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Biology subjects

Gumm, J.

Publications and source records attributed to Gumm, J..

2 recordsLinked to original sources

Long-term small effective population size, inbreeding, and a recessive lethal haplotype drive premature death in the endangered Devils Hole pupfish (Cyprinodon diabolis)

As anthropogenic habitat fragmentation and population decline accelerate globally, growing numbers of species face compounding demographic and genetic threats to long-term survival. Many populations are already forced to persist at chronically small sizes, yet the genomic and fitness consequences of this fate remain poorly understood. Here we leverage the demographic history of the Devils Hole pupfish to investigate how long-term small population size and recent bottlenecks have shaped genetic diversity, genetic load, inbreeding, and fitness through comparative population genomics, historical sequencing, and sampling embryos that died prematurely during development. We find that genetic diversity in Devils Hole pupfish is among the lowest recorded in the wild and that fixed load is high, consistent with thousands of generations of isolation at small population size. Even in the face of this low diversity and high fixed load, we show that inbreeding is still strongly associated with premature embryonic death, which affects up to 25% of offspring in the captive refuge and can be identified in advance based on a characteristic elongated heart tube and reduced heart rate. We discovered a recessive lethal haplotype segregating at [~]20% frequency that accounts for 50% of embryonic deaths and contains mutations in MIB1 and MMP16, genes associated with cardiomyopathy and atrial fibrillation. Our findings link genotype, phenotype, and fitness in an iconic endangered species to provide a rare comprehensive view into the evolutionary dynamics and consequences of long-term small effective population size, demonstrating that endangered species remain vulnerable to inbreeding depression despite extremely low genetic diversity.

evolutionary biology↗

Estimate of the mutation rate in the endangered Devils Hole pupfish provides support for the drift-barrier hypothesis at an outlying extreme

Mutation rates vary by orders of magnitude across eukaryotes. The drift-barrier hypothesis proposes that drift overwhelms selection for lower mutation rates in small populations, leading to higher mutation rates over time due to the gradual accumulation of mutator alleles. Here, we test this hypothesis in one of the smallest long-term isolated populations in the world, the endangered Devils Hole pupfish (Cyprinodon diabolis). We estimated germline mutation rates in adults and embryos that died prematurely using autozygous segments due to recent inbreeding events. Our estimate of 8.09 x 10-9 per base pair per generation was higher than the mean rate for actinopterygian fishes of 5.97 x 10-9 (95% CI: 4.39 x 10-9 - 7.55 x 10-9) but was lower than predicted for such a low effective population size based on a recent meta-analysis of vertebrate mutation rates and similar to species with much larger effective population sizes, contradicting the drift barrier hypothesis. We also found that embryos which died during development had a higher mutation rate than mature adults, potentially reflecting a segregating lethal mutator allele. We analyzed the mutational spectra of germline mutations and found that spectra between embryonic lethal and mature adults were similar and comparable to other fishes, despite environmental differences in temperature, oxygen saturation, and UV exposure. Mutation rates in this endangered species provide new insights into the mechanisms driving mutation rate variation across vertebrates at one extreme of low effective population size in nature.

evolutionary biology↗