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Jennings, W. B.

Publications and source records attributed to Jennings, W. B..

2 recordsLinked to original sources

Conservation genomics of desert tortoises (Gopherus agassizii) in the Colorado Desert

Management units (MUs) are important to conserving species of conservation concern. Although the MU definition is simple (i.e., a demographically independent population), identifying MUs in practice is difficult because investigators must choose a recent (i.e., last few generations) migration rate threshold. One suggested MU criterion is m < 0.10, where m is the proportion of a subpopulation comprised of recent migrants. However, a more recent study found that m as low as 0.02 (i.e., one migrant per generation) can cause estimates of linkage disequilibrium effective population size (NeLD) to underestimate a subpopulations true Ne. Here, we used genome-wide SNP data obtained from 40 tortoises and an MU criterion of m < 0.02 to define MUs within the Colorado Desert population of the Mojave desert tortoise (Gopherus agassizii)--an endangered species in California and a species in the USA protected under the Endangered Species Act. Based on our results we defined the Mesa and Deep Canyon subpopulations as MUs even though the latter received at least two recent immigrants. Migrant(s) from the Shavers Valley subpopulation were likely translocated by humans, whereas migrant(s) from the Mesa subpopulation could have been human-mediated or natural migrants. Initial analyses suggest that the Shavers Valley subpopulation may be an MU, but our low sample size renders this result inconclusive. The local Ne estimates for the Mesa and Deep Canyon subpopulations--5 and 13 adults, respectively--are below the minimum sizes according to the 50/500 rule and thus they may be candidates for genetic rescue.

genomics↗

A scaling theory of trait evolution

A scaling model named the "geometric-similarity-first model" is developed to explain allometric trait divergence over recent evolutionary time. In the models first step, traits undergo geometric scaling with a populations change in body size. In step 2, directional natural selection re-optimizes trait shapes such that traits showing positive ontogenetic allometry undergo positive evolutionary allometric scaling while traits that exhibit negative ontogenetic allometry go through negative evolutionary allometric scaling. Five predictions of the model were tested using morphological data for three locomotor-relevant traits in pygopodid lizards. The dataset, which was based on 1,756 museum specimens representing 31 species, supported all of these predictions. An implication of these results is that geometric scaling, driven by natural or sexual selection, may be a mechanism for peak shifts on an adaptive landscape. Given the ubiquity of body size variation in nature, this hypothetical process, termed "niche scaling," may be important to ecological diversification. Applications of the model to some other well-studied species are discussed.

evolutionary biology↗