Showing posts with label Feline. Show all posts
Showing posts with label Feline. Show all posts

Dec 9, 2022

Smilodon's sabre teeth

A team of researchers led by Narimane Chatar, a doctoral student at the EDDyLab of the University of Liège (Belgium), has tested the biting efficiency of Smilodon, an extinct species of carnivore close to the extant felines. Using high-precision 3D scans and simulation methods, the team has just revealed how these animals managed to bite despite the impressive length of their teeth.

Ancient carnivorous mammals developed a wide range of skull and tooth shapes throughout their evolution. However, few of these evolutions have yet matched those of the iconic sabre-toothed felid Smilodon. Other groups of mammals, such as the now extinct nimravids, have also evolved a similar morphology, with species having sabre teeth but also much shorter canines, similar to those of the lions, tigers, caracals, domestic cats, etc. that we know today. This phenomenon of similar morphologies appearing in different groups of organisms is known as convergent evolution; felids and nimravids being an amazing example of convergence. As there are no modern equivalents of animals with such sabre-shaped teeth, the hunting method of Smilodon and similar species has remained obscure and hotly debated. It was first suggested that all sabre-toothed species hunted in the same way, regardless of the length of their canines, a hypothesis that is now controversial. So the question remained ... how did this variety of 'sabre-toothed cat' hunt?

The enormous canines of the extinct sabre-toothed cat Smilodon imply that this animal had to open its jaw extremely wide, 110° according to some authors, in order to use them effectively," explains Prof. Valentin Fischer, director of the EDDyLab at ULiège. However, the mechanical feasibility and efficiency of Smilodon and its relatives to bite at such a large angle is unknown, leaving a gap in our understanding of this very fundamental question about sabre-toothed predators." Using high-precision 3D scanners and analytical methods derived from engineering, an international team of Belgian and North American scientists has just revealed how these animals probably used their impressive weapons.

Narimane Chatar, a PhD student at the EDDyLab of the University of Liege and lead author of the study, collected a large amount of three-dimensional data. She first scanned and modelled the skulls, mandibles and muscles of numerous extinct and extant species of felids and nimravids. "Each species was analysed in several scenarios: a bite was simulated on each tooth at three different biting angles: 30°, as commonly seen in extant felids, but also larger angles (60° and 90°). In total, we carried out 1,074 bite simulations to cover all the possibilities," explains Narimane Chatar. To do this, the young researcher used the finite element method. This is an exciting application of the finite element approach, which allows palaeontologists to modify and computationally simulate different bite angles and to subject skull models to virtual stresses without damaging the precious fossil specimens," says Prof. Jack Tseng, Professor and Curator of Palaeontology at the University of California, Berkeley, and co-author of the study. Our comprehensive analyses provide the most detailed insight to date into the diversity and nuances of sabre tooth bite mechanics."

One of the results obtained by the team is the understanding of the distribution of stress (pressure) on the mandible during biting. This stress shows a continuum across the animals analysed, with the highest values measured in species with the shortest upper canines and the lowest stress values measured in the most extreme sabre-toothed species. The researchers also noted that stress decreased with increasing bite angle, but only in sabre-toothed species. However, the way in which these animals transmitted force to the bite point and the deformation of the mandible resulting from the bite were remarkably similar across the dataset, indicating comparable effectiveness regardless of canine length.

Read more at Science Daily

Dec 6, 2022

Feline genetics help pinpoint first-ever domestication of cats

Nearly 10,000 years ago, humans settling in the Fertile Crescent, the areas of the Middle East surrounding the Tigris and Euphrates rivers, made the first switch from hunter-gatherers to farmers. They developed close bonds with the rodent-eating cats that conveniently served as ancient pest-control in society's first civilizations.

A new study at the University of Missouri found this lifestyle transition for humans was the catalyst that sparked the world's first domestication of cats, and as humans began to travel the world, they brought their new feline friends along with them.

Leslie A. Lyons, a feline geneticist and Gilbreath-McLorn endowed professor of comparative medicine in the MU College of Veterinary Medicine, collected and analyzed DNA from cats in and around the Fertile Crescent area, as well as throughout Europe, Asia and Africa, comparing nearly 200 different genetic markers.

"One of the DNA main markers we studied were microsatellites, which mutate very quickly and give us clues about recent cat populations and breed developments over the past few hundred years," Lyons said. "Another key DNA marker we examined were single nucleotide polymorphisms, which are single-based changes all throughout the genome that give us clues about their ancient history several thousands of years ago. By studying and comparing both markers, we can start to piece together the evolutionary story of cats."

Lyons added that while horses and cattle have seen various domestication events caused by humans in different parts of the world at various times, her analysis of feline genetics in the study strongly supports the theory that cats were likely first domesticated only in the Fertile Crescent before migrating with humans all over the world. After feline genes are passed down to kittens throughout generations, the genetic makeup of cats in western Europe, for example, is now far different from cats in southeast Asia, a process known as 'isolation by distance.'

"We can actually refer to cats as semi-domesticated, because if we turned them loose into the wild, they would likely still hunt vermin and be able to survive and mate on their own due to their natural behaviors," Lyons said. "Unlike dogs and other domesticated animals, we haven't really changed the behaviors of cats that much during the domestication process, so cats once again prove to be a special animal."

Lyons, who has researched feline genetics for more than 30 years, said studies like this also support her broader research goal of using cats as a biomedical model to study genetic diseases that impact both cats and people, such as polycystic kidney disease, blindness and dwarfism.

"Comparative genetics and precision medicine play key roles in the 'One Health' concept, which means anything we can do to study the causes of genetic diseases in cats or how to treat their ailments can be useful for one day treating humans with the same diseases," Lyons said. "I am building genetic tools, genetic resources that ultimately help improve cat health. When building these tools, it is important to get a representative sample and understand the genetic diversity of cats worldwide so that our genetic toolbox can be useful to help cats all over the globe, not just in one specific region."

Throughout her career, Lyons has worked with cat breeders and research collaborators to develop comprehensive feline DNA databases that the scientific community can benefit from, including cat genome sequencing from felines all around the world. In a 2021 study, Lyons and colleagues found that the cat's genomic structure is more similar to humans than nearly any other non-primate mammal.

"Our efforts have helped stop the migration and passing-down of inherited genetic diseases around the world, and one example is polycystic kidney disease, as 38% of Persian cats had this disease when we first launched our genetic test for it back in 2004," Lyons said. "Now that percentage has gone down significantly thanks to our efforts, and our overall goal is to eradicate genetic diseases from cats down the road."

Currently, the only viable treatment for polycystic kidney disease has unhealthy side effects, including liver failure. Lyons is currently working with researchers at the University of California at Santa Barbara to develop a diet-based treatment trial for those suffering from the disease.

"If those trials are successful, we might be able to have humans try it as a more natural, healthier alternative to taking a drug that may cause liver failure or other health issues," Lyons said. "Our efforts will continue to help, and it feels good to be a part of it."

Read more at Science Daily