bioRxiv · 10.64898/2026.04.16.719065
Evolution of the highest fidelity DNA replication systems
Abstract
DNA mutation on average is deleterious, and evolution generally acts to reduce mutation rates to the limit of natural selection. The limit of natural selection is set by multiple factors, of which effective population size is only one. We consider lethal mutagenesis as an upper bound to mutation rates for any organism, an argument that is congruent with a biophysical context, wherein random mutations are a form of entropy. In this analysis, coding genome size, body mass, generation time, and temperature potentially explain more than 90% of the variation in mutation rate per generation across the Tree of Life. The organisms with larger genomes, longer lifespans and relatively larger body sizes, known and unknown, represent the lineages which have likely evolved novel mechanisms to lower mutation rates, a desirable trait for reducing cancer incidence. Though these variables are largely shared by Petos Paradox, this selective pressure responsible for the evolution of lower mutation rates occurs through germline mutation rate evolution rather than the soma. SignificanceDNA replication varies and is influenced by natural selection. Mutations are usually harmful and contribute to human diseases like cancer, Understanding the evolutionary factors behind DNA replication fidelity may help identify and develop novel strategies to reduce human mutation rates.
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Baehr, S., Call, C.. 2026-04-17. Evolution of the highest fidelity DNA replication systems. https://doi.org/10.64898/2026.04.16.719065
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