Search bioRxiv⌕ Search

Biology subjects

Collette, N.

Publications and source records attributed to Collette, N..

3 recordsLinked to original sources

A Selenium-Deficient Mouse Model of Mouse-Adapted SARS-CoV-2 Demonstrates Variant Emergence Observed in SARS-CoV-2 Pandemic Variants

Host selenium deficiency has been shown to generate novel genetic variants in RNA viruses. With the predicted rise of selenium deficiency globally, we sought to determine if host selenium deficiency can be a predictive factor for RNA virus variant emergence. We utilized a selenium-deficient BALB/c mouse model to investigate how host selenium status influences the emergence of viral variants in mouse-adapted SARS-CoV-2. Mice were maintained on control or selenium-deficient diets and subjected to sequential rounds of diet-matched viral passage to generate diet-specific virus populations. Deep sequencing of passaged viral populations revealed that selenium-deficient passage drove a marked increase in inter-host genomic heterogeneity and produced a distinct mutational profile relative to control passage. Eighteen mutations were identified as unique to selenium-deficient passage, including variants previously observed during natural human SARS-CoV-2 evolution. These mutations were largely maintained at sub-consensus frequencies, indicating that selenium deficiency can expand the viral quasispecies landscape that enrichs reservoirs of adaptive potential. To determine how this altered mutant spectrum affected pathogenesis, we challenged normal diet-fed adult and aged BALB/c mice with control- or selenium-deficient-passaged virus. Although overt differences in weight loss, survival, and viral burden were generally modest, selenium-deficient-passaged virus induced pronounced increases in antiviral cytokine expression. Together, these findings identify host selenium deficiency as a driver of RNA virus population diversification and show that nutritionally stressed animal models can reproducibly generate mutations observed in nature.

microbiology↗

Life-history traits may buffer genetic erosion under isolation in mountain sky-island systems

Sky-island systems provide natural case studies for understanding how geography and Quaternary history shape genomes, phenotypes and life-history traits in mountain endemics. We investigated Xatartia scabra (Apiaceae), a monotypic scree specialist plant species restricted to sky-island summits in the eastern Pyrenees, by integrating population genomics with abiotic condition-informed distribution modeling. Using a ddRAD-seq-like protocol (nGBS), we genotyped 125 individuals (21,970 SNPs), and applied species distribution modeling to identify suitable environmental conditions from the Last Glacial Maximum to 2100. Genetic analyses revealed unexpected genetic "resilience", with moderate genome-wide diversity (HE = 0.17, Ho = 0.15) and low inbreeding (FIS = 0.07), despite small census sizes and strong isolation. Significant overall genetic differentiation (FST = 0.16), with pronounced summit-level structure and strong isolation-by-distance, supports deep valleys as barriers to gene flow. Abiotic niche reconstructions recovered extensive Heinrich Stadial 1 connectivity (+ 58,4% relative to present), followed by postglacial loss of suitable habitats at lower elevations and increasing fragmentation; projections under climate change forecast contraction (-61,2%, relative to present) of climatic suitability, expected to intensify drift in small, isolated populations. Demographic inferences align with this narrative, indicating postglacial decline in effective population sizes. Taken together, genetic, climatic, and demographic evidence supports a transition from historically connected lowland corridors to modern sky islands where distance-limited drift dominates. The maintenance of moderate genetic diversity and low inbreeding under strong isolation suggests that X. scabra may have evolved life-history strategies including outcrossing and monocarpy that allow limiting genetic erosion in such extreme and fragmented environments.

genomics↗

Predicting spatiotemporal bioclimatic niche dynamics of endemic Pyrenean plant species under climate change: how much will we lose?

Species distributions are shifting under global change, with mountain ecosystems among the most vulnerable. In such landscapes, ability to track changing conditions is limited, threatening narrowly distributed species. As a mountain biodiversity hotspot in southwestern Europe, the Pyrenees harbors many such species, making it a key case study for climate vulnerability assessments. This study implements a bioclimatic niche modeling pipeline to evaluate climate change impact on endemic Pyrenean plant species by 2100. Objectives are to (i) map current bioclimatic niche suitability, (ii) forecast its future spatial dynamics, and (iii) identify potential climate refugia for conservation. Species occurrences were combined with 19 bioclimatic variables (1x1 km resolution) to characterize bioclimatic niche suitability, using an ensemble modeling approach integrating five algorithms (MaxEnt, Generalized Linear Model, Generalized Additive Model, Gradient Boosting Machine, and Random Forest). Their future spatiotemporal dynamics were projected under four climate scenarios (Shared Socioeconomic pathways 126, 245, 370, 585) for four successive periods spanning 2021 to 2100. By 2100, 69% of endemic species are projected to lose over 75% of their bioclimatic niche, and half to face complete losses under high-emission scenarios. Only two species may gain suitable areas, highlighting the need for species-specific conservation strategies. Bioclimatic niches are projected to shift by [~]180 m upslope and [~]3 km in latitude on average, with areas of highest multi-species suitability, referred to as bioclimatic hotspots, becoming restricted to elevation above 2000 m. These trends intensify after 2041-2060 period, reflecting escalating climate pressures as the century progresses. Our findings highlight the profound threat climate change may pose to endemic Pyrenean flora, with widespread bioclimatic niche losses projected by the centurys end and high elevation refugia emerging as key conservation priorities. Anticipating these shifts and integrating them into conservation planning will be crucial to mitigating high-elevation biodiversity loss in a rapidly changing world.

ecology↗