Evolutionary Solutions to the Hairy Back Problem

Some creationists like to complain about macroevolution. They claim that this microevolution stuff is all well and good, but when has it ever produced any kind of meaningful change at the whole organism level?

This week’s paper is an excellent rebuttal. Alistair McGregor of Princeton University has a paper in Nature that details how multiple minor changes to the regulation of the shavenbaby gene add up to a novel morphology in one species of fruit fly.

There’s lots of fun to be had with fruit fly (Drosophila) gene names. The names usually describe the phenotype of flies with a mutated copy of the gene in question, so it’s no surprise that the usual function of shavenbaby (svb) is in the development of larval trichomes, bristly hairlike structures that protrude from certain cells. The larvae of one Drosophila species (D. sechellia) have the same pattern of ventral trichomes as other related species, but a different pattern of trichomes on their backs. McGregor and colleagues from Princeton and Toulouse, France, set out to determine how this novel trichome pattern evolved.

The first stage of the study was to determine how svb is regulated in D. melanogaster, the standard model of fly genetics. Different sections of the DNA surrounding the svb gene were hooked up to a reporter gene. The reporter was expressed in embryos in visible patterns, as directed by the upstream D. melanogaster DNA. The researchers also stained embryos for the expression of a downstream target of the svb transcription factor. Target genes are only expressed in cells that first express a functional copy of the svb protein, so this second stain ensured that the observed patterns of reporter gene expression matched those of the natural svb gene. Three distinct regions of DNA, known as transcriptional enhancers, were found to control expression of svb in D. melanogaster, with each enhancer responsible for svb expression in different but overlapping cell types.

D. sechellia larvae lack expression of svb in one particular cell type, resulting in their restricted pattern of trichome formation compared to other related species. The researchers hypothesised that a mutation in one of the svb enhancers was to blame. They therefore repeated the first set of experiments using D. sechellia DNA to drive the expression of the reporter gene in D. melanogaster embryos.

Each of the three D. sechellia enhancers behaved slightly differently to the corresponding D. melanogaster sequence, driving expression of the reporter gene in different cell types and at different stages of development. The D. sechellia species has therefore evolved mutations in each of the three enhancers that drive expression of svb.

Interbreeding between D. sechellia and D. mauritiana produced offspring that resembled each parent, but also offspring with one of three different intermediate patterns of trichome formation, each one corresponding to inheritance of a different D. sechellia enhancer. Mutations to the DNA sequence of each svb enhancer (microevolutionary changes) therefore contribute to the novel morphology (macroevolutionary change) of D. sechellia embryos.

The authors state that the enhancer sequences of D. melanogaster and D. sechellia differ by 3-5%. However, they did not discuss whether any specific mutations to the enhancer sequences destroy or create known regulatory sequences that might explain the differential expression of svb in the two species. Hopefully their declared intention to undertake “fine-scale functional analyses of morphological differences between species” will include investigation of these potential evolutionary mechanisms.

The paper’s discussion section raises a very interesting possibility. The regulation of svb expression is controlled by multiple upstream transcription factors. However, svb is also a transcription factor in its own right that controls the expression of multiple downstream genes. Mutations to svb are therefore perfectly placed to affect the entire trichome development process without the need to alter expression of an upstream transcription factor, which could have other phenotypic effects on the developing embryo. Evolution of svb may therefore be the only feasible permitted route to novel trichome patterns. I think that more dissection of the upstream and downstream regulatory networks is needed before we can say for sure, but this intriguing hypothesis provides yet another example of the evolutionary importance of changes to the patterns of gene expression.

HT to Chris Harrison for prompting me to get on with writing this summary!

Posted in evolution, journal club, original research, science | 6 Comments

New Mendel’s Garden

A new issue of Mendel’s garden is up at ScienceRoll. Check out the videos as well as the articles – the Mendel Rap is, erm, not a classic, but the claymation genetics is really cute.

This summer saw my first experimental attempts at gardening. The peas were one of only two plants to actually work out. I’m so proud. Next year’s garden will be nothing but peas and courgettes (zucchini).

Posted in Carnivals, personal, science | 2 Comments

Bits and Bobs…

…a suitably lazy Friday post.

1) ERV and Colbert take down Michael Behe.

Our chief weapon is reason, reason and mockery.
Our two chief weapons are reason, mockery, and empirical evidence.
Amongst our weaponry are such things as…

2) Another reason why orangutans are the world’s coolest animal.

I have very mixed feelings about zoos, especially the ones that keep great apes. But I just love to see these fantastic animals up close. I’ll have to make sure I get to their natural habitat before they’re all gone.

3) A long weekend! The first one I haven’t worked since Thanksgiving! (That’s October in Canada).

Time to go to the pub.

Update: here’s the original Orangutan paper in Current Biology.

Posted in apes, creationism, evolution, nature, personal, Primate Party, silliness, Vancouver | 3 Comments

New Gene Genie, and a New Logo

This post is a little delayed, but the new Gene Genie carnival is up at My Biotech Life. The blog’s author, Ricardo Vidal, has also come up with the nifty new carnival logo that now graces my sidebar. If anyone knows how to link images from within the Template page of Blogger, please let me know!

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How to cushion a back-handed slap

I’m currently sacrificing some of my usual posting time in order to accommodate an insanely busy schedule, so today’s paper is just a short medical case-study. It’s no less interesting for that though – in fact I’ve been meaning to post about this paper since a friend (hi KJ!) brought it to my attention a couple of months ago.

Dr Timothy Flynn from the University of North Carolina reports on an ex-soldier who presented with complications from an old shrapnel injury to the back of the hand. I’m not really familiar with the medical terminology, but I gather that the soldier’s skin graft (from his lower abdomen) was transferred to his hand with some of the underlying adipose (fatty) tissue still attached, and that most of the adipose base was later removed when the skin started to heal.

Adipose cells from different parts of the body have distinct characteristics, and may respond differently to environmental cues such as diet. In this ex-soldier’s case, some of the abdominal adipose tissue transferred to his hand wound obviously survived the grafting procedure. As he got older and gained weight around the abdomen, the adipose tissue in his hand responded in the same way as its original site.

You’ve guessed it – his hand has a beer belly.

There’s nothing in the paper about what happened to the patient, but Dr Flynn mentions that previous animal model work in this field has enabled the development of new cosmetic surgery procedures. Hopefully the discovery of this accidental human test subject will have similar medical benefits.

Posted in case-study, freakishness, journal club, medicine | 2 Comments

HERVs and Multiple Sclerosis, part 2

Well, after a short period of distraction, I have just finished reading the new paper from Christopher Power’s lab at the University of Alberta. This study follows on from an earlier paper that suggested a causal link between the expression of Syncytin-1, a gene derived from a human endogenous retrovirus (HERV), and multiple sclerosis (MS). The new paper sought to identify the mechanisms by which Syncytin-1 mediates central nervous system damage.

I found it extremely interesting to revisit a subject that I’d read about in detail a few years ago, but ignored ever since. I’ve clearly managed to neglect a lot of new research; Antony et al. cited a whopping 87 papers, and incorporated new advances in the fields of infectious virology, neurology, biochemistry and immunology into their research.

Much of the work described in the paper focused on the effects of Syncytin-1 on the expression of other cellular proteins; candidate proteins were chosen on the basis of known or predicted involvement in the pathophysiology of MS and other relevant disorders. The Power lab and their Canadian, Japanese and French collaborators approached the problem from various angles. RNA transcript and protein levels were compared in human brain tissue, cultured cells, and transgenic mice that express human Syncytin-1 in specific areas of the brain. After establishing some initial correlations between MS and altered protein expression, the team went on to develop tools to differentiate cause and effect. They were able to manipulate the level of Syncytin-1 protein in cultured cells, either by forced over-expression or by targeted degradation of the corresponding RNA transcript, and show that certain other cellular proteins were specifically misregulated as a result. In this way, the mechanisms of neural damage by Syncytin-1 gradually emerged. The initial event appears to be generation of an inflammatory response, which in turn induces altered expression of proteins involved in cell stress. Ultimately, and as a direct result of Syncytin-1 expression, the myelin coating that protects the nerve fibres becomes damaged – a hallmark of MS.

I’ve compressed the results of a staggering amount of work into the single paragraph above. This is one of the most comprehensive studies I have ever read – every single finding was confirmed using at least two different methods, sometimes more. Some parts of this paper could easily have stood alone as a full publication. I’ve seen many a paper based entirely on comparative gene expression analysis in normal versus diseased tissue, or on development of a transgenic mouse model, tools that were both used here as only two parts of a much bigger puzzle. I am hugely impressed. I must admit that when Antony’s first paper came out I was somewhat sceptical as I started to read it, having read many other studies showing correlations between HERV expression and diseases such as MS, cancer and schizophrenia. I was always inclined to think that such correlations were more likely to be the result of general transcriptional chaos in some disease states than of pathological HERV sequences. But, in this case at least, it appears that I was wrong; the combined results of these two papers present a very convincing case for the role of Syncytin-1 in the development of MS.

Now that the case has been made so clearly, the field can progress and address some new questions. How does Syncytin-1 expression affect the immune cells that play such an important role in MS? Why does Syncytin-1, a protein usually confined to the placenta, sometimes appear in central nervous system cells and trigger MS? A quick PubMed search brought up some interesting hints. Syncytin-1 expression can be upregulated by viral infection, a condition which is suspected to trigger some cases of MS, and by some signalling molecules associated with MS. In addition, the placental expression of human and rhesus monkey Syncytin-1 changes during pregnancy, suggesting a role for female hormones such as progesterone. As I alluded to in an earlier post, this may explain some aspects of gender-specific MS epidemiology. I hope someone somewhere is working on this problem – not only does it have important consequences for the understanding of this devastating disease, but I also want to know if I managed to be right this time.

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Canada has one of the highest rates of MS in the world. For more information, including how to make a donation, see the MS Society of Canada’s website.

Posted in journal club, medicine, original research, science, virology | 8 Comments

…and I’m back.

Did I miss anything important?

This is awesome by the way. I think I like #10 the best. #7 is just disturbing. I would probably choose either a luxury yacht or a piece of really good cheese.

I will write about something scientific as soon as I catch up with my grown-up reading!

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Message to Muggles

Can’t blog. Reading Harry Potter. Back soon.

Posted in embarrassing fan girl, personal | 2 Comments

HERVs and Multiple Sclerosis, part 1

I have a new paper sitting on my desk that I plan to summarise in the near future. The study investigates the relationship between syncytin, a human endogenous retroviral protein, and MS. I actually wrote a review of an earlier paper by the same group for my former lab’s newsletter in December 2004. Leaving myself open to ridicule and correction, I have copied my original report word for word below without reading the new paper first. I wonder if the new study addresses any of the points I made in the final paragraph?

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Human endogenous retrovirus (HERV) transcripts are usually repressed by DNA methylation, but have been detected in patients with Multiple Sclerosis (MS) and other autoimmune diseases. The nature of this relationship remains unclear. Does re-expression of viral proteins trigger an autoimmune response? Can antibodies produced in response to another virus cross-react with HERV antigens? (Viral infections may be a trigger of MS). Or is expression of HERVs merely a result of reprogrammed DNA methylation, with no causal link to the disease? A recent Nature Neuroscience paper has finally provided some evidence for a causal relationship.

The paper focuses on syncytin, a HERV envelope protein. Syncytin was specifically up-regulated in the brain, demyelinating lesions and neuroinflammatory cells of MS patients. Expression of syncytin in cultured cells reproduced some aspects of the MS phenotype, including oligodendrocyte death and induction of proinflammatory molecules. Reproduction of these effects in cultured cells suggests that syncytin protein function, rather than an autoimmune response, may be involved in at least the initial neuroinflammatory aspects of MS.

The region of the mouse brain corresponding to that most affected in human MS was in infected with a syncytin expression vector. Infection reproduced some of the effects of human MS, including myelin damage, decreased numbers of oligodendrocytes, and induction of neuroinflammatory molecules. Infected mice performed poorly in behavioural tests, indicating muscle weakness and unsteady gait. Interestingly, treatment with antioxidants significantly reduced the molecular and behavioural effects of syncytin in infected mice and cultured cells. There is some anecdotal evidence that antioxidants can help control the symptoms of MS, but no large-scale clinical trials have been completed.

So there you have it – finally, some evidence to support the theory that HERVs are involved in MS. Personally, I’m most interested in the association that the authors didn’t make. Syncytin is usually expressed mainly in the placenta, which may explain some aspects of MS epidemiology. Women are approximately twice as likely as men to develop MS, and the frequency of MS relapses can change during and after pregnancy. More work is needed to determine the mechanisms of syncytin activation in the placenta and in MS, and specifically the role of female hormones in this process. No doubt the paper by Antony et al will stimulate this, and other, avenues of investigation and debate.

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Canada has one of the highest rates of MS in the world. For more information, including how to make a donation, see the MS Society of Canada’s website.

Posted in journal club, medicine, original research, science, virology | 3 Comments

Tangled Bank

The new Tangled Bank is up at The Voltage Gate. As ever, I’m hugely impressed by the effort that hosts put into these carnivals. This time you can learn about Ancient Greek astronomy and medicine alongside your modern genetics.

I did not exactly have a classical education, but I do have an Ancient Greek anecdote. A friend once went on a family holiday to Greece, and her Dad spent the whole trip trying to talk to the locals in Ancient Greek. He eventually located the airport by asking for “the place from where the large silver birds fly”.

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