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Rangarajan, A. A.

Publications and source records attributed to Rangarajan, A. A..

2 recordsLinked to original sources

A Phage Ejectosome Protein Moonlights to Inhibit CBASS Anti-Viral Defense System

A family of prokaryotic antiviral systems collectively known as the cyclic oligonucleotide-based signaling system (CBASS) is found in many bacterial species. Phage defense in CBASS is mediated by the action of a specific effector activated by the cognate cyclic oligonucleotide, often resulting in abortive infection. In the prototypical Type II-A CBASS, phage defense is initiated by the production of cyclic GMP-AMP (cGAMP) by enzymes known as cGAS/DncV-like nucleotidyltransferases (CD-NTases) within the bacterial host, and subsequent activation of the CapV phospholipase by cGAMP leads to cell lysis, thereby limiting phage replication within the host population. Phage proteins that degrade cGAMP, sequester cGAMP, or prevent cGAMP synthesis have been identified in phages to evade CBASS protection. However, some phages are resistant to CBASS protection despite not encoding these proteins, suggesting that additional counter-defense mechanisms exist. To identify new anti-CBASS mechanisms in phages, we exploited bacterial host sensitivity to the antimicrobial compound sulfamethoxazole (SMX) as an indirect read-out for CBASS activity. Bacteria with active CBASS are more sensitive to SMX; therefore, we postulated that any viral proteins produced inside the bacterial host that target CBASS could increase bacterial SMX resistance. Using this screen, we identified that the Gp15 protein from the vibriophage ICP3 increases SMX resistance in Vibrio cholerae El Tor biotype that encodes an active CBASS. Gp15 is an essential virion protein involved in DNA ejection and conserved in many phages. Expression of Gp15 of another coliphage increases SMX resistance in Escherichia coli expressing an active CBASS, and it allows CBASS-sensitive phage to infect the bacterial host with CBASS, demonstrating an important role of Gp15 in phage defense evasion. Unlike other known anti-CBASS proteins, Gp15 does not degrade or sequester cGAMP, and it does not reduce the cellular level of cGAMP. Gp15 also does not interfere with CapV binding to cGAMP. Instead, Gp15 directly inhibits cGAMP-activated CapV serine hydrolase activity in a stoichiometric manner. Together, our study reveals a new mechanism for CBASS antagonism, in which a phage DNA ejection protein moonlights to inhibit a CBASS effector, thereby evading anti-phage defense.

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↗