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Microbial Ecological Damping: A Multilevel Systems-Ecology Framework for Climate–Biodiversity Resilience

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Climate change and biodiversity loss alter disturbance regimes, yet resilience frameworks often underresolve the microbial infrastructure through which disturbance is attenuated, transmitted, reorganized, or amplified. This Perspective analyzes that infrastructure across three distinct but connected domains: host-associated microbiomes, free-living environmental microbial ecosystems, and regional environmental microbial source pools linked by metacommunity connectivity. Environmental microbial ecosystems perform ecological and biogeochemical functions in their own right, while source pools relationally define viable and accessible biological options for assembly and recovery rather than local diversity or occurrence alone. MEDC is the conditional capacity of microbial organization or processes to reduce a prespecified disturbance-induced deviation or consequence, relative to an explicit comparator or counterfactual, for a defined response variable, spatial scale, and time horizon. The MEDC framework is the analytical and evidentiary architecture used to evaluate MEDC by estimating response-specific outcome direction, characterizing prespecified structural or configurational trajectories relative to explicit reference states, evaluating conditional causal diagnoses, and reporting inferential status without conflating these classes. The MEDC framework preserves resilience as a distinct concept. Microbial source-pool erosion is framed as degradation of biological option space, including loss of diversity, heterogeneity, viability, accessibility, connectivity, dormant or persistent reservoirs, functional response options, dispersal pathways, and reorganization potential. Causally confirmed microbial recolonization debt is reserved for cases in which permissive abiotic conditions coexist with deficient recovery relative to an explicit reference, demonstrated source limitation after alternatives are evaluated, and improved outcome after source access is restored. The contribution is a testable microbial systems perspective on conservation, restoration, and biological reorganization capacity under climate–biodiversity change.

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Sujets associés

Microbial Community Ecology and PhysiologySustainability and Climate Change GovernanceAlexander von Humboldt Studies

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