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Chien, P.

Publications and source records attributed to Chien, P..

4 recordsLinked to original sources

Activation of SEDS-PBP cell wall synthases by an essential regulator of bacterial division

Bacterial growth and division require insertion of new peptidoglycan (PG) into the existing cell wall by PG synthase enzymes. Emerging evidence suggests that many PG synthases require activation to function, however it is unclear how activation of division-specific PG synthases occurs. The FtsZ cytoskeleton has been implicated as a regulator of PG synthesis during division, but the mechanisms through which it acts are unknown. Here we show that FzlA, an essential regulator of constriction in Caulobacter crescentus, links FtsZ to PG synthesis to promote division. We find that hyperactive mutants of the PG synthases FtsW and FtsI specifically render fzlA, but not other division genes, non-essential. However, FzlA is still required to maintain proper constriction rate and efficiency in a hyperactive PG synthase background. Intriguingly, loss of fzlA in the presence of hyperactivated FtsWI causes cells to rotate about the division plane during constriction and sensitizes cells to cell wall-specific antibiotics. We demonstrate that FzlA-dependent signaling to division-specific PG synthesis is conserved in another -proteobacterium, Agrobacterium tumefaciens. These data establish that FzlA links FtsZ to cell wall remodeling, serving both to activate and spatially orient PG synthesis during division. Overall, our findings support the paradigm that activation of SEDS-PBP PG synthases is a broadly conserved requirement for bacterial morphogenesis.

microbiology

A legacy role for DNA binding of Lon protects against genotoxic stress

DNA binding proteins are essential for cellular life, but persistently bound complexes have toxic consequences. Here we show that the proteotoxic responsive bacterial protease Lon clears proteins from DNA to promote genotoxic stress resistance. Purified Lon binds DNA and degrades neighboring bound proteins, while a fully active DNA-blind Lon variant does not. This variant can degrade substrates as normal during unstressed growth, complements pleotropic phenotypes of {Delta}lon, including proteotoxic resilience, but remains sensitive to genotoxic stresses and fails to degrade proteins efficiently during DNA damage. Transposon sequencing reveals that {Delta}lon is vulnerable to loss of protein-DNA eviction factors and we use dynamic nucleoid occupancy profiling to show that chromosome-wide protein turnover relies on Lon DNA binding. Finally, disrupting Lon binding to mitochondria genomes also results in genotoxic stress sensitivity, consistent with the bacterial ancestry of this organelle. We propose that clearance of persistent proteins from DNA by Lon originated in free-living -proteobacteria and maintained during the evolution of mitochondria. SummaryDNA binding by the Lon protease protects against genotoxic damage in a manner preserved from bacteria to mitochondria.

microbiology

The polar localization hub protein PopZ restrains adaptor dependent ClpXP proteolysis in Caulobacter crescentus

In Caulobacter crescentus, timely degradation of several proteins by the ClpXP protease is critical for proper cell cycle progression. During the cell cycle, the ClpXP protease, the substrate CtrA and many other proteins are localized to the stalked pole dependent on a polar interaction hub composed of PopZ protein oligomers. Prior work suggests that the localization of ClpXP, protease substrates, and cofactors is needed for recognition of substrates such as CtrA by ClpXP. Here, we formally test this hypothesis by examining the role of PopZ in ClpXP activity and find surprisingly that CtrA degradation is enhanced in cells lacking polar localization due to loss of PopZ. The ClpXP adaptor CpdR is required for this enhanced degradation of CtrA and other adaptor-dependent substrates, but adaptor-independent substrate degradation is not affected upon loss of PopZ. We find that overexpression of PopZ also leads to faster degradation of CtrA, but is likely due to nonphysiologically relevant recognition of CtrA by ClpXP alone as loss of CpdR does not affect this enhancement. Our main conclusion is that loss of PopZ, and therefore loss of polar localization, does not result in the loss of ClpXP regulated proteolysis, as would be predicted from a model which requires polar localization of ClpXP for its activation. Rather, our data point to a model where PopZ normally restrains ClpXP proteolysis by promoting the inactivation of the CpdR adaptor, likely through the phosphorylation activity of the CckA kinase.

microbiology

Lon recognition of the replication initiator DnaA is not confined to a single degron

DnaA initiates chromosome replication in bacteria. In Caulobacter crescentus, the Lon protease degrades DnaA to coordinate replication with nutrient availability and to halt the cell cycle during acute stress. Here we characterize the mechanism of DnaA recognition by Lon. We find that the native folded state of DnaA is crucial for its degradation, in contrast to the well-known role of Lon in degrading misfolded proteins. We fail to identify a single degradation motif (degron) sufficient for DnaA degradation, rather we show that both the ATPase domain and a species-specific N-terminal motif are important for productive Lon degradation of DnaA. Mutations in either of these determinants disrupt DnaA degradation in vitro and in vivo. DnaA switches from an inactive to active state depending on its nucleotide state and we find that locking DnaA in an active state inhibits degradation. Our working model is that Lon engages DnaA through at least two elements, one of which anchors DnaA to Lon and the other acting as an initiation site for degradation.

biochemistry