As regular CFZ-watchers will know, for some time Corinna has been doing a column for Animals & Men and a regular segment on On The Track... particularly about out-of-place birds and rare vagrants. There seem to be more and more bird stories from all over the world hitting the news these days so, to make room for them all - and to give them all equal and worthy coverage - she has set up this new blog to cover all things feathery and Fortean.
Showing posts with label genes. Show all posts
Showing posts with label genes. Show all posts

Monday, 6 August 2018

Variations of a single gene drive diverse pigeon feather patterns



The gene has unexpected links to vision defects in humans

Date:  July 17, 2018
Source:  University of Utah

Summary:
Biologists have discovered that different versions of a single gene, called NDP (Norrie Disease Protein), have unexpected links between color patterns in pigeons, and vision defects in humans. These gene variations were likely bred into pigeons by humans from a different pigeon species and are now evolutionarily advantageous in wild populations of feral pigeons living in urban environments.

In a new study, a team led by University of Utah biologists has discovered that different versions of a single gene, called NDP (Norrie Disease Protein), have unexpected links between color patterns in pigeons, and vision defects in humans. These gene variations were likely bred into pigeons by humans from a different pigeon species and are now evolutionarily advantageous in wild populations of feral pigeons living in urban environments.

The U biologists analyzed the genomes of domestic rock pigeons (Columba livia) to determine the mutations that govern the four fundamental color patterns on pigeon wing feathers. They compared the default, ancestral "bar" pattern, named for the horizontal black stripes near the wing tips, against the slightly darker "checker" pattern, the darkest "T-check" pattern, and the lightest "barless" pattern.

They found that a DNA sequence near the NDP gene was very different between bar birds and both T-check and checker birds. In addition, some of the T-check and checker pigeons have more copies of a stretch of DNA near the gene, resulting in even more pigment in their feathers. In all cases, the gene sequence itself is unaltered. In contrast, the least pigmented barless birds had a mutation in the gene sequence itself, which could affect its function.


Wednesday, 11 April 2018

Genes in songbirds hold clues about human speech disorders



Date:  March 28, 2018
Source:  University of California - Los Angeles

Summary:
Insights into how songbirds learn to sing provide promising clues about human speech disorders and may lead to new ways of treating them, according to new research published in the journal eLife.

There are about 9,000 species of birds, about half of which are songbirds. When these birds sing, the activity of a master gene called FoxP2 declines in a key region of the brain involved in vocal control known as Area X. The decrease in FoxP2 produces changes in the activity of thousands of other genes.

FoxP2 also plays an important role in speech in humans. Stephanie White, a UCLA professor of integrative biology and physiology and senior author of the study, thinks FoxP2 and the changes it causes could be a part of the molecular basis for vocal learning. In both humans and birds, cells process this gene in a way that produces both a full-length protein and a shorter version of the protein. The long version regulates other genes; what the short version does remains a mystery. Humans with a mutation in the long version have problems with their speech.



Monday, 17 July 2017

Birds' migration genes are conditioned by geography


Date:  July 6, 2017
Source:  Lund University

Summary:  The genetic make-up of a willow warbler determines where it will migrate when winter comes. Studies of willow warblers in Sweden, Finland and the Baltic States show that “migration genes” differ -- depending on where the birds breed in the summer. The willow warblers that breed in southern Sweden migrate to West Africa, while those in northern Sweden, Finland and the Baltic States fly to southern or eastern Africa.


Sunday, 17 July 2016

It's all in the genes: New research reveals why some chickens are resistant to bird flu

Date:July 14, 2016
Source:University of Lincoln

The genes of some chickens make them almost completely resistant to a serious strain of bird flu, new research has revealed.

The findings, which are published in the journal Scientific Reports, show that genetics play a key part in whether the birds are susceptible or resistant to the potentially deadly virus. Until now, scientists around the world have paid little attention to the role the genetics of birds play in the transmission of flu, focusing instead on how the virus itself evolves and infects.

Led by Dr Colin Butter from the School of Life Sciences at the University of Lincoln, UK, this new research, which was carried out at The Pirbright Institute, could prove valuable in developing our understanding of the mechanisms of influenza transmission within and between birds. Dr Butter is one of the UK's leading authorities on avian flu with expertise in animal science, virology and immunology.

Influenza virus is the cause of influenza, or 'flu' -- the contagious respiratory viral disease common in many birds and mammals. The viruses circulating in wild birds and domesticated poultry are of particular interest to scientists because they may mutate into forms that are capable of infecting humans, and represent an emerging threat to human health as potential sources of the next flu pandemic.

This danger has led the World Health Organisation to highlight effective control measures, as well as an in-depth assessment of factors surrounding the infection of host animals, as part of their research priorities. Dr Butter's study takes an important step towards meeting these needs.

Tuesday, 26 April 2016

Beaks of Darwin’s finches evolve thanks to newly discovered gene


APRIL 23, 2016 BY MELISSA TAYLOR

Named after the father of evolution himself, Darwin’s finches played a pivotal role in helping Charles Darwin formulate and solidify his theory of evolution. An already fascinating species of enormous importance, the discovery of a rare gene just made these beautiful birds a good deal more interesting than they already are.

Scientists were able to discover a gene that plays a role in the shaping of the birds’ beaks. This gene, which is known as HMGA2, continues to work in evolving the beaks of Darwin’s finches. And while Darwin didn’t observe much change to his eponymous finches, biologists Peter and Rosemary Grant were able to, having worked over four decades in the birds’ habitat of the Galapagos Islands.

The story behind the discovery began about a decade ago, when the husband-and-wife biologists observed a drought on Daphne Major Island, which hosted two species of Darwin’s finch – the medium ground finch and the large ground finch. The smaller of the two bird species (the medium finches) didn’t attempt to compete with their larger equivalents due to the food shortage that came with this event. Still, the medium ground finch was able to outlive the large ground finch, with the average beak size for the former bird decreasing quitter markedly. And that’s where the HMGA2 gene came in.


Wednesday, 25 March 2015

'Most attractive' male birds don't have best genes

Date:
March 23, 2015

Source:
University College London

Summary:
'Attractive' male birds that mate with many females aren't passing on the best genes to their offspring, according to new research that found promiscuity in male birds leads to small, genetic faults in the species' genome. Although minor, these genetic flaws may limit how well future generations can adapt to changing environments.


Monday, 15 December 2014

'Big Bang' of bird evolution mapped: Genes reveal deep histories of bird origins, feathers, flight and song

Date:
December 11, 2014

Source:
Duke University

Summary:
The first findings of the Avian Phylogenomics Consortium are being reported nearly simultaneously in 29 papers -- eight papers in a Dec. 12 special issue of Science and 21 more in Genome Biology, GigaScience and other journals. The analyses suggest some remarkable new ideas about bird evolution, including insights into vocal learning and the brain, colored plumage, sex chromosomes and the birds' relationship to dinosaurs and crocodiles.


Friday, 12 December 2014

Genes tell story of birdsong and human speech

Date:
December 11, 2014

Source:
Duke University

Summary:
A massive international effort to sequence and compare the entire genomes of 48 species of birds, representing every major order of the bird family tree, reveals that vocal learning evolved twice or maybe three times among songbirds, parrots and hummingbirds. Even more striking, the set of genes employed in each of those song innovations is remarkably similar to the genes involved in human speaking ability.


Saturday, 21 June 2014

The genes tell crows to choose partners that look alike

20th June 2014

15 hours ago

Crows like to select mates that look alike. In a large-scale genomic study, published in Science today, a team of researchers led by Uppsala University found that this behaviour might be rooted in their genetic make-up, revealing a likely common evolutionary path that allows for separating populations into novel species.

What is the driving engine behind biodiversity? One and a half centuries years ago, Charles Darwin recognized that species are subject to evolutionary change. Now, we know that all aspects defining an organism are encoded in its genome. Yet, how new species emerge from slight genetic changes remains unanswered. Crows, for example, are all black or grey coated, and they exhibit a strong tendency to select partners that look alike.

The researchers identified an avian system - crows and ravens of the genus Corvus - that they used as an evolutionary model to decipher the genetic underpinnings of speciation. Central to this system is the independent recurrence of a pied colour-pattern in several species of the genus that stands in contrasts to the predominant all-black plumage in the clade.





Saturday, 14 June 2014

Modern Bird Genes Have Potential To Cause A Pandemic Similar To 1918 Spanish Flu

June 12, 2014

Lawrence LeBlond for redOrbit.com – Your Universe Online

Avian bird flu strains that exist today share very similar characteristics with the deadly 1918 Spanish Flu strain that killed nearly five percent of the world’s population. That flu virus pandemic was the worst outbreak ever recorded and new research has found that only a few amino acids separate viral proteins currently found in bird populations from those that existed during the 1918 virus. The new evidence suggests a similar deadly virus may emerge in the near future.

Publishing a paper in the journal Cell Host & Microbe, an international team of researchers searched public databases to identify eight genes from influenza viruses isolated from wild ducks that possess remarkable genetic similarities to the genes that made up the 1918 pandemic flu virus. The Spanish Flu infected some 500 million people around the world, killing an estimated 40 million of them.

Led by Yoshihiro Kawaoka, an international expert on influenza from the University of Wisconsin-Madison, the new work shows “there are gene pools in nature that have the potential to cause a severe pandemic in the future.”

“Because avian influenza viruses in nature require only a few changes to adapt to humans and cause a pandemic, it is important to understand the mechanisms involved in adaptation and identify the key mutations so we can be better prepared,” Kawaoka said in a statement. “Research findings like this help us assess the risk of outbreaks and could contribute to routine surveillance of influenza viruses.”

To assess the risk posed by a virus that could acquire all eight of the 1918 flu genes, Kawaoka and colleagues used reverse genetics methods to generate a virus that differed from the Spanish Flu virus by only three percent of the amino acids that make the virus proteins. They discovered the resulting virus was more pathogenic in mice and ferrets than a typical avian flu virus, but was not as pathogenic as the 1918 virus and did not transmit via respiratory droplets, the typical mode of flu transmission.


Saturday, 18 January 2014

Wild Sparrow Study Traces Social Behaviors in the Field to Specific Gene

Jan. 14, 2014 — A unique study of the white-throated sparrow has identified a biological pathway connecting variation in the birds' aggression and parenting behaviors in the wild to variation in their genome.

The Proceedings of the National Academy of Sciences (PNAS) is publishing the results of the experiments, conducted by the lab of neuroscientist Donna Maney in Emory's Department of Psychology.

The research, which comprised behavioral observations of the study subjects in the field and laboratory analyses of their gene expression in the brain, showed that variation in the expression of the estrogen receptor alpha (ER-alpha) gene strongly predicts the birds' behavior.