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Kustra, M. C.

Publications and source records attributed to Kustra, M. C..

3 recordsLinked to original sources

Parallel and non-parallel features of adaptive radiation in Yucatan pupfishes

Understanding the extent of parallelism across adaptive radiations remains a central problem in evolutionary biology. We used whole-genome resequencing of 123 individuals to compare the adaptive radiation of Cyprinodon pupfishes in Lake Chichancanab, Mexico, to an independent radiation of San Salvador Island (SSI) pupfishes in the Bahamas, and assess the repeatability of adaptive genetic architecture, sources of adaptive variation, and stages of selection. Despite rapid craniofacial divergence of trophic specialists within 8-15 kya, only two candidate genes (0.5%; 2/426) were shared between Caribbean radiations. Although adaptive introgression played a major role in SSI, we found minimal evidence of adaptive introgression in Chichancanab, likely due to the geographic isolation of this inland lake. Instead, de novo mutations provided a substantial source of adaptive variation (30.6%) for the endemic zooplanktivore, 15 times higher than the endemic scale-eater on SSI. However, in parallel with SSI, we found strong evidence that adaptive divergence occurred in stages, first on regulatory and standing genetic variation, then on de novo and nonsynonymous mutations. Consistent with adaptive variants near opsin and spermatogenesis genes, functional categories unique to Chichancanab, we found greater visual acuity and divergent sperm morphology in lab-reared zooplanktivores relative to generalists using laboratory assays. Consistent with extensive adaptive de novo mutations in WNT10A and rapid diversification of tooth size in the zooplanktivore, we found that experimental inhibition of the Wnt pathway in generalists resulted in narrower oral teeth. We conclude that de novo mutations, not introgression, can drive rapid adaptive radiations in isolated environments.

evolutionary biology↗

Warm waters undermine cryptic female choice

Reproduction is often more thermally sensitive than survival. Thus, understanding the thermal sensitivity of reproductive interactions is crucial given global warming. However, it is unknown how temperature influences female control over fertilization after mating (i.e., cryptic female choice). We tested how temperatures relevant to current conditions and climate change projections influence cryptic female choice in a marine fish, Symphodus ocellatus. Under typical conditions, females bias fertilization dynamics to favor dominant males. We find that warmer temperatures decrease female influence on sperm velocity and reduce the expected paternity of dominant males. Our results demonstrate that temperatures relevant to climate change can shift the balance between mate choice and male-male competition. Thus, climate change may influence sexual selection, leading to evolutionary changes in reproductive traits.

evolutionary biology↗

Microbes as manipulators of developmental life-history

Marine invertebrates mainly reproduce by energy-poor eggs that develop into feeding larvae or energy-rich eggs that develop into non-feeding larvae1-4. Transitions between these reproductive strategies have been studied in detail5-7, yet the evolutionary factor(s) responsible for these switches remains elusive. Here, we use theoretical models to show that microbes with the capacity to manipulate host reproduction are one possible factor. We report that microbial manipulators create a sperm-limited environment that selects for larger eggs by shifting the hosts sex ratio towards female dominance and, as a result, serve as the evolutionary driver of transitions in the developmental life-history for marine invertebrates. Loss of a microbial manipulator can then recover the ancestral developmental life-history. We also document more than a dozen genera of marine invertebrates from throughout the worlds oceans that fit the framework of a microbe-induced switch between these predominate reproductive strategies. We anticipate that microbial manipulators have a yet-to-be appreciated influence on the life-history strategies of marine invertebrates. We find it paramount to understand if transitions in developmental life-history also occur without microbial manipulators as well as if the underlying mechanisms of these manipulations are convergent with terrestrial systems.

evolutionary biology↗