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Tik, Z.

Publications and source records attributed to Tik, Z..

2 recordsLinked to original sources

A phage communication peptide alters Bacillus subtilis colony development and promotes sporulation

Temperate Bacillus phages use arbitrium peptides to coordinate lysis-lysogeny decisions, but whether the mature communication peptide can be sensed directly by Bacillus subtilis and affect its physiology and behavior is unknown. Here we show that the {varphi}3T arbitrium peptide SAIRGA elicits a sequence- and stereochemistry-dependent response in Bacillus subtilis that is strongly expressed in surface-grown colony biofilms but is not accompanied by comparable changes in planktonic growth or static-liquid pellicle morphology. The response persists in the absence of AimR, the canonical arbitrium receptor. Within colonies, SAIRGA alters spatial PtapA activity and increases heat-resistant spore formation without increasing total viable cell yield. Untargeted metabolomics reveals broad dose-dependent remodeling that tracks peptide activity, while program-level proteomics independently converges on late-sporulation and mature-spore-associated states. This study highlights how a phage-derived peptide may act as a signal, enabling the host to pivot toward a survival-focused developmental state.

microbiology↗

Chemical Crosstalk between the Common Soil Bacteria Pseudomonas chlororaphis and Bacillus subtilis

Chemical conversations between soil inhabitants are of tremendous importance to the health of many ecosystems, and at the same time detailed molecular knowledge underlying these conversations is surprisingly scarce. One of the major bacterial genera inhabiting the rhizosphere is Pseudomonas, of which most species are known to produce phenazines, which carry antibiotic properties. Pseudomonas chlororaphis, a common rhizosphere dwelling species with plant growth-promoting traits, produces phenazine-1-carboxamide (PCN). This study examines how the production of PCN by Pseudomonas affects another common species in soil that it often encounters, namely Bacillus subtilis. When both species were cultured at close distance, distinct and visible changes in colony morphologies were observed with-out changes in growth rates. Interestingly, a clear transformation occurred in the morphology of B. subtilis colonies in the presence of supplemented PCN, indicating the role of phenazines in affecting colony morphology. In addition, untargeted metabolomics analyses showed a decrease in the production of plipastatin and surfactin by B. subtilis in the presence of P. chlororaphis. Our results indicate that PCN induces changes in morphology and signaling of B. subtilis without significantly affecting its growth. We hypothesize that P. chlororaphis and B. subtilis sense one another and act to conserve energy while avoiding competition.

microbiology↗