Showing posts with label Y. Show all posts
Showing posts with label Y. Show all posts

Friday, 10 January 2014

Study Dispels Theories of Human Y Chromosome's Demise

Stripped-down chromosome retains key genes for fertility
Friday, 10 January 2014

A comparison of Y chromosomes in eight African and eight European men dispels the common notion that the Y's genes are mostly unimportant and that the chromosome is destined to dwindle and disappear.

"The Y chromosome has lost 90 percent of the genes it once shared with the X chromosome, and some scientists have speculated that the Y chromosome will disappear in less than 5 million years," said evolutionary biologist Melissa A. Wilson Sayres, a Miller Postdoctoral Fellow in the Department of Integrative Biology at the University of California, Berkeley, and lead author of the new analysis.

Some mammals have already lost their Y chromosome, though they still have males and females and reproduce normally. And last month, researchers reported shuffling some genes in mice to create Y-less males that could produce normal offspring, leading some commentators to wonder whether the chromosome is superfluous.

"Our study demonstrates that the genes that have been maintained, and those that migrated from the X to the Y, are important, and the human Y is going to stick around for a long while," she said.

Wilson Sayres and co-author Rasmus Nielsen, UC Berkeley professor of integrative biology, show in a paper published online today (Jan. 9, 2014) in PLOS Genetics that patterns of variation on the Y chromosome among the 16 men are consistent with natural selection acting to maintain the gene content there, much of which has been shown to play a role in male fertility. The Y chromosome's puny size – it contains 27 unique genes versus thousands on the other chromosomes – is a sign it is lean and stripped down to essentials.

"Melissa's results are quite stunning. They show that because there is so much natural selection working on the Y chromosome, there has to be a lot more function on the chromosome than people previously thought," Nielsen said.

Variations in Y chromosomes are used to track how human populations moved around the globe, and according to Nielsen, the new research will help improve estimates of humans' evolutionary history.

"Melissa has shown that this strong negative selection – natural selection to remove deleterious genes – tends to make us think the dates are older than they actually are, which gives quite different estimates of our ancestors' history," Nielsen said.

Y has degraded over past 200 million
Before about 200 million years ago, when mammals were relatively new on Earth, early versions of the sex chromosomes, X and Y, were just like other pairs of chromosomes: with each generation, they swapped a few genes so that offspring were a mix of their parents' genes. Fertilized eggs that got two proto-Xs became females and eggs with a proto-X and proto-Y became males.

But for some reason, Wilson Sayres said, the gene that triggers the cascade of events that result in male features became fixed on the Y chromosome and attracted other male-specific genes, such as those that control development of the testes, sperm and semen. Many of these turned out to be harmful for females, so the X and Y stopped swapping genes and the two chromosomes began to evolve separately.

"Now the X and Y do not swap DNA over most of their lengths, which means that the Y cannot efficiently fix mistakes, so it has degraded over time," she said.

"In XX females, the X still has a partner to swap with and fix mistakes, which is why we think the X hasn't also degraded."

Wilson Sayres was fascinated by the strange history of the sex chromosomes and in particular the lack of genetic variation worldwide on the Y chromosome compared to the variety seen in DNA on the non-sex chromosomes. This variation, though used to chart human history, was poorly characterized across the entire Y chromosome.

"Y chromosomes are more similar to each other than we expect," said Wilson Sayres.

"There has been some debate about whether this is because there are fewer males contributing to the next generation, or whether natural selection is acting to remove variation."

Did fewer males contribute genes to Y chromosome?
The UC Berkeley researchers demonstrated that if fewer males were the only cause of the low variability, it would mean that fewer than 1 in 4 males throughout history had passed on their Y chromosome each generation. Variations in other human chromosomes, including the X chromosome, make this an unlikely scenario. Instead, they showed that the low variation can be explained by intense natural selection, that is, a strong evolutionary pressure to weed out bad mutations that ended up trimming the chromosome down to its essentials.

"We show that a model of purifying selection acting on the Y chromosome to remove harmful mutations, in combination with a moderate reduction in the number of males that are passing on their Y chromosomes, can explain low Y diversity," Wilson Sayres said.

The researchers also found that all 27 genes on the Y chromosome – the 17 that humans retain after 200 million years, and 10 more recently acquired but poorly understood genes – are likely affected by natural selection. Most of the newer genes, called ampliconic genes, are present in multiple copies on the chromosome and loss of one or more copies has been linked to male infertility.

"These ampliconic regions that we haven't really understood until now are evidently very important and probably should be investigated and studied for fertility," she said.

Wilson Sayres was able to precisely measure Y variability because for the first time she compared variation on a person's Y chromosome with variation on that person's other 22 chromosomes (called autosomes), the X chromosome and the mitochondrial DNA. She used whole genome data from 16 men whose DNA had been sequenced by the Mountain View-based company Complete Genomics Inc., which has the most accurate sequences of the Y chromosome. The company was recently acquired by BGI, the Beijing Genome Institute.

Cross-population studies of variation in the Y chromosome are in their infancy, she said, noting that of the more than 36 mammalian genomes sequenced to date, complete Y chromosomes are only available for three. Most of the 1,000+ human genomes already sequenced do not have sufficiently accurate coverage of the Y to make this type of comparison among individuals, but advances in technology to better characterize DNA will facilitate future analyses of the Y chromosome, she said.

Contact: Robert Sanders

Reference:
Natural Selection Reduced Diversity on Human Y Chromosomes
Melissa A. Wilson Sayres, Kirk E. Lohmueller and Rasmus Nielsen
PLOS Genetics, January 09, 2014, DOI: 10.1371/journal.pgen.1004064

See also:
Male sex chromosome losing genes by rapid evolution
CellNEWS - Friday, 17 July 2009 
.........


For more on stem cells and cloning, go to CellNEWS at

Friday, 17 July 2009

Why is Y Disappearing?

Male sex chromosome losing genes by rapid evolution 
Friday, 17 July 2009 

Scientists have long suspected that the sex chromosome that only males carry is deteriorating and could disappear entirely within a few million years, but until now, no one has understood the evolutionary processes that control this chromosome's demise. 

Now, a pair of Penn State scientists has discovered that this sex chromosome, the Y chromosome, has evolved at a much more rapid pace than its partner chromosome, the X chromosome, which both males and females carry. This rapid evolution of the Y chromosome has led to a dramatic loss of genes on the Y chromosome at a rate that, if maintained, eventually could lead to the Y chromosome's complete disappearance. The research team, which includes Associate Professor of Biology Kateryna Makova, the team's leader, and National Science Foundation Graduate Research Fellow Melissa Wilson, will publish its results in the 17 July 2009 issue of the journal PLoS Genetics. 
A wallaby is a marsupial. Credit: Kateryna Makova, Penn State.

"There are three classes of mammals," said Makova, "egg-laying mammals, like the platypus and the echidna; marsupials, like the opossum and the wallaby; and all other mammals – called eutherians – which include humans, dogs, mice, and giraffes. The X and Y chromosomes of marsupials and eutherians evolved from a pair of non-sex chromosomes to become sex chromosomes." 

Humans have 23 pairs of chromosomes, which are the structures that hold our DNA, but just one pair of these chromosomes are sex chromosomes, while the others are referred to as non-sex chromosomes. 

"In eutherian mammals, the sex chromosomes contain an additional region of DNA whereas, in the egg-laying mammals and marsupials, this additional region of DNA is located on the non-sex chromosomes," said Makova. 

"At first, bits of DNA within this additional region were readily swapped between the X and Y chromosomes, but some time between 80 and 130 million years ago, the region became two completely separate entities that no longer swapped DNA. One of the regions became specifically associated with the X chromosome and the other became specifically associated with the Y chromosome."

An echidna is a monotreme. Credit: Kateryna Makova, Penn State.

By comparing the DNA of the X and Y chromosomes in eutherian mammals to the DNA of the non-sex chromosomes in the opossum and platypus, the team was able to go back in time to the point when the X and Y chromosomes were still swapping DNA, just like the non-sex chromosomes in the opossum and platypus. The scientists then were able to observe how the DNA of the X and Y chromosomes changed over time relative to the DNA of the non-sex chromosomes. 

"Our research revealed that the Y-specific DNA began to evolve rapidly at the time that the DNA region split into two entities, while the X-specific DNA maintained the same evolutionary rate as the non-sex chromosomes," said Makova.

A giraffe is a eutherian mammal. Credit: Kateryna Makova, Penn State.

Once the biologists determined that the Y chromosome has been evolving more rapidly and has been losing more genes as a result, they wanted to find out why the Y chromosome has not already disappeared entirely.

"Today, the human Y chromosome contains less than 200 genes, while the human X chromosome contains around 1,100 genes," said Wilson. 

"We know that a few of the genes on the Y chromosome are important, such as the ones involved in the formation of sperm, but we also know that most of the genes were not important for survival because they were lost, which led to the very different numbers of genes we observe between the once-identical X and Y. Although there is evidence that the Y chromosome is still degrading, some of the surviving genes on the Y chromosome may be essential, which can be inferred because these genes have been maintained for so long." 

The team then decided to test the hypothesis that some of the genes on the Y chromosome are being maintained because they are essential. The team's approach was to compare the expression and function of genes on the Y chromosome with analogous genes on the X chromosome. 

"If the genes' expressions and/or functions were different, then it would make sense that the genes on the Y chromosome would be maintained because they are doing something that the genes on the X chromosome can't do," said Makova. 

"This hypothesis turned out to be correct." 

 Although some of the genes on the Y chromosome have been maintained, most of them have died, and the team found evidence that some others are on track to disappear, as well. 

"Even though some of the genes appear to be important, we still think there is a chance that the Y chromosome eventually could disappear," said Makova. 

"If this happens, it won't be the end of males. Instead, a new pair of non-sex chromosomes likely will start on the path to becoming sex chromosomes." 

 In the future, the team plans to use its newly generated data to create a computer model that tracks the degeneration of the Y chromosome. The scientists hope to determine how long it will take for the Y chromosome to disappear. They also hope to identify the processes that are most important for degeneration of the Y chromosome. 

Reference: 
Evolution and Survival on Eutherian Sex Chromosomes 
Melissa A. Wilson, Kateryna D. Makova 
PLoS Genet 2009, 5(7): e1000568. doi:10.1371/journal.pgen.1000568 
......... 


ZenMaster


For more on stem cells and cloning, go to CellNEWS at 
http://cellnews-blog.blogspot.com/