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Hernandez, U.

Publications and source records attributed to Hernandez, U..

2 recordsLinked to original sources

Rare variants drive high variance in human ancestral fitness at mutation-selection-drift balance

It is an open question whether variation in the genetic load of unconditionally deleterious mutations contributes substantially to the variability in human disease. Here, we solve for mutation-selection-drift balance and predict variation in genetic load given a realistic human genome-wide deleterious mutation rate, U, and a distribution of fitness effects (DFE). Empirical estimates of U come from sequence constraint, which fails to count slightly deleterious mutations that nevertheless fix. We use the inferred DFE to correct for this and conclude that total human U>3.8. Two humans typically differ in ancestral fitness by 17-33% given uncertainty in U, or by 6-49% when we consider a broad range of alternative DFEs. Results are similar for other species with larger mean selection coefficients, such as other mammals. Most variation in load comes from rare variants with frequencies below 1%, with a substantial fraction coming from ultra-rare variants below 0.01%. This could help explain why some of the heritability observed in pedigree studies is missing from genome-wide association studies. Accounting for rare and ultra-rare variants, e.g., via variant-effect prediction of unique mutations from whole-genome sequencing rather than via polygenic risk scores, could help identify individuals at high risk of disease. SignificanceMany human mutations mildly disrupt molecular function, e.g., by destabilizing proteins. Having too many of these mutations would have reduced fitness in ancestral human environments and might contribute to disease today. Here, we mathematically derive how much variation in fitness such mutations cause, using estimated human parameter values. Rare variants with larger fitness effects contribute the most. Identifying individuals with high disease risk likely requires methods capable of scoring rare variants.

evolutionary biology↗

Extinction vortices are driven more by a shortage of beneficial mutations than by deleterious mutation accumulation

Habitat loss contributes to extinction risk in multiple ways. Genetically, small populations can face an "extinction vortex" -- a positive feedback loop between declining fitness and declining population size. Two distinct genetic mechanisms can drive a long-term extinction vortex: i) ineffective selection in small populations allows deleterious mutations to fix, driving "mutational meltdown", and ii) smaller populations generate fewer beneficial mutations essential for long-term adaptation, a mechanism we term "mutational drought". To determine their relative importance, we ask whether, for a population near its critical size for persistence, changes in population size have a larger effect on the beneficial vs. deleterious component of fitness flux. In stable environments, we find that mutational drought is nearly as significant as mutational meltdown. Drought is more important than meltdown when populations must also adapt to a changing environment, unless the beneficial mutation rate is extremely high. Linkage disequilibria from background selection under realistically high deleterious mutation rates modestly increase the importance of mutational drought. Long-term conservation efforts should consider adaptive potential, not just deleterious load.

evolutionary biology↗