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Ubeda, F.

Publications and source records attributed to Ubeda, F..

2 recordsLinked to original sources

Mutation and the Recombination Hotspot Paradox

Recombination often concentrates in small regions called recombination hotspots where recombination is much higher than the genomes average. In many vertebrates, including humans, gene PRDM9 specifies which DNA motifs will be the target for breaks that initiate recombination ultimately determining the location of recombination hotspots. Because the sequence that breaks (allowing recombination) is converted into the sequence that does not break (preventing recombination), the latter sequence is over-transmitted to future generations and recombination hotspots are self-destructive. Given their self-destructive nature, recombination hotspots should eventually become extinct in genomes they are observed. While empirical evidence shows that individual hotspots do become inactive over time (die), hotspots are abundant in many vertebrates: a contradiction called the Recombination Hotspot Paradox. What saves recombination hotspots from their foretold extinction? Here we formulate a co-evolutionary model of the interaction among sequence specific gene conversion, fertility selection and recurrent mutation. We find that when fertility selection is weaker than gene conversion, fertility selection cannot stop individual hotspots from dying but can save them from extinction by driving their re-activation (resuscitation). It can also save them from extinction by driving the birth of new hotspots in target sites with small allelic variation. The amount of allelic variation that can result in the birth of a hotspot depends on the strength of fertility selection and the mutation rate. In our model mutations balance death and resuscitation of hotspots maintaining their numbers over time. Interestingly we find that mutations are responsible for the oscillation of individual hotspots being asynchronous across the genome such that the average recombination across the genome remains constant. Our model thus contributes to better understanding how new hotspots may be formed thus explaining the Recombination Hotspots Paradox. From a more applied perspective our work provides testable predictions regarding the relation between mutation and fertility with life expectancy of hotspots.

evolutionary biology↗

Epigenetic inheritance and the evolution of infectious diseases

Genes with identical DNA sequences may show differential expression because of epigenetic marks. These marks in pathogens are key to their virulence and are being evaluated as targets for medical treatment. Where epigenetic marks were created in response to past conditions (epigenetically inherited), they represent a form of memory, the impact of which has not been considered in the evolution of infectious diseases. We fill this gap by exploring the evolution of virulence in pathogens that inherit epigenetic information on the sex of their previous host. We show that memories of past hosts can also provide clues about the sex of present and future hosts when women and men differ in their immunity to infection and/or their interactions with the sexes. These biological and social differences between the sexes are pervasive in humans. We show that natural selection can favour the evolution of greater virulence in infections originating from one sex. Furthermore, natural selection can favour the evolution of greater virulence in infections across sexes (or within sexes). Our results explain certain patterns of virulence in diseases like measles, chickenpox and polio that have puzzled medical researchers for decades. In particular, they address why girls infected by boys (or boys infected by girls) are more likely to die from the infection than girls infected by girls (or boys infected by boys). We propose epigenetic therapies to treat infections by tampering with the memories of infecting pathogens. Counterintuitively, we predict that successful therapies should target pathogens genes that inhibit virulence, rather than those enhancing virulence. Our findings imply that pathogens can carry memories of past environments other than sex (e.g. those related to socioeconomic status) that may condition their virulence and could signify an important new direction in personalised medicine.

evolutionary biology↗