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Biology subjects

COMBE, M.

Publications and source records attributed to COMBE, M..

2 recordsLinked to original sources

Ecological Drivers of Nontuberculous Mycobacteria in Aquatic Systems: Biodiversity, Niche Competition, and Pathogen Emergence

Microbial diversity remains largely unexplored across environments and scales, notably because at local scales many microbial taxa exist under a dormant state. Microbial biogeography is shaped by edaphic and ecological drivers, and shifts in microbial community composition are frequently associated with host community structure and health. Nontuberculous mycobacteria represent a striking example of environmental microorganisms with opportunistic pathogenic potential. Unfortunately, data on their diversity, distribution, and ecological interactions in aquatic environments remain limited. However, understanding competition for niche space and the role of abiotic and biotic factors shaping their biogeography is crucial for predicting disease emergence and transmission. Here we aimed at i) identifying microhabitat abiotic and biotic drivers influencing their distribution, ii) assessing the predictability of their diversity and distribution across continents, and iii) examining potential exclusion or associations between pathogenic and nonpathogenic mycobacterial species. By deploying an eDNA-based metabarcoding approach from freshwater samples collected in urban and rural sites in French Guiana and Cote dIvoire, we have boosted our understanding of environmental mycobacteria ecology by highlighting the influence of habitat type, abiotic factors, and microbial interactions on mycobacterial distribution. In addition, the detection of pathogenic species further highlighted the importance of environmental reservoirs in mycobacterial disease transmission.

ecology↗

Differential thermal sensitivity may explain the temporal distribution of foraging activity among different-sized workers in a polymorphic ant species

One of the most stressful factors for insects is increasing temperature because of the risk of potentially fatal dehydration linked to their small size. We used respirometry to study the effect of both temperature and body mass on water loss and metabolic rate in individual workers of the polymorphic ant species Messor barbarus. As expected, we found that large ants exposed to increasing temperatures have a lower rate of water loss than small ants and that their mass-specific metabolic rate increases more slowly. However, counterintuitively, the measure of worker sensitivity to changes in temperature, as assessed by the instantaneous Q10 value (i.e., the rate of change across 10{degrees}C temperature intervals), shows that large ants are more sensitive than small ants to changes in temperature in terms of both water loss and metabolic rate. Such differential thermal sensitivity allows to make testable predictions on the temporal distribution of foraging activity among workers of different sizes in polymorphic ant species, as well as how these species may alter their colony demographics in response to rising temperatures.

physiology↗