The contrasting roles of nitric oxide drive microbial community organization as a function of oxygen presence
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Abstract
Summary Microbial assemblages are omnipresent in the biosphere, forming communities on the surfaces of roots, rocks, and within living tissues. These communities can exhibit strikingly beautiful compositional structures, with certain members reproducibly occupying particular spatiotemporal microniches. Despite this reproducibility, we lack the ability to explain these spatial patterns. We hypothesize that certain spatial patterns in microbial communities may be explained by the exchange of redox-active metabolites whose biological function is sensitive to microenvironmental gradients. To test this, we developed a simple community consisting of synthetic Pseudomonas aeruginosa strains with a partitioned denitrification pathway: a strict consumer and strict producer of nitric oxide (NO), a key pathway intermediate. Because NO can be both toxic or beneficial depending on the amount of oxygen present, this system provided an opportunity to investigate whether dynamic oxygen gradients can tune metabolic cross-feeding and fitness outcomes in a predictable fashion. Using a combination of genetic analysis, controlled growth environments and imaging, we show that oxygen availability dictates whether NO cross-feeding is deleterious or mutually beneficial, and that this organizing principal maps to the microscale. More generally, this work underscores the importance of considering the contrasting and microenvironmentally tuned roles redox-active metabolites can play in shaping microbial communities.
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- last seen: 2026-05-19T01:45:01.086888+00:00