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Zug, R.

Publications and source records attributed to Zug, R..

2 recordsLinked to original sources

Whole genomes reveal how Andean climate history shapes genetic diversity and modern conservation risk in South American pumas

Climatic oscillations in the Andes have repeatedly reshaped habitats over millions of years, yet their long-term genomic consequences for wide-ranging carnivores remain unclear. We generated whole-genome sequences from pumas (Puma concolor) across ecologically distinct regions of Ecuador to test how paleoclimate shaped population structure, demography, and genetic load. We show that northwestern forest pumas persisted in long-term isolation within humid refugia, whereas northern Andean and southern Pacific populations reconnected intermittently during warm interglacial periods. Southern coastal pumas maintained persistently small effective population sizes, leading to elevated runs of homozygosity and increased burdens of homozygous loss-of-function variants. In contrast, northern populations historically remained larger but exhibit early signs of inbreeding in one individual, marked by long runs of homozygosity and a kinked tail phenotype. Our findings indicate that recent fragmentation may be disrupting historical connectivity. Restoring corridors around the western foothills could reestablish gene flow and reduce inbreeding risk, while targeted genetic rescue may support chronically isolated southern populations. By integrating paleoclimate history with genome-wide data, we provide a framework for region-specific conservation strategies that balance connectivity restoration with the preservation of local adaptation.

genomics↗

Infection dynamics of endosymbionts that manipulate arthropod reproduction

A large proportion of arthropod species are infected with endosymbionts, some of which selfishly alter host reproduction. The currently known forms of parasitic reproductive manipulations are male-killing, feminization, cytoplasmic incompatibility, parthenogenesis induction and distortion of sex allocation. While all of these phenomena represent adaptations that enhance parasite spread, they differ in the mechanisms involved and the consequent infection dynamics. We focus here on the latter aspect, summarizing existing theoretical literature on infection dynamics of all known reproductive manipulation types, and completing the remaining knowledge gaps where dynamics have not been modelled yet. Our unified framework includes the minimal model components required to describe the effects of each manipulation. We establish invasion criteria for all potential combinations of manipulative endosymbionts, yielding predictions for an endosymbionts increase from rarity within a host population that is initially either uninfected or infected with a different symbiont strain. We consider diplodiploid and haplodiploid hosts, as the mechanisms as well as the infection dynamics of reproductive manipulations can differ between them. Our framework reveals that endosymbionts that a priori have the best invasion prospects are not necessarily the most commonly found ones in nature; priority effects play a role too, and cytoplasmic incompatibility excels in this regard. As a whole, considerations of the ease with which a symbiont spreads have to be complemented with knowledge of how easy it is to achieve a particular manipulation, and other factors influencing host switches.

evolutionary biology↗