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Mirollo, R.

Publications and source records attributed to Mirollo, R..

2 recordsLinked to original sources

Microbial interactions within a community are insensitive to recurrent disturbances

Environmental disturbances are ubiquitous in microbial ecosystems, yet their effects on community composition and interactions remain poorly understood. Here, we combine analytical derivations and large-scale generalized Lotka-Volterra simulations to examine how recurrent disturbances, varying in intensity (C), frequency (1/T), regularity, and evenness, affect microbial communities. We find that context-dependent interactions (ICD)--representing the net effect of the entire community on each species--are robust to changes in disturbance intensity and frequency. Community composition is influenced by disturbance, but this effect is primarily captured by a single composite parameter T/log(C), reducing the two-dimensional disturbance space onto a one-dimensional axis. Species abundances and ICD remain largely independent of specific values of T and C except near critical transition regions (survival thresholds and no-interaction zones). Sensitivity analyses show that disturbance-sensitive cases occur in the vicinity of these boundaries. This robustness extends to when the disturbance is irregular (even up to 50% stochastic variation in T or C), with uneven disturbances, when the disturbance is species-specific, and holds at any time point throughout the inter-disturbance growth phase. The patterns are independent of species richness, growth rates, carrying capacities, and interaction strengths. Our findings highlight that microbial community organization is largely conserved under recurrent environmental stress, with extinction acting as the dominant route by which disturbances reshape communities. These findings indicate that disturbance is not a strong driver of community structure and that minor variations in experimental or environmental conditions or sampling time are not expected to substantially impact microbiome composition.

ecology↗

Resource diversity and supply drive colonization resistance

AO_SCPLOWBSTRACTC_SCPLOWThe human microbiota play a key role in resisting the colonization of pathogenic microbes. However, the mechanisms by which our native microbial communities prevent invasion, a process known as colonization resistance, need to be better understood. Environmental resource supply and resource diversity are essential factors in forming these communities, but testing how the environment affects resistance in natural communities is challenging. Here we use a consumer-resource model and computational invasion simulations to investigate how environmental resource diversity and supply affect the richness-resistance relationship, overall colonization resistance, and cross-feeding dynamics. We find a non-monotonic trend between species richness and resistance, shaped by environmental characteristics. Our results show that colonization resistance is negatively correlated with both resource supply and resource diversity except when resource supply is limited. Lastly, we observe that cross-feeding weakens colonization resistance by increasing the diversity of available resources, but this trend disappears with limited resource supply. This work provides insights about colonization resistance in microbial communities of consumers, resources, and resource conversion and exchange.

ecology↗