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Valeriano, V. D.

Publications and source records attributed to Valeriano, V. D..

2 recordsLinked to original sources

6S RNA facilitates bacterial virulence and adaptation at the epithelial barrier

Enteropathogenic bacteria must adapt dynamically to the complex gastrointestinal environment to successfully colonize host tissue and evade immune defenses. Using Yersinia pseudotuberculosis as a model, we performed in vivo spatial transcriptomics to investigate bacterial gene expression as it translocates from cecal lumen to associated lymphoid tissue in the mouse intestine. By optimizing bacterial RNA enrichment, we achieved near-complete transcriptome coverage and identified compartment-specific transcriptional profiles. Bacteria in lymphoid tissue exhibited elevated expression of virulence-associated type III secretion system (T3SS) genes and markers of increased replication, alongside a higher plasmid copy number. Oxygen availability emerged as an environmental cue for T3SS induction. Importantly, we discovered a role for the non-coding 6S RNA in accelerating virulence gene expression. Tissue-localized bacteria had significantly upregulated 6S RNA levels, and deletion of the ssrS gene encoding 6S RNA impaired T3SS gene expression and effector secretion. Further, spatial analyses of bacterial gene expression in foci of infected lymphoid tissue revealed heterogeneous expression patterns with significantly elevated expression of T3SS and 6S RNA in bacteria located close to surrounding phagocytes. Together these findings demonstrate that Y. pseudotuberculosis undergoes rapid transcriptional reprogramming upon epithelial barrier crossing coordinated by environmental sensing, where 6S RNA accelerates tissue colonization by promoting efficient expression of T3SS.

microbiology↗

Diverse mechanisms control amino acid-dependent environmental alkalization by Candida albicans

Candida albicans has the remarkable capacity to neutralize acidic growth environments by releasing ammonia derived from the catabolism of amino acids. The molecular components and mechanisms controlling this capacity remain poorly understood. Here, we present an integrative model with the cytosolic NAD+-dependent glutamate dehydrogenase (Gdh2) as the principal component. We show that the alkalization defect of a strain lacking the SPS-sensor regulated transcription factor STP2 is due to the inability to fully derepress GDH2 and the two proline catabolic enzymes, PUT1 and PUT2. Notably, the Stp2-dependent regulation of PUT1 and PUT2 occurs independent of Put3, the proline-dependent activator. Accordingly, a stp2-/- put3-/- strain is unable to derepress the expression of these enzymes resulting in a severe alkalization defect that nearly phenocopies the abrogated alkalization of a gdh2-/- strain. In wildtype cells, alkalization is tightly dependent on mitochondrial activity and occurs as long as conditions permit respiratory growth. As alkalization proceeds, Gdh2 levels decrease and glutamate is transiently extruded from cells. Together these two processes constitute a rudimentary regulatory system enabling cells to prevent the rapid intracellular build-up of ammonia. Similar to C. albicans, Gdh2-dependent alkalization is dispensable for C. glabrata and C. auris virulence as assessed using a whole-blood infection model. Intriguingly, fungal-dependent alkalization does not influence the growth or proliferation of Lactobacillus crispatus, a potent antagonist of C. albicans that normally resides in the acidic vaginal microenvironment. Our data suggest that it is time to reconsider the idea that pH modulation driven by pathogenic fungi plays a crucial role in shaping the architecture and dynamics of (poly)microbial communities. Other factors are likely to be more critical in contributing to dysbiosis and that favor virulent growth.

cell biology↗