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Schenkel, M. A.

Publications and source records attributed to Schenkel, M. A..

3 recordsLinked to original sources

Quantifying internal conflicts and their threats to organismal form and fitness

Evolutionary biologists often treat organisms as both fitness-maximizing agents and as the primary level at which adaptation manifests. Yet, genes and cells may also seek to optimize their fitness by distorting the Mendelian rules of transmission or by influencing organismal traits for their own benefit. Organismal form and fitness are therefore threatened from within by selfish genes and cells. However, to what extent such internal conflicts actually harm individual organisms and threaten our concept of the organism as the sole bearer of adaptation remains unclear. We introduce a mathematical framework to capture the threat posed by internal conflicts and develop two metrics to measure their various forms of harm. We name these metrics fitness unity and trait unity, and use them to refer to the threats posed by internal conflicts to an organisms role as the optimizing agent and the strategy wielded to achieve that optimization, respectively. We apply our framework to two examples of internal conflicts, genomic imprinting and sex ratio distortion, to illustrate how such harms from internal conflict may be quantified. We conclude by discussing the conditions under which internal conflict becomes sufficiently disruptive to organisms that it no longer makes sense to think of them as unified fitness-maximizing agents, but instead as adaptive compromises of multiple competing sub-agents.

evolutionary biology↗

Transitions in sex determination mechanisms through parental antagonism

Parental antagonism (PA) occurs when the fitness effects of a gene depend on the parent from which it is inherited. Such genes may become enriched on sex chromosomes, due to their biased inheritance patterns. Although various sex determination (SD) genes exhibit parent-of-origin effects themselves, and between-parent conflict over offspring sex may affect SD, PA itself has not been considered as a driver of SD transitions. Here, I present a model to investigate the scope for transitions in SD mechanisms through PA. My model assumes an ancestral SD locus linked to a PA gene, as well as an autosomal PA gene in whose vicinity a novel SD gene arises. Transitions between functionally-homologous genes are found to depend on the fitness effects of both PA genes and their linkage to nearby SD genes. Transitions between male and female heterogamety by the invasion of a dominant SD gene are however nearly unconstrained. This also allows for back-and-forth dynamics where the ancestral SD and novel SD genes constantly evolve to be dominant over each other. These results further underline the malleability of SD mechanisms, and the need to consider parent-of-origin effects in driving transitions in SD, through proximate and/or ultimate means.

evolutionary biology↗

Divergent evolution of genetic sex determination mechanisms along environmental gradients

Sex determination (SD) is a crucial developmental process, but its molecular underpinnings are very diverse, both between and within species. SD mechanisms have traditionally been categorized as either genetic (GSD) or environmental (ESD), depending on the type of cue that triggers sexual differentiation. However, mixed systems, with both genetic and environmental components, are more prevalent than previously thought. Here, we show theoretically that environmental effects on expression levels of genes within SD regulatory mechanisms can easily trigger within-species evolutionary divergence of SD mechanisms. This may lead to the stable coexistence of multiple SD mechanisms and to spatial variation in the occurrence of different SD mechanisms along environmental gradients. We applied the model to the SD system of the housefly, a global species with world-wide latitudinal clines in the frequencies of different SD systems, and found that it correctly predicted these clines if specific genes in the housefly SD system were assumed to have temperature-dependent expression levels. We conclude that environmental sensitivity of gene regulatory networks may play an important role in diversification of SD mechanisms.

evolutionary biology↗