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Szafran, M.

Publications and source records attributed to Szafran, M..

2 recordsLinked to original sources

LsrL modulates Lsr2-induced chromatin structure to tune biosynthetic gene cluster regulation in Streptomyces venezuelae

Specialized biosynthetic gene clusters in Streptomyces are subject to complex regulation involving both transcriptional control and chromosome organization. The nucleoid-associated protein Lsr2 silences many of these clusters, yet how it shapes the global chromatin structure and how its conserved paralog LsrL contributes to this process remain poorly understood. In this study, we applied a multi-omics approach, combining transcriptional activity, genome-wide protein-DNA binding profiles, and three-dimensional chromosome conformation to characterize the coordination of Lsr2 and LsrL in exerting transcriptional control and genome architecture in Streptomyces venezuelae. In line with established Lsr2 functions, we find that Lsr2 sets broad transcriptional boundaries, while LsrL acts in a more context-specific manner that depends on the presence of Lsr2 and may function to reinforce or modulate Lsr2-mediated silencing. Loss of Lsr2 reshaped the chromatin landscape genome-wide, relieving its restriction on short-range contacts, triggering strong transcriptional changes and new domain boundaries near de-repressed biosynthetic gene clusters. These findings establish Lsr2 as a dominant but contextually modulated regulator whose interplay with LsrL coordinates specialized metabolism with higher-order chromosome organization.

microbiology↗

SMC modulates ParB engagement in segregation complexes in Streptomyces

ParB is long established chromosome segregation protein in bacteria. Due to the recently demonstrated CTPase activity of ParB, formation of its nucleoprotein complexes was unrevealed. ParB homodimers bound to CTP are loaded onto DNA at parS sites, where they recruit condensin (SMC), thereby facilitating chromosome organization and segregation. Whether SMC modulates ParB complexes has remained unknown. Here, we generated Streptomyces venezuelae strains producing ParB-HaloTag in the presence or absence of SMC and used single-cell time-lapse fluorescence microscopy, single molecule tracking and fluorescence recovery after photobleaching analysis to explore ParB dynamics. Additionally, we performed chromatin immunoprecipitation to examine ParB interactions with DNA in the presence or absence of SMC. We reveal that SMC modulates ParB complex stability on DNA. We find that the absence of SMC results in faster ParB complex disassembly, and promotes non-specific DNA binding. Additionally, we show that SMC reduces ParB CTPase activity in vitro. Taken together our data provide evidence of SMC positive feedback on the ParB nucleoprotein complex, offering new insight into the nature of ParB complex regulation.

microbiology↗