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Rodriguez-Sanchez, G. T.

Publications and source records attributed to Rodriguez-Sanchez, G. T..

2 recordsLinked to original sources

Transcriptomic dissection of genetically diverse Wrinkly Spreader mutants reveals hidden layers of complexity

Understanding the genetic basis of adaptive traits requires linking mutation to phenotypic change and fit-ness. The Wrinkly Spreader (WS) mutants of Pseudomonas fluorescens SBW25, which colonize the air-liquid interface (ALI) in static microcosms, provide a model for dissecting genotype-phenotype relationships. Muta-tions generating the WS phenotype cause constitutive activation of regulatory pathways synthesising cyclic bis-(3,5)-dimeric guanosine monophosphate (c-di-GMP) leading to over-production of cellulose encoded by the wss operon. Using RNA-seq on 14 independently evolved WS mutants, each carrying a single characterised mutation in one of 14 different genes affecting production of c-di-GMP, we report that transcriptional responses are highly genotype specific, with few differentially expressed genes (DEGs) shared among WS mutants. Genes showing greatest variance in expression included fimbrial and matrix-associated loci such as fap, cupE and pga. fap and cupE were the only fimbriae-related loci active in these mutants. Targeted deletions of these candidate loci revealed subtle phenotypic and fitness effects. Closer examination of the fap locus showed that its expression is genotype dependent, restricted to a minority of cells, and associated with stability in early stages of mat formation. Overall, our results confirm that previous suppressor-based approaches have captured the major genetic components of the WS phenotype: cellulose encoded by the wss operon and regulated by elevated c-di-GMP. At the same time, it is apparent that morphology-based screens have failed to detect genes having more subtle effects, whose contributions influence success of WS mutants at the ALI. These findings reveal additional layers of complexity that underscore the polygenic nature of the WS phenotype.

microbiology↗

Context-Dependent Adaptation in Structured Environments

Adaptive evolution often leads to niche specialization, but successful colonization of a new niche can depend as much on ecological context as on genetic change. This is especially true in spatially structured environments, where the physical construction of habitat and the order of arrival of mutants can shape evolutionary outcomes. In static broth cultures, the air-liquid interface (ALI) provides a high-oxygen niche typically colonized by mat-forming mutants. In Pseudomonas fluorescens, a range of single mutations that upregulate cellulose production give rise to "wrinkly spreader" (WS) types--canonical niche specialists that out-compete ancestral types at the ALI. Yet we discover that this is a half-truth: WS mutants frequently fail to establish when introduced alone at low density, but co-culture with ancestral types rescues colonization. Microscopy and model simulations show that ancestors physically scaffold the ALI, enabling stable attachment and facilitating the in situ emergence of an array of genetically diverse WS mutants. Ancestors later disperse, vacate the niche allowing WS mutant expansion. This transient asymmetric interaction reveals that even strongly adaptive mutations may require ecological facilitation to succeed. More broadly, our findings challenge simple narratives of adaptive replacement and underscore how transient ecological dependencies can shape the trajectory of evolutionary change.

evolutionary biology↗