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Hurto, R. L.

Publications and source records attributed to Hurto, R. L..

3 recordsLinked to original sources

The lac operon in uropathogenic Escherichia coli enhances intracellular growth by enabling host glycan utilization

The lac operon in Escherichia coli has been used as a model of gene regulation throughout biology since its characterization in the early 1960s. Despite the myriad of biotechnology applications that arose from characterization of the lac system, the explanation for the importance of a functional lac operon in normal bladder colonization by uropathogenic E. coli remains unknown given that the prototypical substrate, lactose, is not normally known to be readily available within the urinary tract. Here, we identified a unique uropathogenic clinical isolate (5.3r) that has a two codon deletion in the LacY permease, leading to impaired {beta}-galactoside metabolism and attenuation of development of critical intracellular bacterial communities (IBCs) in which UPEC replicates to high numbers, and then disseminates during urinary tract infection. Further, we show that expression of a functional lacY permease gene is sufficient to rescue defects in IBC size and number in 5.3r. In addition, we demonstrate that UPEC are able to utilize the disaccharide galactose {beta}-1,4 N-acetylglucosamine (LacNAc) - which appears as the terminal glycan in a subset of the glycoproteins that decorate the apical surface of bladder epithelial cells - as a sole carbon source in a lac system dependent manner. These data suggest that the lac operon is important to the growth and development of intracellular E. coli through metabolism of host bladder cell glycans.

microbiology↗

Negative feedback of cyclic di-GMP levels optimizes switching between sessile and motile lifestyles in Vibrio cholerae

The signaling molecule cyclic di-GMP (c-di-GMP) controls the switch between bacterial motility and biofilm production, and fluctuations in cellular levels of c-di-GMP have been implicated in Vibrio cholerae pathogenesis. Intracellular concentrations of c-di-GMP are controlled by the interplay of diguanylate cyclase (DGC) enzymes, which synthesize c-di-GMP to promote biofilms, and phosphodiesterase (PDE) enzymes, which hydrolyze c-di-GMP to drive motility. To track the complete regulatory logic of how V. cholerae responds to changing c-di-GMP levels, we followed a time course of overexpression of either the V. campbellii diguanylate cyclase QrgB or a variant of QrgB lacking catalytic activity (QrgB*). We find that QrgB increases c-di-GMP levels relative to QrgB* for 30 minutes after overexpression, but the effect of QrgB on c-di-GMP levels plateaus at 30 minutes, indicating tight adaptive control of c-di-GMP levels. In contrast, loss of VpsR, a master regulator activating biofilm formation upon binding to c-di-GMP, leads to higher baseline levels of c-di-GMP and continuously increasing c-di-GMP through 60 minutes after QrgB induction, revealing the existence of a negative feedback loop on c-di-GMP levels operating through VpsR. Through a combination of RNA polymerase ChIP-seq, RNA-seq, and genetic approaches, we show that transcription of a gene encoding a PDE, cdgC, is activated by VpsR at high c-di-GMP concentrations, mediating this negative feedback on c-di-GMP levels. Further, although cells lacking cdgC exhibit enhanced biofilm formation, these mutants are outcompeted by wild type V. cholerae in colonization assays that reward a combination of attachment, dispersal, and motility behaviors. These results underscore the importance of negative feedback regulation of c-di-GMP to maintain appropriate homeostatic levels for efficient transitioning between biofilm formation and motility, both of which are necessary over the course of the V. cholerae infection cycle.

microbiology↗

RNase H genes cause distinct impacts on RNA:DNA hybrid formation and mutagenesis genome-wide

RNA:DNA hybrids such as R-loops affect genome integrity and DNA replication fork progression. The overall impacts of naturally occurring RNA:DNA hybrids on genome integrity, and the relative contributions of ribonucleases H to mitigating the negative effects of hybrids, remain unknown. Here, we investigate the contributions of RNases HII (RnhB) and HIII (RnhC) to hybrid removal, DNA replication, and mutagenesis genome-wide. Deletion of either rnhB or rnhC triggers RNA:DNA hybrid accumulation, but with distinct patterns of mutagenesis and hybrid accumulation. Across all cells, hybrids accumulate most strongly in non-coding RNAs and 5'-UTRs of coding sequences. For {Delta}rnhB, hybrids accumulate preferentially in untranslated regions and early in coding sequences. Hybrid accumulation is particularly sensitive to gene expression in {Delta}rnhC; in cells lacking RnhC, DNA replication is disrupted leading to transversions and structural variation. Our results resolve the outstanding question of how hybrids in native genomic contexts interact with replication to cause mutagenesis and shape genome organization.

genetics↗