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Noiray, M.

Publications and source records attributed to Noiray, M..

3 recordsLinked to original sources

The Bacterial Replicative Helicase Loader DciA is a DNA Condenser.

The loading of the bacterial replicative helicase is an essential step for genome replication and depends on the assistance of accessory proteins. Several of these proteins have been identified across the bacterial phyla. DciA is the most common loading protein in bacteria, yet the one whose mechanism is the least understood. We have previously shown that VcDciA from Vibrio cholerae, composed of a globular KH-like domain followed by an unfolded extension, has a strong affinity for DNA. Here, we characterized the droplets formed by VcDciA upon interaction with a short single-stranded substrate. We demonstrate the fluidity of these droplets using light microscopy and address their network organization through electron microscopy, thereby bridging events to conclude on a liquid-liquid phase separation behavior. Additionally, we observe the recruitment of VcDnaB inside the VcDciA-DNA droplets. We show that DnaC from Escherichia coli is also competent to form these condensate structures in the presence of ssDNA. Our data open up possibilities for the involvement of DciA in the formation of non-membrane compartments within the bacterium, facilitating the assembly of replication players with the chromosomal DNA.

biochemistry↗

The LH-DH module of the bacterial replicative helicases is the common binding site for DciA and other helicase loaders

During the initiation step of bacterial genome replication, replicative helicases depend on specialized proteins for their loading onto oriC. DnaC and DnaI were the first loaders characterized. However, most bacteria do not contain any of these genes, which are domesticated phage elements that replaced the ancestral and unrelated loader gene dciA several times during evolution. To understand how DciA assists the loading of DnaB, we determined the crystal structure of the complex from Vibrio cholerae, in which two VcDciAs interact with a dimer of VcDnaB, without changing its canonical structure. Our data showed that the VcDciA binding site on VcDnaB is the conserved module formed by the linker helix LH of one monomer and the determinant helix DH of the second one. Interestingly, DnaC from Escherichia coli also targets this module onto EcDnaB. Thanks to their common target site, we showed that VcDciA and EcDnaC could be functionally interchanged in vitro, despite sharing no structural similarities. This is a milestone in understanding the mechanism employed by phage helicase loaders to hijack bacterial replicative helicases during evolution.

molecular biology↗

Structural convergence for tubulin binding of CPAP and vinca domain microtubule inhibitors

Microtubule dynamics is regulated by various cellular proteins and perturbed by small molecule compounds. To what extent the mechanism of the former resembles that of the latter is an open question. We report here structures of tubulin bound to the PN2-3 domain of CPAP, a protein controlling the length of the centrioles. We show that an -helix of the PN2-3 N-terminal region binds and caps the longitudinal surface of the tubulin {beta} subunit. Moreover, a PN2-3 N-terminal stretch lies in a {beta}-tubulin site also targeted by fungal and bacterial peptide-like inhibitors of the vinca domain, sharing a very similar binding mode with these compounds. Therefore, our results identify several characteristic features of cellular partners that bind to this site and highlight a structural convergence of CPAP with small molecule inhibitors of microtubule assembly.

biochemistry↗