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Marepalli, A.

Publications and source records attributed to Marepalli, A..

2 recordsLinked to original sources

KilR of E. coli Rac prophage is a dual morphogenetic inhibitor of bacterial cell shape

Bacterial cryptic prophages encode genes that reduce the viability of the host, upon induction, but also contribute to host survival during stress conditions. Rac is a cryptic prophage of Escherichia coli and it encodes a toxic protein KilR which causes morphological defects to the host. But the mechanistic basis of its action is not well understood. In this study, we provide evidence that KilR is a dual morphogenetic inhibitor that affects cell division and cytoskeletal organization. We show that KilR expression is highly toxic, as demonstrated previously, and its predicted C-terminal unstructured region plays a crucial role in its function via a length-dependent manner. Low levels of KilR expression lead to cell filamentation and disruption of Z-rings, while high levels result in rod-shaped defects and mislocalization of the MreB cytoskeletal protein. Using fluorescent fusions, we observed that KilR is diffusively localized in the cytoplasm. When MreBCD proteins are overexpressed, KilR co-localizes with them, forming membrane-associated filaments, indicating a physical association. However, overexpressed MreBCD proteins does not alleviate the KilR-associated growth defect, unlike FtsZ. Finally, we present evidence that chromosomal KilR contributes to the co-inhibition of FtsZ and MreB localization in response to oxidative stress. Our data indicate that KilR inhibits MreB-associated cytoskeletal system, in addition to its effect on FtsZ-associated cell division system. We propose that dual inhibition activity of KilR contributes to its high level of toxicity and to its function in SOS-independent DNA damage tolerance during oxidative stress. IMPORTANCEKilR is a Rac cryptic prophage encoded toxic protein which contributes to host survival during oxidative stress conditions. It is known to inhibit cell division by targeting the tubulin homolog, FtsZ. In this study, we show that KilR is a dual morphogenetic inhibitor that affects FtsZ-mediated cell division and MreB-mediated cell elongation. Simultaneous inhibition of cell division and cell elongation are known to be crucial for bacterial survival during stress conditions like oxidative stress. Our study identifies KilR as a dual morphogenetic inhibitor, offering insights into how bacterial-phage coevolution drives the emergence of cryptic prophage elements, with specific genes enhancing bacterial fitness.

microbiology↗

Probing the Molecular Interactions of A22 with Prokaryotic Actin MreB and Eukaryotic Actin: A Computational and Experimental Study

Actin is a major cytoskeletal system that mediates the intricate organization of macromolecules within cells. The bacterial cytoskeletal protein MreB is a prokaryotic actin-like protein governing cell shape and intracellular organization in many rod-shaped bacteria including pathogens. MreB stands as a target for antibiotic development, and compounds like A22 and its analogue, MP265, are identified as potent inhibitors of MreB. The bacterial actin MreB shares structural homology with eukaryotic actin, despite lacking sequence similarity. It is currently not clear whether small molecules that inhibit MreB can act on the eukaryotic actin due to their structural similarity. In this study, we investigate the molecular interactions between A22 and both MreB and eukaryotic actin through molecular dynamics approach. Employing MD simulations and free energy calculations with an all-atom model, we unveil robust A22-MreB interaction and substantial binding affinity with eukaryotic actin. Experimental assays reveal A22s toxicity to eukaryotic cells, including yeast and human glioblastoma cells. Microscopy analysis demonstrates profound effects of A22 on actin organization in human glioblastoma cells. Overall, this integrative computational and experimental study advances our understanding of A22s mode of action and highlights its potential as a versatile tool for probing actin dynamics and as a candidate for therapeutic intervention in pathological conditions like cancer.

biophysics↗