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Biology subjects

Bruford, M.

Publications and source records attributed to Bruford, M..

2 recordsLinked to original sources

Coping with extremes: How Epigenetic and Molecular Adaptations Enable Earthworms to Thrive in Volcanic Soils

Earthworms thriving in naturally occurring geothermal soils offer rare insight into rapid adaptation to environmental extremes. Here, we show that the pantropical earthworm Amynthas gracilis survives and flourishes in soils of the Furnas Volcano (Sao Miguel Island, Azores), where conditions include elevated temperatures (up to 40 {degrees}C), high CO2 (88.6%), low O2 (10%), toxic metals, and mildly acidic pH. In a reciprocal-transplant, mesocosm-based experiment between soils overlying areas of active degassing volcanic gassing (hereafter active degassing soils) and reference soils, convergence of the epidermal thickness of the transplanted earthworms to the resident-soil phenotype (24 {+/-} 3.9 {micro}m active degassing soil, 43.8 {+/-} 8 {micro}m reference soil), was observed within 31 days. Combining RNA-Seq, DNA (5-cytosine) methylation mapping, and microRNA profiling, this phenotypic change results from coordinated transcriptional and epigenetic reprogramming. While gene-body methylation occurred at [~]98 % of loci, levels varied, and differentially methylated regions were enriched ffor genes with altered expression under volcanic stress. Multi-omics network analysis identified epithelial morphogenesis, circulatory system formation, and neural development as regulatory hubs, highlighted by a set of 41 epithelial-morphogenesis genes showing consistent methylation and miRNA patterns. Additional modules governing ion transport and signal transduction complemented the adaptive response. Collectively these findings demonstrate that A. gracilis employs dynamic DNA methylation and microRNA regulation alongside transcriptional reprogramming to generate a persistent phenotypic adjustment to a volcanic stress. This work advances our understanding of extremophile resilience and provides a scalable model for predicting organismal adaptive capacity in the face of environmental extremes.

molecular biology↗

Conserving genetic diversity during climate change:Niche marginality and discrepant monitoring capacity in Europe

Genetic monitoring of populations currently attracts interest in the context of the Convention on Biological Diversity but needs long-term planning and investments. Genetic diversity has been largely neglected in biodiversity monitoring, and when addressed is treated separately, detached from other conservation issues, such as habitat alteration due to climate change. Genetic monitoring supports the conservation and management of fisheries, game, and threatened populations. It also can contribute to the assessment of predicted and realized impacts of climate change, and their management. We report the first accounting of genetic monitoring efforts among countries in Europe (their genetic monitoring capacity, GMC) to determine where GMC suggests the combination of national infrastructure, political support and resources for continued and expanded monitoring. Overlaying GMC with areas where species ranges approach current and future climate niche limits (i.e., niche marginality) helps identify whether GMC coincides with anticipated climate change effects on biodiversity. Our analysis suggests that country area extent, financial resources, and conservation policy influence GMC, high values of which inconsistently match joint species patterns of climate niche marginality. Populations at niche margins likely hold genetic diversity that is important to adaptation to changing climate, and our results illuminate the need in Europe for expanded genetic monitoring across the climate gradients occupied by species, a need arguably greatest in southeastern European countries.

ecology↗