: Everything Dinosaur.

Picture credit: Everything Dinosaur

Co-author of the study Professor Philip Donoghue (University of Bristol), added:

“The earliest jawed vertebrates have jaws in all shapes and sizes, long thought to reflect adaptation to different functions. Our study shows that most of this variation was equally optimal for strength and speed, making for fearsome predators.”

Emily Rayfield, who like Professor Donoghue is also a Professor of Palaeobiology at Bristol University and co-author of the paper, praised the new, insightful mathematical model developed by William Deakin commenting:

“The new software that Will developed to analyse the evolution of jawed vertebrates, is unique. It allows us to map the design space of key anatomical innovations, like jaws, and determine their functional properties. We plan to use it to uncover many more of the secrets of evolutionary history.”

Everything Dinosaur acknowledges the assistance of a media release from the University of Bristol in the compilation of this article.

The scientific paper: “Increasing morphological disparity and decreasing optimality for jaw speed and strength during the radiation of jawed vertebrates” by William J. Deakin, Philip S. L. Anderson, Wendy Den Boer, Thomas J. Smith, Jennifer J. Hill, Martin Rücklin, Philip C. J. Donoghue and Emily J. Rayfield published in Science Advances.

Visit the Everything Dinosaur website: Everything Dinosaur.

20 03, 2022

Is Torosaurus a Valid Genus? Canadian Fossils Suggest it is

By |2024-10-29T07:52:49+00:00March 20th, 2022|Categories: Dinosaur and Prehistoric Animal News Stories, Dinosaur Fans, Main Page, Palaeontological articles, Photos/Pictures of Fossils|2 Comments

Palaeontologists have debated the validity of the Torosaurus genus for decades. Some scientists see this large chasmosaurine known from the Upper Cretaceous (Maastrichtian faunal stage) as a distinct taxon, whilst others consider the genus to be invalid, the fossil material representing old and mature examples of Triceratops.

Analysis of horned dinosaur fossil material from Canada lends support to the idea that Torosaurus is distinct from Triceratops and that it is a valid taxon. A microscopic study of bone composition indicates that the individual animal represented was still growing at the time of its death. This evidence challenges the idea that fossils attributed to Torosaurus are just the remains of very old, fully grown and very mature Triceratops.

Dinosaur drawing commissioned by Everything Dinosaur.

An illustration of the Late Cretaceous chasmosaurine Torosaurus latus. Some palaeontologists have proposed that Torosaurus is simply a skeletally mature growth form of the contemporaneous Triceratops. New research studying partial ceratopsian frills and limb bones found in Canada suggests that Torosaurus is a valid taxon. Picture credit: Everything Dinosaur.

Picture credit: Everything Dinosaur

Canadian Fossils Indicate that Torosaurus is a Valid Taxon

Writing in the Zoological Journal of the Linnean Society, researchers from the Canadian Museum of Nature, the Royal Saskatchewan Museum and Fibics Incorporated (Ontario), analysed two partial cranial frills attributed to Torosaurus. The first, EM P16.1 comes from Frenchman Formation exposures in Saskatchewan which represent uppermost Maastrichtian deposits. This fossil material was collected in 1947 along with two fragmentary thigh bones that were later damaged by floodwater when in storage, the limb bones provided the material for the osteohistological analysis to determine the age of dinosaur. The second specimen UALVP 1646, was found along the Red Deer River valley (Alberta) in 1964. It comes from higher parts of the Lower Scollard Formation. Both frill specimens are estimated to between 66 and 67 million years of age.

PNSO Torosaurus Aubrey and Dabei dinosaur models.

In horned dinosaurs, taxonomy is complicated by the fact that the cranial ornamentation that is often used to distinguish species changes radically with age. The long head shield of Torosaurus with its fenestrae was thought to represent the head crest of very old and mature Triceratops. New research using Canadian fossils refutes this theory and postulates that Torosaurus is a valid genus and the Canadian specimens mark the northernmost distribution of this ceratopsid.

The image (above) shows a replica of an adult Torosaurus with a juvenile.  These figures are from the PNSO range of prehistoric animal figures.

To view the PNSO model range: PNSO Models.

Identifying Torosaurus

Torosaurus has been distinguished from the contemporary Triceratops by the presence of two large holes (paired fenestrae) in the neck frill, which tends to be longer and wider, formed by the longer and tapering squamosal skull bones. In addition, Torosaurus is associated with an increased number of epiparietals (bony bumps and horns) on the margins of the neck shield.

Torosaurus Fossils (EM P16.1)

Parietosquomosal frill of Torosaurus latus (EM P16.1). Dorsal surface (A) which has been reconstructed using plaster and clay with interpretative drawing (B). Schematic transverse cross-section of squamosal near caudal edge based on a sketch by H. Jones. Schematic of frill showing paired fossae and channels on ventral surface of squamosals, based on sketch by H. Jones. Picture credit: Mallon et al.

Picture credit: Mallon et al

Osteohistological Sampling

A fragment of limb bone representing a portion of the left femur found in association with EM P16.1 was subjected to osteohistological analysis to determine the age of the dinosaur when it died. Small cross-sections of bone were cut and mounted onto epoxy resin. These were then carefully ground down to produce the extremely thin bone slices. Light microscopy and scanning electron microscopy (SEM) were then employed to reveal the bone structure at the cellular level.

Although the femur had been extensively repaired with plaster, enough of the bone structure remained for the research team to identify that this dinosaur was still growing when it died. They conclude that the fossil material comes from a late subadult or early adult individual and not an extremely old and mature animal. The scientists refute the hypothesis that Torosaurus represents very old examples of Triceratops.

Osteohistology of Torosaurus

T. latus limb bones found in association with EM P16.1. Photograph (A) shows the thin cross-section of prepared bone taken from a fragmentary femur, the red box area is shown in greater magnification (B). Haversian tissue (C), thin section of cortical bone of left femur, the red box is highly magnifed (D). The bone analysis indicates that this individual was stil growing at the time of death, leading the researchers to conclude that Torosaurus is a valid genus and not simply a very old specimen of a Triceratops. Picture credit: Mallon et al.

Picture credit: Mallon et al

Torosaurus and Triceratops Present in the Late Cretaceous of Canada

Based on this study, the researchers conclude that Torosaurus was present in Canada during the Late Cretaceous. Triceratops is also known from fossils found in Canada, both the currently recognised species Triceratops horridus and the geologically younger T. prorsus have been reported. If the frill fossils and limb bone fragments do represent Torosaurus then they mark the northernmost range of this taxon.

Torosaurus Fossils UALVP 1646

Parietal of Torosaurus latus (UALVP 1646). Dorsal surface (A); with (B) interpretive reconstruction of dorsal surface. The ventral surface is shown (C) and (D) interpretive reconstruction ventral surface. Photograph (E), detail of left parietal fenestra. Arrows in B and D indicate epiparietal loci. Picture credit: Mallon et al.

Picture credit: Mallon et al

Different Species of Torosaurus?

Intriguingly, much of the fossil material that was used in the original description of Torosaurus (Marsh 1891) was not precisely recorded. As a result, the stratigraphic distribution of the early collected Torosaurus fossils is unknown. Most of the recently collected Torosaurus latus fossils from the Hell Creek Formation comes from the lower half of the formation.

The majority of the Hell Creek Formation Torosaurus material was deposited earlier than the Torosaurus fossils from the geologically younger upper portion of the Scollard Formation and the Frenchman Formation of Canada which are approximately the same age as the uppermost parts of the Hell Creek Formation.

One Torosaurus specimen (MPM VP6841) is an exception it having been discovered in sediments associated with the upper part of the Hell Creek Formation. Specimen number MPM VP6841 compares closely to the Canadian specimen EM P16.1 and it has been proposed that these fossils may represent another Torosaurus species. The Hell Creek Formation was deposited over a period of at least 700,000 years (possibly as much as a million years).

Palaeontologists are aware that the Triceratops material associated with different stratigraphy represent different Triceratops species – T. horridus and the geologically younger T. prorsus plus another, as yet unnamed transitional form between the two.

Torosaurus Stratigraphy

The distribution of Torosaurus latus fossil material suggests that as with Triceratops the Hell Creek strata may contain more than one species. Picture credit: Mallon et al with additional annotation by Everything Dinosaur.

Picture credit: Mallon et al with additional annotation by Everything Dinosaur

The researchers conclude that different species of Torosaurus would turn over in a similar manner as Triceratops within these uppermost Maastrichtian strata. There may be more species of Torosaurus identified in the future.

The scientific paper: “The record of Torosaurus (Ornithischia: Ceratopsidae) in Canada and its taxonomic implications” by Jordan C. Mallon, Robert B. Holmes, Emily L. Bamforth and Dirk Schumann published in the Zoological Journal of the Linnean Society.

The award-winning Everything Dinosaur website: Prehistoric Animal Models.

16 03, 2022

The Earliest Armoured Dinosaur found in Asia to Date

By |2024-10-28T13:52:04+00:00March 16th, 2022|Categories: Adobe CS5, Dinosaur and Prehistoric Animal News Stories, Dinosaur Fans, Main Page, Palaeontological articles, Photos/Pictures of Fossils|0 Comments

Scientists including Professor Paul Barrett of the London Natural History Museum have described a new species of basal armoured dinosaur from fossils found in China. The dinosaur named Yuxisaurus kopchicki, represents the first valid and undisputed member of the Thyreophora (armoured dinosaurs) to be described from fossils found in Lower Jurassic Asian strata.

Yuxisaurus life reconstruction

A life reconstruction of the newly described, Early Jurassic Chinese armoured dinosaur Yuxisaurus kopchicki. Picture credit: Yu Chen.

Picture credit: Yu Chen

The Rapid Geographic Spread of Early Armoured Dinosaurs

With an estimated body length of around three metres, Yuxisaurus might be small compared to some of the later and much more famous members of the Thyreophora clade such as Ankylosaurus and Stegosaurus, but confirmation of the presence of early armoured dinosaurs in China underlines the rapid geographic dispersal of these ornithischians. The first armoured dinosaurs are thought to have evolved around 200 million years ago (Hettangian faunal stage of the Early Jurassic). Yuxisaurus fossils consisting of vertebrae, skull bones, elements from the limbs, shoulder blades (scapulae) and 120 osteoderms (bony armour), were excavated from the upper portion of Fengjiahe Formation exposures, near Jiaojiadian village, Yimen County, Yuxi Prefecture, Yunnan Province (southwestern China).

Although the dating of the strata has proved problematical, it is likely that the fossils are somewhere between 192 and 182 million years old (late Sinemurian to early Toarcian stage of the Early Jurassic).

Variety Amongst Early Members of the Thyreophora

Although relatively small compared to later armoured dinosaurs, the limb bones suggest a robust, stout animal indicating that Yuxisaurus had a different body shape compared to other known early thyreophorans such as Scutellosaurus and Emausaurus. This suggests that early armoured dinosaurs had a diverse morphology and ecology and they spread rapidly establishing a wide geographical distribution and filling a variety of niches in Early Jurassic ecosystems.

Yuxisaurus skeletal drawing.

Skeletal reconstruction of Y. kopchicki showing main preserved elements from the holotype (highlighted in blue). Details of the skull bones (A), cervical vertebrae (B) and dorsal vertebrae (C). The left scapula is shown (D) and the right humerus (E) along with the distal portion of the left femur (F). Note scale bars equal 5 cm for A-C and 10 cm for D-F. Osteoderms have been omitted to show the skeleton. Picture credit: Xi Yao.

Picture credit: Xi Yao

The First Unambiguous Armoured Dinosaur from the Early Jurassic of Asia

First author of the scientific paper, Professor Paul Barrett (Natural History Museum, London), commented:

“Although we’ve had tantalising fragments of early armoured dinosaurs from Asia, this is the first time we’ve had enough material to recognise a new species from the region and investigate its evolutionary history. I hope it’s the first of many new dinosaurs from the localities being discovered by my colleagues in Yunnan.”

Senior author of the paper, Dr Shundong Bi, a professor at Indiana University of Pennsylvania, explained that the dinosaur had been named Yuxisaurus kopchicki in honour of the Yuxi Prefecture, whilst the trivial or species name was in recognition of the work of molecular biologist Dr John J. Kopchick and for his support and funding of a new Indiana University of Pennsylvania science complex which is due to open in autumn 2023.

Dr Shundong Bi stated, that despite its robust body:

“Yuxisaurus was possibly a facultative quadrupedal. It was primarily adapted for walking on four legs, but also able to walk on two legs.”

Where Did Armoured Dinosaurs Originate?

Until recently all the unambiguous Early Jurassic Thyreophora taxa were described from fossils found in North America (Scutellosaurus) or Europe (Emausaurus and Scelidosaurus). This led palaeontologists to conclude that armoured dinosaurs originated in Laurasia, however, new phylogenetic analyses (Butler et al 2020, Boyd 2015, Raven and Maidment 2017, Maidment et al 2020 and Baron et al 2017a) have proposed that Lesothosaurus from southern Africa and Laquintasaura from Venezuela might also represent early members of the Thyreophora. If Lesothosaurus and Laquintasaura are early armoured dinosaurs, then this suggests that this clade could have originated in Gondwana.

Yuxisaurus phylogeny

Phylogenetic assessments plotting the relationship of Yuxisaurus within the Thyreophora. Analysis (A) modified from Norman (2021) dataset which places Yuxisaurus as a sister taxon to Emausaurus which is known from the Early Jurassic (Toarcian) of Germany. Analysis (B) modified from Maidment et al (2020) places Yuxisaurus within the Thyreophora as an early-diverging branch between Emausaurus and Scelidosaurus which is known from the older sedimentary deposits from Charmouth on the Dorset coast. Picture credit: Yao et al.

Picture credit: Xi Yao et al

The phylogeny of early ornithischians remains disputed, it is hoped that further fossil finds will resolve this debate.

Everything Dinosaur acknowledges the assistance of a media release from the London Natural History Museum in the compilation of this article.

To read an article about the discovery of Laquintasaura: Laquintasaura What Does it All Mean?

The scientific paper: “A new early-branching armoured dinosaur from the Lower Jurassic of southwestern China” by Xi Yao, Paul M. Barrett, Lei Yang, Xing Xu and Shundong Bi preprint via bioRxiv before publication in eLife.

Visit the award-winning Everything Dinosaur website: Dinosaur Toys and Gifts.

13 03, 2022

Is Bashanosaurus the Oldest Stegosaur? A New Dinosaur Taxon

By |2024-10-27T22:05:57+00:00March 13th, 2022|Categories: Adobe CS5, Dinosaur and Prehistoric Animal News Stories, Dinosaur Fans, Main Page, Palaeontological articles, Photos/Pictures of Fossils|0 Comments

The trouble with being regarded as the biggest, longest, tallest or oldest when you are newly described species of dinosaur, is that sooner or later another fossil discovery will take this claim away from you. Back in 2019, team members wrote a blog post about the discovery of Adratiklit boulahfa from the Middle Jurassic of Morocco North Africa’s First Stegosaur. The fossils of this armoured dinosaur were estimated to be around 168 million years old (Bathonian faunal stage), making Adratiklit the oldest definitive stegosaur described.

Scientists including Dr Susannah Maidment a senior researcher at the London Natural History Museum, who co-authored the paper describing A. boulahfa, have announced the discovery of an even older stegosaur, this time from China. The new stegosaur named Bashanosaurus primitivus is at least one million years older than the Moroccan stegosaur.

The Fossils of Bashanosaurus

The fossils of Bashanosaurus herald from the Lower Member of the Shaximiao Formation and radiometric dating based on isotope decay analysis using zircon crystals (geochronological data), suggest that the deposits associated with the fossil bones are around 169 ± 0.68 million years of age.

Bashanosaurus life reconstruction.

A life reconstruction of the newly described Chinese stegosaur Bashanosaurus primitivus. Picture credit: Banana Art Studio.

Picture credit: Banana Art Studio

Did the Stegosauria Evolve in Asia?

The fossil record of early stegosaurs is highly fragmentary and the evolution of this iconic branch of the Thyreophora is poorly understood. The Stegosauria represents a major clade within the Ornithischia (bird-hipped dinosaurs). Fourteen genera of stegosaur have been described to date and they are both geographically and temporally widespread, known from all the major landmasses except for Australia and Antarctica.

In 2016, a new dinosaur quarry was opened in Yunyang County, Chongqinq Municipality in southwestern China. Stegosaur fossil material was identified on the western side of the quarry. The disarticulated material preserved within the sandstone consisted of a dorsal vertebra, two tail bones (caudal vertebrae), a right scapula, a right coracoid and elements from the hind legs. Three pieces of dermal armour were also discovered at this location (one plate and two spines) along with fragments of rib bones. These fossils (CLGPR V00006-1) are regarded as the holotype of B. primitivus.

Potentially Three Bashanosaurus Specimens

More stegosaur fossils were found at the site approximately fifty metres away from the holotype material (CLGPR V00006-2). They consist of five dorsal vertebrae, a right tibia, a right fibula some ribs and a single piece of dermal armour (one plate). In addition, a single dorsal vertebra (CLGPR V00006-3) was found on the eastern part of the site some one hundred and twenty metres away from the holotype material.

Whilst the researchers have confidently assigned these fossils to the Stegosauria and specifically to Bashanosaurus primitivus, three individual stegosaurs are represented by the bones.

Bashanosaurus fossils.

Photograph (A) with interpretative line drawing showing the position of the B. primitivus holotype fossil material (CLGPR V00006-1) on the western side of the wall of dinosaur fossils. Photograph (B) with interpretative line drawing showing the second location with B. primitivus fossil material ((CLGPR V00006-2) towards the middle of the wall of dinosaur fossils. Picture credit: Hui et al.

Picture credit: Hui et al

It is not known whether the fossil bones represent a juvenile or a fully-grown animal. However, based on these bones, the researchers estimate that the largest stegosaur from the quarry was about 2.8 metres in length.

Unique Anatomical Traits

The scientists who include researchers from the Chongqing Bureau of Geological and Mineral Resource Exploration and Development in China and London’s Natural History Museum identified several unique anatomical traits that led to the erection of a new genus. Bashanosaurus possesses anatomical characteristics associated with basal thyreophorans as well as more derived features associated with early stegosaurs. For example, it has a smaller and less developed shoulder blade, the bony projection of the thighbone (fourth trochanter) is positioned below the middle of the shaft and the bases of the armour plates curve outwards and are thicker than the plates on the backs of later stegosaurs.

The genus name is derived from “Bashan” in reference to the ancient name for the area of Chongqing in China where the dinosaur was found. The species moniker is derived from the Latin for “first” – primitivus.

Lead author of the research team, Dr Dai Hui from the Chongqing Bureau of Geological and Mineral Resource Exploration and Development commented:

“All these features are clues to the stegosaurs’ place on the dinosaur family tree. Bashanosaurus can be distinguished from other Middle Jurassic stegosaurs, and clearly represents a new species.”

Phylogenetic Analysis

Phylogenetic analysis shows that Bashanosaurus primitivus is the earliest-diverging stegosaur, along with Chungkingosaurus (C. jiangbeiensis), which is thought to be closely related, although Chungkingosaurus lived much later than Bashanosaurus. Chungkingosaurus fossils are known from the Upper Member of the Shaximiao Formation.

The discovery of Bashanosaurus will help researchers to learn more about the evolution of stegosaurs and supports the theory that this type of armoured dinosaur first appeared in Asia. Although there have been some exciting fossil discoveries helping to improve understanding with regards to the evolution of armoured dinosaurs (Thyreophora), there are still numerous gaps in the fossil record which makes mapping the evolutionary development of these iconic dinosaurs extremely difficult.

For example, Everything Dinosaur recently wrote an article about the discovery of the basal thyreophoran Yuxisaurus kopchicki, whose fossils also come from China. Scientists from the London Natural History Museum also contributed to the scientific paper on Yuxisaurus: The Earliest Armoured Dinosaur Found to Date.

Everything Dinosaur has inserted Yuxisaurus kopchicki within the phylogenetic assessment of Bashanosaurus to help put these recent fossil discoveries into context (see below).

Bashanosaurus phylogeny and comparison with the recently described Yuxisaurus.

A phylogenetic analysis showing the placement of B. primitivus within the Stegosauria. It is believed to be around one million years older than the recently described Adratiklit boulahfa (Maidment et al) from the Middle Jurassic of Morocco. The earliest armoured dinosaur from Asia known to date (Yuxisaurus kopchicki) from Yunnan Province, China (Yao et al) has been incorporated into the image by Everything Dinosaur to show the approximate phylogenetic and temporal placement of Y. kopchicki when compared to B. primitivus. Picture credit: Hui et al with additional annotation by Everything Dinosaur.

Picture credit: Hui et al with additional annotation by Everything Dinosaur

The Stegosauria Clade Originated in Asia?

Commenting on the phylogenetic assessment Dr Hui stated:

“What’s more, our analysis of the family tree indicates that it [B. primitivus] is one of the earliest-diverging stegosaurs along with the Chongqing Lizard (Chungkingosaurus) and Huayangosaurus. These were all unearthed from the Middle to Late Jurassic Shaximiao Formation in China, suggesting that stegosaurs might have originated in Asia”

Chungkinogsaurus illustrated.

An illustration of the Chinese Stegosaur Chungkingosaurus. Picture credit: Everything Dinosaur.

Picture credit: Everything Dinosaur

The picture (above) shows a drawing of a model from the PNSO model range.

To view this range of prehistoric animal figures: PNSO Age of Dinosaurs Figures.

Co-author of the scientific paper published in the Journal of Vertebrate Paleontology, Dr Susannah Maidment of the London Natural History Museum and an expert in ornithischian dinosaurs added:

“The discovery of this stegosaur from the Middle Jurassic of China adds to an increasing body of evidence that the group evolved in the early Middle Jurassic, or perhaps even in the Early Jurassic, and as such represent some of the earliest known bird-hipped dinosaurs. China seems to have been a hotspot for stegosaur diversity, with numerous species now known from the Middle Jurassic right the way through until the end of the Early Cretaceous period.”

Everything Dinosaur acknowledges the assistance of a media release from the Taylor & Francis Group in the compilation of this article.

The scientific paper: “New Stegosaurs from the Middle Jurassic Lower Member of the Shaximiao Formation of Chongqing, China” by Dai Hui, Li Ning, Susannah C. R. Maidment, Wei Guangbiao, Zhou Yuxuan, Hu Xufeng, Ma Qingyu, Wang Xunqian, Hu Haiqian and Peng Guangzhao published in the Journal of Vertebrate Paleontology.

Visit the Everything Dinosaur website: Everything Dinosaur.

6 03, 2022

“Explorers of Deep Time” Book Review

By |2024-10-27T12:23:15+00:00March 6th, 2022|Categories: Book Reviews, Dinosaur Fans, Main Page, Palaeontological articles|0 Comments

Have you ever wondered what it would be like to be a palaeontologist? Have you ever thought about pursuing a career in the Earth Sciences? Not sure where to begin? A new book written by an eminent American palaeontologist entitled “Explorers of Deep Time” is a great place to start.

Author Roy Plotnick (University of Illinois, Chicago), provides a behind the scenes guide to being a palaeontologist, the trials, triumphs and tribulations and as a self-confessed OWM (old, white male), he champions inclusiveness and diversity amongst the scientific community.

Explorers of Deep Time front cover

The front cover of “Explorers of Deep Time” by eminent American palaeontologist Roy Plotnick. Picture credit: Columbia University Press.

Picture credit: Columbia University Press

Candid and Comprehensive

Roy has spent decades working as a palaeontologist. He is a Fellow of the Geological Society of America (GSA) and a Fellow of the Paleontological Society of America too. As such, he is exceedingly well-qualified to comment on how the study of ancient life has been revolutionised with the development of new research techniques.

The book is divided into four main chapters looking at various aspects of exploring deep, geological time. Starting with an overview in which the author addresses common misconceptions about palaeontologists, for instance, he is not Ross from “Friends” or Indiana Jones. Roy Plotnick guides the reader through the various and diverse routes to a job in the Earth sciences and explains what it is actually like to study palaeontology. If you have ever wondered about toilet facilities at dig sites, or how the increasing number of female scientists’ juggle starting a family with work commitments – then this book provides a practical and uncomplicated explanation.

Although the book has been written with an emphasis on the American education system and American academia, it outlines how palaeontology has developed and changed over the last forty years or so, explores new study techniques and places the science clearly in the context of helping to better understand how our world is changing today.

The author of "Explorers of Deep Time" Roy Plotnick

The author of “Explorers of Deep Time” Roy Plotnick (member of the Geological Society of America and the Paleontological Society of America. Picture credit: Columbia University Press.

Picture credit: Columbia University Press

An “Old White Male” Encourages Diversity

One of the key themes of “Explorers of Deep Time”, is the author’s wish that more women and ethnic minorities are represented in Earth science disciplines. Roy Plotnick examines some of the barriers that existed in his early career leading to a preponderance of “old, white males” within palaeontology. Many of these obstacles restricting participation have been removed, but the author skilfully argues for greater participation and draws on the experience of other scientists to help support his views.

He introduces readers to the diverse group of people of all genders, races, and international backgrounds who make up the twenty-first-century palaeontology community. The book provides a sounding board for their views and a platform for their perspectives, helping readers to obtain a better understanding of career paths and opportunities.

There is even a chapter dedicated to outlining the importance of published research and the struggles scientists can face getting their work into print, or more often than not these days, on-line.

This behind the scenes guide to palaeontology, is not crammed with stunning photographs and illustrations, but it does outline the varied challenges facing this discipline and provides a rare insight on the profession to aspiring scientists of all ages.

Candid and at times frank, this is an excellent guide to the pros and cons of choosing palaeontology as a career.

Roy Plotnick and "Old White Male" challenging stereotypes.

The author describing himself as an OWM (old, white male) writes about the need to encourage greater diversity in the Earth Sciences with increased access and appropriate support for women, minorities, the disabled and other groups that may feel excluded. Picture credit: Roy Plotnick (University of Illinois).

Picture credit: Roy Plotnick (University of Illinois)

Palaeontology SWOT Analysis

Not sure if a job in the Earth sciences is for you? Roy Plotnick concludes by providing a SWOT analysis. He outlines the strengths, weaknesses, opportunities and threats associated with working in the palaeontology profession. This analysis acts as a fitting summary to “Explorers of Deep Time”.

Published by Columbia University Press the hardcover book is priced at the time of writing at £28.00 GBP/$35.00 USD with the downloadable E-book priced at £28.00 GBP/$34.99 USD.

To purchase the book visit: Columbia University Press and search on the author surname “Plotnick” to find the web page for “Explorers of Deep Time”.

Highly recommended.

The award-winning Everything Dinosaur website: Dinosaur Toys.

4 03, 2022

Sauropods Walked Like Hippos According to New Study

By |2024-10-27T11:02:43+00:00March 4th, 2022|Categories: Adobe CS5, Dinosaur and Prehistoric Animal News Stories, Dinosaur Fans, Main Page, Palaeontological articles, Photos/Pictures of Fossils|0 Comments

Researchers from Liverpool John Moores University have developed a new and innovative approach to interpreting sauropod trackways enabling them to calculate their gaits (the order in which the animal moved its four limbs to progress). Jens Lallensack and his colleague Peter Falkingham discovered that the placement of tracks relative to each other in a sauropod trackway changes in a consistent way when the animal changes its velocity (either speeding up or slowing down). Using this technique, subsequently verified by analysing the gaits of living animals such as dogs, horses, a camel and an elephant, the scientists have concluded that sauropods walked more like hippos than elephants.

Sauropod Tracks (Brontopodus plagnensis).

A picture of the sauropod trackway (Plagne, France). Picture credit: P. Dumas/Centre National de la Recherche Scientifique.

Picture credit: P. Dumas/Centre National de la Recherche Scientifique.

Quadruped Locomotion

Four-footed animals (quadrupeds), may use different gaits such as trots, walks, and pace gaits. In a trot, one diagonal limb pair (e.g. hind right and front left) moves together, followed by the other limb pair. Many mammals use trots at faster gaits, but reptiles also use trots at slow speeds. In a pace gait, in contrast, the limbs on one side of the body (e.g. hind right and fore right) move together in a similar way as the locomotion of a camel.

In-between these extremes is the single foot gait, in which the time lag between fore and hind feet is equal – a good example of this type of locomotion is the movement of horses.

The movements of living animals can be observed, direct observation of extinct animals such as huge, long-necked, long-tailed sauropod dinosaurs is not possible, but data can be obtained by careful study of their fossilised prints and trackways.

Dinosaur tracks

Trace fossils such as these dinosaur tracks can provide palaeontologists with data on dinosaur locomotion, velocity and gaits. Picture credit: Liverpool John Moores University.

Picture credit: Liverpool John Moores University

Examining Sauropod Tracksites

Liverpool John Moores University researchers Jens Lallensack and Peter Falkingham identified that the placement of an animal’s feet changes in a predictable and consistent way when the animal’s velocity changes. If a trackway is long enough and shows variation in stride length (indicating a change of speed), it is possible to calculate gaits and to gain an insight into how extinct animals moved.

Their predictions were confirmed in an analysis of the gaits of different types of living animal, including elephants, thanks to the help from locomotion expert Professor John Hutchinson (Royal Veterinary College, London), who provided elephant locomotion data. These new analytical methods were used to plot the limb movements along three sauropod trackways from the Lower Cretaceous De Queen Formation (Arkansas, USA). Although it is not possible to identify specific sauropod species (ichnospecies) from the De Queen Formation (Albian fauna stage) tracks, these trace fossils represent large, sauropod trackmakers (median average hind foot length 70-85 cm and maximum stride length 3.42 metres).

Commenting on the outcome of their findings, reported in the journal “Current Biology”, Dr Falkingham stated:

“Many researchers assumed that sauropods walked like elephants, with which they share many similarities, but that doesn’t appear to be the case.”

Dinosaur Trackway

Researchers have found a way to identify the gait of sauropods by studying their tracks. Picture credit: Liverpool John Moores University.

Picture credit: Liverpool John Moores University

Sauropod Dinosaurs Compared to Elephants

As elephants are the largest living terrestrial animals alive today, it had been suggested that their locomotion was an appropriate analogy for the movement of sauropod dinosaurs. Elephants use a gait intermediate between the pace gait and the singlefoot, i.e. the two limbs on the same body side tend to swing together. The gait analysis, in the current study by contrast, revealed that sauropods instead employed a gait intermediate between the singlefoot and a trot: the opposite-side limbs tend to swing together.

Based on this data, sauropod dinosaurs had a similar gait to hippos.

To Sway or Not to Sway

If sauropods moved very differently compared to the largest land animals alive today, this suggests that these two types of animal with large body sizes evolved different solutions to locomotion. Sauropods, even the titanosaurs known for their narrower trackways when compared to other types of sauropod such as diplodocids and dicraeosaurids, have a much broader stance than elephants. Elephants place one foot almost directly in front of another producing surprisingly narrow tracks for such large animals. Sauropod trackways, in contrast, are much broader. Their particular gait allowed sauropods to have at least one foot on the ground on both the left and right sides of the body at all times, preventing swaying from side to side.

Patagotitan skeleton on display at the London Natural History Museum.

The enormous body of the titanosaur dwarfs visitors. Patagotitan mayorum skeletal reconstruction. Titanosaurs are known for their narrower tracks when compared to other types of sauropod but as many were much bigger than elephants, elephants do not make a good analogy for describing the gaits of titanosaurs or of sauropods generally. Picture credit: Everything Dinosaur.

Picture credit: Everything Dinosaur

Everything Dinosaur acknowledges the assistance of a media release from Liverpool John Moores University in the compilation of this article.

Lead author of the scientific paper Dr Jens Lallensack added:

“Sauropods chose a gait that maximised stability but still allowed for efficient walking”.

The scientific paper: “A new method to calculate limb phase from trackways reveals gaits of sauropod dinosaurs” by Jens N. Lallensack, Peter L. Falkingham published in Current Biology.

The Everything Dinosaur website: Dinosaur Toys.

2 03, 2022

The Artwork in a Scientific Paper

By |2023-07-08T17:02:38+01:00March 2nd, 2022|Categories: Adobe CS5, Dinosaur and Prehistoric Animal Drawings, Dinosaur and Prehistoric Animal News Stories, Dinosaur Fans, Main Page, Palaeontological articles|0 Comments

When a new prehistoric animal is named and described in a scientific paper, often, an illustration featuring the new discovery is commissioned so that readers and viewers of any subsequent media release can get an impression of what the creature might have looked like. These life reconstructions show the animal in context, providing an insight into the palaeoenvironment and sometimes also highlighting contemporaneous species that shared the same habitat.

Illustrating a Scientific Paper

These, frequently stunning illustrations are carefully conceived. Great care is taken to reflect the scientific evidence, however, the artist has some licence when it comes to considering the landscape, the choice of colours and the motif of the artwork.

Sometimes the person responsible for the scientific illustration is one of the authors of the study. For example, the artwork supporting the media release on the recently described rhamphorhynchid pterosaur from the Isle of Skye (Dearc sgiathanach), was created by the lead author Natalia Jagielska, a PhD student at the School of GeoSciences, University of Edinburgh.

Isle of Skye pterosaur (Dearc sgiathanach).
The Isle of Skye 170 million years ago. A theropod dinosaur hopes to catch a Dearc sgiathanach, but this large pterosaur is too quick and avoids capture. The lead author of the scientific paper created the stunning artwork that accompanied the media release. Picture credit: Natalia Jagielska

Everything Dinosaur asked the artist what inspired and influenced her when it came to illustrating the newly described Scottish pterosaur.

Reflecting Scientific Evidence in Palaeoart

Natalia explained that she was inspired by Scottish birds, both those in Edinburgh, where the D. sgiathanach fossil material is stored and also the many seabirds synonymous with the Isle of Skye (where the fossil was found). Gannets are common on the island. They have a similar wingspan to that estimated for Dearc sgiathanach. With their long crania, robust neck and slender wings, these piscivores could be regarded as occupying a similar niche in the marine based ecosystem as the rhamphorhynchids.

“I wanted to form this connection between contemporary local fauna and ancient fauna”, Natalia commented. “I also added a splash of blue hues and yellows on the head in some reconstructions, as a nod to its Scottish origin and the Scottish flag”.

Skye pterosaur artwork
Dominating the skies on the Isle of Skye. Several pterosaurs flying over the coastline (Dearc sgiathanach). Picture credit: Natalia Jagielska.

Setting the Scene for a Jurassic Pterosaur

The background into which the life reconstruction is inserted can also help to convey important information relating to geology and the ancient environment. The rugged cliffs (above), reflect the famous steep cliffs of Skye and link the Jurassic landscape to modern Scotland, as both have been extensive shaped by the Caledonian orogeny, a period of mountain building that occurred during the Palaeozoic.

The waters represent the Hebridean basin and are part of Boreal Seaway, their presence in the artwork helps to reinforce the view that Dearc sgiathanach was associated with coastal and marine habitats.

Adding a Theropod Dinosaur

A theropod dinosaur features in one of the illustrations included with the media release. The presence of theropods in the Middle Jurassic of Skye is indicated by tridactyl prints preserved in the petrified mudflats. The Megalosaurus depicted in the scene sports cranial crests. PhD student Natalia explained that as Megalosaurus does not have a well- preserved skull, she took the opportunity to give her theropod a pair of Allosaurus-inspired head crests.

The dinosaur provides a helpful scale, the viewer is in no doubt that Dearc sgiathanach was a large animal. Indeed, with a wingspan estimated to be around 2.5 metres, the Isle of Skye pterosaur is the biggest flying reptile described to date from Jurassic material.

“Pairing a theropod with the pterosaur is an excellent way of displaying Dearc’s sheer size and making the viewer perceive it’s in the Jurassic”, Natalia stated. “Megalosaurus is excellent too, showcasing basal bauplans of carnivorous dinosaurs associated with the Middle Jurassic”.

The Pterosauria

The Pterosauria continued to evolve throughout the Mesozoic, with some of the Late Cretaceous taxa evolving to become the largest flying animals of all time. Scientific illustrations evolve and change too. In Natalia’s email correspondence with Everything Dinosaur, it was pointed out that the original concept was to depict the pterosaur fighting with the dinosaur over a piece of carrion – a macabre tug-of-war between the two archosaurs. However, the final illustration depicts a different form of interspecific competition, the brash theropod chasing after the pterosaurs much like a dog might chase gulls or oystercatchers on the beach today.

Skye Art megalosaur and pterosaur interaction
The addition of a megalosaurid helps to provide a scale and illustrates a typical theropod from the Middle Jurassic. Picture credit: Natalia Jagielska.

The subtle tones of the sky at sunset add atmosphere and an almost ethereal quality to the artwork. Natalia commented that the background to the illustration featuring the theropod was inspired by J. M. W. Turner’s “The Fighting Temeraire”, she wanted to give her work a grandiose, maritime-look using the light, colours and shading as depicted in the famous Turner painting. The iconic painting “The Fighting Temeraire”, featuring a huge warship making its final journey to a London shipyard so that it could be broken up, was painted in 1839. Ironically, it was during the late 1830s that the remarkable pterosaur fossils including many examples of rhamphorhynchids, from the Solnhofen limestones of southern Germany were being subjected to detailed scientific scrutiny.

Bathonian Mammaliaforms and Sauropods

In the bottom left corner of the artwork, large rib bones can be seen and sitting precariously atop one of the bones is a small mammaliaform. The Lealt Shale Formation from which the pterosaur specimen was extracted, has not yielded many body fossils, but mammaliaforms such as Wareolestes (W. rex), are known from the roughly contemporaneous Kilmaluag Formation of the Isle of Skye. Natalia wanted to highlight the significance of Skye for helping to shed light on an important stage in the evolution of many different types of tetrapod, including our own ancestors.

The Isle of Skye is also famous for its extensive sauropod tracks. Admittedly, the pterosaur specimen comes from a bedding plane devoid of such prints although tracks associated with thyreophorans (stegosaurs) have been identified.

Sauropod ribs and a mammaliaform are also illustrated in the pterosaur artwork.
Mammaliaform fossils although exceptionally rare have been found in Middle Jurassic exposures in Scotland. The artwork highlights the presence of such creatures (arrowed) and the huge rib bones are a nod towards the extensive sauropod tracks associated with the Lealt Shale Formation. Picture credit: Natalia Jagielska.

The addition of the sauropod bones permitted the artist to hint at one of the theories put forward to explain the preservation of animal remains over a period of 170 million years or so.

Natalia explained:

“The ribcage in the foreground suggests one of theories suggesting superb preservation, maybe the fossil was buried in mudflats. The location showcases a marginal marine setting, with storm deposit layers and evidence for periodic aerial exposure – truly a perplexing combination”.

Stunning Illustrations in a Scientific Paper

The illustrations are certainly stunning, helping to tell the tale of a pterosaur that soared over Scotland way back in the Middle Jurassic. Our thanks to Natalia Jagielska for sharing her thoughts on the inspiration behind the artwork.

To read Everything Dinosaur’s blog post about the discovery of Dearc sgiathanach: Fantastic Pterosaur Fossil from the Isle of Skye.

Visit the award-winning Everything Dinosaur website: Visit Everything Dinosaur.

1 03, 2022

Are There Three Tyrannosaurus Species? New Research Asks the Question

By |2024-10-27T10:42:02+00:00March 1st, 2022|Categories: Adobe CS5, Dinosaur and Prehistoric Animal News Stories, Dinosaur Fans, Main Page, Palaeontological articles, Photos/Pictures of Fossils|0 Comments

So, the scientific paper is out and theropod feathers are about to be ruffled. The iconic Tyrannosaurus rex might not be just one species, but actually three. That is the conclusion reached by researchers Gregory S. Paul, Scott Persons and Jay Van Raalte – all highly respected scientists, but already other academics have challenged their findings.

Writing in the academic journal “Evolutionary Biology”, two new Tyrannosaurus species are proposed, a geologically older, robust form newly named Tyrannosaurus imperator that was followed by two further species the already named Tyrannosaurus rex, also a robust tyrannosaur and a contemporaneous gracile form which has been named Tyrannosaurus regina.

Titus the T.rex exhibit. A T. rex skeleton on display.

The spectacular Titus the T. rex exhibit at Wollaton Hall. PIcture credit: Everything Dinosaur.

Picture credit: Everything Dinosaur

The Tyrannosaurus Controversy

The fearsome, apex predator Tyrannosaurus rex might be synonymous with the famous Hell Creek Formation, but Tyrannosaurus fossils have also been found in many other Upper Cretaceous deposits (Maastrichtian stage). For example, T. rex fossils or at least indeterminate Tyrannosaurus material is associated with nine other North American geological formations.

T. rex fossils have been found in exposures of the Scollard Formation of south-western Alberta the Frenchman Formation of southern Saskatchewan and south-eastern Alberta. This suggests that this large theropod roamed northern areas of Laramidia. Tyrannosaurus fossils from the Laramie Formation exposures in Colorado have been assigned to Tyrannosaurus rex. T. rex fossil material has been reported from much further south, from the Javelina Formation of Texas.

With only one species of Tyrannosaurus (T. rex), the fossil evidence as classified so far indicates that the “tyrant lizard king” had a huge geographical distribution, virtually the entire ancient landmass of Laramidia.

Furthermore, these deposits represent vast amounts of geological time. The Hell Creek Formation is believed to have been formed over two million years and as scientists have now concluded that other iconic taxa such as Triceratops evolved over this time period into new species, then surely T. rex would have been subject to the same evolutionary pressures.

"Scotty" the Tyrannosaurus rex.

A reconstruction of the skeleton of “Scotty” the T. rex. The fossils come from the Frenchman Formation of Saskatchewan (Canada) and one of the authors of the scientific paper published in the journal the Anatomical Record was Scott Persons who is a co-author of the new paper describing three Tyrannosaurus taxa. Picture credit: Amanda Kelley.

Picture credit: Amanda Kelley.

Analysis of Limb Bones (Femora)

A total of thirty-seven fossil specimens were studied by the researchers. Two-thirds of these had femora (thigh bones) associated with them and the scientists found differences in the thickness and robustness of these bones, that were unlikely a result of individual variation within a single species. In the sample studied, Gregory S. Paul and his colleagues found greater variation in femur robustness in the T. rex thigh bone material than in the whole of the other tyrannosaurid femora material known from the preceding ten million years.

The team discounted size variations based on maturity, ontogeny (growth pattern) and the age of the Tyrannosaurus when it died. Robust forms and more gracile forms of T. rex have been known for some years. Some palaeontologists have speculated that the smaller, more slender bones of some T. rex specimens compared to the more robust femora of other specimens might be explained as differences in the sexes.

If robust forms represent females, and gracile forms males, then it would be expected that the fossil record would show roughly even numbers of these bone types. However, the research team point out an uneven ratio of robust bones to gracile bones and as such they discount the differences as sexual variation.

In addition, the team report that gracile bones are only found in higher layers of sediment. These bones are geologically much younger than other more robust T. rex bones associated with lower layers.

Tyrannosaurus rex cast skeleton on display

Which Tyrannosaurus species? A cast of the T. rex specimen known as “Stan” (BHI 3033), but researchers propose that there were actually three species of Tyrannosaurus present in the Late Cretaceous of North America. Picture credit: Everything Dinosaur.

Picture credit: Everything Dinosaur

Differences in Tooth Count

The scientists also commented on differences in tooth counts associated with Tyrannosaurus lower jaws (the dentary). Tyrannosaurus imperator (the earliest Tyrannosaurus species) had two small incisors in each dentary. Whilst the later species (T. regina and T. rex) had only one small incisor in each dentary.

Titus the T. rex Skull and Jaws. Dinosaur extinction.

The research team identified differences in the number of small incisor-like teeth in the lower jaw which they concluded was further evidence of the T. rex fossil material actually representing a trio of Tyrannosaurus species. Picture credit: Everything Dinosaur.

Picture credit: Everything Dinosaur

The researchers concede that they cannot rule out other explanations for their findings. Several palaeontologists have challenged the paper, stating that the variations seen in the fossils could be explained by factors such as individual variation amongst individuals of a single species. Like many dinosaurs, Tyrannosaurus rex changed radically as it grew and matured, this aspect of dinosaur taxonomy is going to be debated for a considerable time to come.

For fans of dinosaur models, does this mean that collectors will have to reassess their Tyrannosaurus rex models?

Three Tyrannosaurus species proposed.

Which Tyrannosaurus species are you? A newly published scientific paper proposes three Tyrannosaurus species. Picture credit: Everything Dinosaur.

Picture credit: Everything Dinosaur

The scientific paper: “The Tyrant Lizard King, Queen and Emperor: Multiple Lines of Morphological and Stratigraphic Evidence Support Subtle Evolution and Probable Speciation Within the North American Genus Tyrannosaurus” by Gregory S. Paul, W. Scott Persons IV and Jay Van Raalte published in Evolutionary Biology.

Visit the award-winning Everything Dinosaur website: Everything Dinosaur.

28 02, 2022

Kelumapusaura: A New Hadrosaur from Patagonia

By |2024-10-26T16:27:29+01:00February 28th, 2022|Categories: Adobe CS5, Dinosaur and Prehistoric Animal News Stories, Dinosaur Fans, Main Page, Palaeontological articles|0 Comments

Researchers from the Museo Argentino de Ciencias Naturales ‘Bernardino Rivadavia’ in Buenos Aires (Argentina), have described a new species of duck-billed dinosaur that roamed north-western Patagonia in the Late Cretaceous. The new dinosaur has been named Kelumapusaura machi and its discovery has helped palaeontologists to validate previously described South American hadrosaurids as distinct species.

The Largest Hadrosaur in the Allen Formation Ecosystem

Numerous fossils have been reported, representing skull and postcranial material from several individuals. Comparison of the fossils suggests that bones from sub-adults as well as bones from more mature, adult animals were found. Based on the largest fossil bones, Kelumapusaura is estimated to have been up to 9 metres in length, perhaps weighing as much as 3 Tonnes.

Kelumapusaura machi life reconstruction.

Kelumapusaura machi life reconstruction. Note scale bar = 1 metre.

Getting to Grips with South American Hadrosaurids

The fossil material was collected from exposures associated with the Allen Formation (Upper Cretaceous Campanian–Maastrichtian stage). The research team report that these fossils represent one of the most complete hadrosaurids found to date in South America. Importantly, many of the skull and postcranial bones associated with K. machi overlap with bones associated with other South American hadrosaurids that have been named and described from much more fragmentary remains.

Using the Kelumapusaura fossils the research team confidently assert that previously named South American hadrosaurids – Secernosaurus koerneri, Bonapartesaurus rionegrensis and “Kritosaurus” australis are all valid taxa.

“Kritosaurus” australis was named and described in 1984 by the world-renowned Argentinian palaeontologist José Fernando Bonaparte who sadly passed away in February 2020: José Bonaparte the Father of Palaeontology in Argentina (1928-2020). Thanks to the K. machi study, “Kritosaurus” australis is thought to be sufficiently different to other Kritosaurus species found in North America to warrant its own genus Huallasaurus australis.

A South American Saurolophinae Clade

A phylogenetic analysis of the hadrosaurid fossils included in this study unites Kelumapusaura, the closely related taxon Huallasaurus (H. australis), along with Bonapartesaurus and Secernosaurus into a clade that can be nested within the Kritosaurini tribe as part of the Saurolophinae subfamily of hadrosaurs. The Saurolophinae is comprised of those hadrosaurs that generally tend to lack spectacular head crests, as opposed to the other major subfamily within the Hadrosauridae – the Lambeosaurinae.

According to the researchers, the Kritosaurini tribe now consists of both North American and South American saurolophine hadrosaurs, which means that Kelumapusaura is related to more famous hadrosaurs such as Kritosaurus and Gryposaurus from the United States and Canada.

Gryposaurus scale drawing.

A scale drawing of the duck-billed dinosaur Gryposaurus. A scale drawing of the duck-billed dinosaur Gryposaurus. The newly described Kelumapusaura machi is related to Gryposaurus, several species of Gryposaurus have been named including the type species G. notabilis which lived as far north as Alberta (Canada).Picture credit: Everything Dinosaur.

Picture credit: Everything Dinosaur

Significantly, the clade status implies that these hadrosaurids shared a common ancestor, that all these different taxa that are widely distributed came from an ancestral population. The scientists conclude that the evolutionary development of Gondwanan hadrosaurids is not that well understood compared to the duck-billed dinosaurs from northern latitudes. They hope that more fossil discoveries from South America will help to further revise hadrosaur taxonomy.

The scientific paper: “A new hadrosaurid (Dinosauria: Ornithischia) from the Late Cretaceous of northern Patagonia and the radiation of South American hadrosaurids” by Sebastián Rozadilla, Federico Brissón-Egli, Federico Lisandro Agnolín, Alexis Mauro Aranciaga-Rolando and Fernando Emilio Novas published in the Journal of Systematic Palaeontology.

The Everything Dinosaur website: Dinosaur Toys.

25 02, 2022

Giant Trilobite was a Cannibal According to New Research

By |2024-10-26T16:09:23+01:00February 25th, 2022|Categories: Adobe CS5, Dinosaur and Prehistoric Animal News Stories, Dinosaur Fans, Main Page, Palaeontological articles, Photos/Pictures of Fossils|0 Comments

Researchers have conducted an extensive review of injured trilobites and disarticulated pieces of trilobite exoskeleton from the Emu Bay Shale Konservat-Lagerstätte on Kangaroo Island (South Australia). They conclude that the injuries caused to Redlichia trilobites were from attacks by other members of this genus. This is the oldest record of cannibalism recorded in the fossil record to date.

CollectA Redlichia rex trilobite. "First Life"

CollectA Redlichia rex trilobite model.

The picture (above) shows the CollectA Redlichia rex trilobite model.

To view this range of prehistoric animal figures: CollectA Prehistoric Life Models.

A Study of Redlichia Fossils from the Emu Bay Shale

The Cambrian explosion represents the rapid emergence of complex marine ecosystems and a huge burst of evolutionary activity that led to the establishment of virtually all the Animalia phyla recognised today. Whilst many palaeontologists do not like the phrase “explosion” as it implies a sudden event, opting instead to use the term “Cambrian radiation” to describe the emergence in the fossil record of abundant preserved shells and exoskeletons, the reasons for this change in the Earth’s ecosystems remains controversial.

It is thought that one of the main drivers of this evolutionary event was the development of predator/prey interactions. The proliferation of biomineralised exoskeletons and shells was a response to the evolution of the first predators capable of breaking through these defences.

Writing in the academic journal Palaeogeography, Paleoclimatology, Palaeoecology, researchers from the University of New England, (Armidale, New South Wales), Uppsala University (Sweden), the University of Adelaide (South Australia), the South Australian Museum and Cambridge University conducted an analysis of 38 injured specimens representing two large trilobite species from the 515-million-year-old Emu Bay Shale deposits (Redlichia takooensis and Redlichia rex).

Redlichia rex injuries.

Healed but scarred injuries on a fossil specimen of Redlichia rex. The red squares indicate areas of damage possibly caused by an attack by another Redlichia. Picture credit: Bicknell et al (Palaeogeography, Paleoclimatology, Palaeoecology).

Picture credit: Bicknell et al (Palaeogeography, Paleoclimatology, Palaeoecology)

Studying a Giant Trilobite

The team concluded that that the injuries they documented were caused by a durophagous (consuming hard parts of the skeleton) predator.

Specimens of both species show that most injuries are located on the posterior portion of the thorax, indicating that predators most likely attacked from behind or that intended prey presented the posterior portion of their trunk to the attacker when threatened or attempting to flee. Previous studies had indicated that Cambrian trilobites exhibit most injuries to their right side. This study refutes this, arguing there is no evidence for a preference for attacking either the right or left side of intended prey.

The injured specimens typically represent some of the largest individuals known for the Redlichia taxa. This suggests that bigger trilobites were more successful in fighting off an attack and recovering from their injuries. Smaller individuals were probably completely consumed and therefore the likelihood of finding evidence of an attack on a smaller fossil specimen was greatly reduced.

Redlichia rex trilobite fossil.

A near complete specimen of the large Cambrian trilobite Redlichia rex. Picture credit: University of Adelaide.

Picture credit: University of Adelaide

Redlichia rex

To read Everything Dinosaur’s blog post about the discovery of Redlichia rex: “King of the Trilobites” Discovered in South Australia.

The research team concludes that the scarred Emu Bay Shale trilobites represent the oldest record of cannibalism known to science.

The scientific paper: “Cambrian carnage: Trilobite predator-prey interactions in the Emu Bay Shale of South Australia” by Russell D. C. Bicknell, James D. Holmes, Stephen Pates, Diego C. García-Bellido and John R. Paterson published in Palaeogeography, Paleoclimatology, Palaeoecology.

Visit the Everything Dinosaur website: Everything Dinosaur.

Go to Top