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Zakrzewska-Czerwinska, J. Z.

Publications and source records attributed to Zakrzewska-Czerwinska, J. Z..

2 recordsLinked to original sources

FtsK with a unique N-terminal extension is involved in coordinating the final steps of chromosome segregation with asymmetrical division in mycobacterial cells

In this study, we identify and functionally characterize a previously unrecognized, conserved N-terminal extension of mycobacterial FtsK (nFtsK) that contributes to the coordination of chromosome segregation with asymmetric cell division. Although FtsK is broadly conserved in bacteria as a late-stage DNA translocase and divisome component, mycobacterial FtsK uniquely contains a long, positively charged, intrinsically disordered N-terminal region. We show that this extension is dispensable for core FtsK functions--including septal localization, DNA translocation, and completion of cell division--but instead modulates the spatial confinement, temporal regulation, and interaction specificity of these processes. Mechanistically, nFtsK mediates specific protein interaction, binds the anionic phospholipids cardiolipin and phosphatidic acid, and exhibits intrinsic affinity for negatively curved membrane. Together, our findings uncover a lineage-specific adaptation that fine-tunes a conserved molecular machine, enhancing the robustness of asymmetric cell division in mycobacteria.

molecular biology↗

The mycobacterial nucleoid-associated protein NapM exhibits stress-induced septal localization and modulates cell envelope gene expression

The bacterial chromosome is organized in a hierarchical and dynamic manner to facilitate various DNA transactions. Nucleoid-associated proteins (NAPs) are the most abundant small-scale chromosomal organizers, playing roles in maintaining chromosomal DNA integrity, gene regulation, DNA replication, and DNA repair. In this study, we characterize the recently identified mycobacterial NAP, NapM in Mycobacterium smegmatis. Our study shows that NapM exhibits a distinctive septal localization in response to stress affecting cell envelope integrity and modulates the expression of approximately one-third of M. smegmatis genes, including those involved in cell envelope biosynthesis. Our findings suggest that NapM regulates mycobacterial cell division under stress, enabling this saprophyte to adapt to constantly changing environmental conditions.

molecular biology↗