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The Red Queen theory of recombination hotspots

Date Issued
January 1, 2011
Author(s)
Ubeda de Torres, Francisco
Wilkins, J.F.
Link to full text
http://www.tiem.utk.edu/~fubeda/papers/U&W11JEB.pdf
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/17023
Abstract

Recombination hotspots are small chromosomal regions, where meiotic crossover events happen with high frequency. Recombination is initiated by a double-strand break (DSB) that requires the intervention of the molecular repair mechanism. The DSB repair mechanism may result in the exchange of homologous chromosomes (crossover) and the conversion of the allelic sequence that breaks into the one that does not break (biased gene conversion). Biased gene conversion results in a transmission advantage for the allele that does not break, thus preventing recombination and rendering recombination hotspots transient. How is it possible that recombination hotspots persist over evolutionary time (maintaining the average chromosomal crossover rate) when they are self-destructive? This fundamental question is known as the recombination hotspot paradox and has attracted much attention in recent years. Yet, that attention has not translated into a fully satisfactory answer. No existing model adequately explains all aspects of the recombination hotspot paradox. Here, we formulate an intragenomic conflict model resulting in Red Queen dynamics that fully accounts for all empirical observations regarding the molecular mechanisms of recombination hotspots, the nonrandom targeting of the recombination machinery to hotspots and the evolutionary dynamics of hotspot turnover.

Subjects

biased transmission

cold alleles

double-strand break

gene conversion

hot alleles

model

recombination hotspot...

repair mechanism

Embargo Date
February 15, 2011
File(s)
Thumbnail Image
Name

J_of_Evolutionary_Biology___2010___%C3%9ABEDA___The_Red_Queen_theory_of_recombination_hotspots.pdf

Size

768.88 KB

Format

Adobe PDF

Checksum (MD5)

9dd85d57205117220809d125611b0dfb


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