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Murugan, P. A.

Publications and source records attributed to Murugan, P. A..

2 recordsLinked to original sources

Differential coping strategies exerted by biofilm and planktonic cells of the beneficial bacterium B. subtilis in response to the protozoan predator Entamoeba histolytica.

The human protozoan parasite Entamoeba histolytica causes amebiasis and interacts with both beneficial and harmful members of the microbiome. In previous studies, it was shown that E. histolytica can break down pre-established biofilms of B. subtilis in a time- and dose-dependent manner. Inhibiting parasitic cysteine proteases impairs biofilm degradation. However, it is still unknown whether bacteria can sense this process and respond to the degradation of the biofilms. Here, our research demonstrates a multi-layered response of probiotic bacteria to the parasite, which differs between planktonic bacteria and pre-established biofilms. Sensing the activity of cysteine proteases from E. histolytica, the bacteria activate the general stress response and, to a lesser extent, the cell wall stress response, making the surviving biofilm members more resistant to mild stressors. On the other hand, planktonic cells exposed to the predators lysate deactivate the expression of genes associated with biofilm formation while inducing their motility to avoid predation. Overall, our results indicate that bacteria have evolved to recognize amoeba predators. Furthermore, the partially digested biofilm cells may have unexpected disadvantages over bacteria that did not encounter a predator. These findings may be useful in developing more efficient probiotic strains that are resilient to amoebiasis.

microbiology↗

NaCl Triggers the Sessile-to-Motile Transition of Bacillus subtilis

Various chemical cues are known to alter the motile and sessile states of bacteria differentially and, in turn, the formation of biofilms. However, the underlying mechanisms at the cellular and molecular level remain less understood, which severely limits our ability to control biofilms. Here, we systematically studied the effects of NaCl on the dynamics of biofilm formation across various length scales and the associated changes in the regulation of gene expression in an undomesticated natural isolate of Bacillus subtilis. Interestingly, NaCl induced significant changes in the architecture of pellicles and yielded systematic increase in lateral expansion rates of biofilms when grown on an agar surface. At the microscopic level, both in the presence and absence of NaCl, bacteria displayed super-diffusive motion at times lesser than a second. However, at larger delay times, we observed an intriguing NaCl-induced transition from sub-diffusion behavior of individual bacterial cells to rapid diffusion behavior. In addition, NaCl reduced the dynamical heterogeneity of the bacterial cells within the biofilm. The reduced heterogeneity and the increased flagellation in a subpopulation of cells in the presence of NaCl corroborates well with the observed higher motility of the cells. Further, the cellular uptake of NaCl resulted in the downregulation of several genes underlying the formation of biofilms, revealing the role of chemical cues like NaCl in controlling the gene regulatory circuit underlying the sessile to motile transition. Our study opens a new avenue to decipher the competitive advantage provided to the subcellular populations by NaCl due to lifestyle switch in Bacillus subtilis.

microbiology↗