Search bioRxiv⌕ Search

Biology subjects

Norcross, J. D.

Publications and source records attributed to Norcross, J. D..

2 recordsLinked to original sources

A dual-function regulatory element couples ParB expression and DNA substrate specificity

Chromosome segregation is essential for cell survival. Most bacteria encode the chromosome partitioning ParABS system. Although even small changes in ParA or ParB levels disrupt genome maintenance, the mechanisms that control their abundance have remained unresolved. Using Caulobacter crescentus, we provide the first mechanistic evidence that ParB levels are regulated post-transcriptionally. Through single-nucleotide substitutions and compensatory mutation analyses, we identify an mRNA secondary structure at the 5' end of the parB transcript that enhances ParB cellular abundance. Loss of this regulatory mechanism sensitizes cells to modest increases in ParA levels, causing cell death. Additionally, we demonstrate that ParB substrate specificity is not determined solely by the central helix-turn-helix domain that interacts with parS but is unexpectedly modulated by the N-terminal domain. Together, our findings reveal an uncharacterized layer of chromosome segregation control and highlight post-transcriptional regulation of ParB abundance as a potential mechanism for maintaining the precise ParA-ParB balance required for bacterial viability.

microbiology↗

To let go or not to let go: how ParA can impact the release of the chromosomal anchoring in Caulobacter crescentus

Chromosomal maintenance is vital for the survival of bacteria. In Caulobacter crescentus, chromosome replication initiates at ori and segregation is delayed until the nearby centromere-like region parS is replicated. Our understanding of how this sequence of events is regulated remains limited. The segregation of parS has been shown to involve multiple steps including polar release from anchoring protein PopZ, slow movement, and fast ParA-dependent movement to opposite cell pole. In this study, we demonstrate that ParAs competing attractions from PopZ and from DNA are critical for segregation of parS. Interfering with this balance of attractions - by expressing a variant ParA-R195E unable to bind DNA and thus favoring interactions exclusively between ParA-PopZ - results in cell death. Our data revealed that ParA-R195Es sole interactions with PopZ obstruct PopZs ability to release the polar anchoring of parS resulting in cells with multiple parS loci fixed at one cell pole. We show that the inability to separate and segregate multiple parS loci from the pole is specifically dependent on the interaction between ParA and PopZ. Interfering with interactions between PopZ and the partitioning protein ParB, which is the interaction that anchors parS at the cell pole, does not rescue the ability of cells to separate the fixed parS loci when expressing parA-R195E. Thus, ParA and PopZ appear to have a distinct conversation from ParB yet can impact the release of ParB-parS from the anchoring at the cell pole. Collectively, our results reveal that the initial steps in chromosome segregation are highly regulated.

microbiology↗