Search bioRxiv⌕ Search

Biology subjects

Diebold-Durand, M.-L.

Publications and source records attributed to Diebold-Durand, M.-L..

2 recordsLinked to original sources

Specific conformational dynamics of the ATPase head domains and DNA exit gate mediate the Cohesin ATPase cycle

Cohesin is key to eukaryotic genome organization and acts throughout the cell cycle in an ATP- dependent manner. The molecular mechanisms underlying the Cohesin ATPase activity are poorly understood. Here, we have characterized distinct steps of the human Cohesin ATPase cycle and show that the SMC1A and SMC3 ATPase domains undergo specific but concerted structural rearrangements along this cycle. Specifically, while the proximal coiled coil of the SMC1A ATPase domain remains conformationally stable, that of SMC3 displays an intrinsic flexibility. The ATP-dependent formation of the heterodimeric SMC1A/SMC3 ATPase module (engaged state) favours this flexibility, while it is counteracted by binding of NIPBL and DNA (clamped state). Opening of the SMC3/RAD21 interface (open-engaged state) leads to a stiffening of the SMC3 proximal coiled coil that constricts, together with that of SMC1A, the DNA binding chamber of the ATPase module. Our results reveal that the plasticity of the ATP-dependent interface between the SMC1A and SMC3 ATPase domains enables the structural rearrangements occurring between the engaged, clamped and open-engaged states, while keeping the ATP gate shut.

biochemistry↗

The ParB clamp docks onto Smc for DNA loading via a joint-ParB interface

Chromosomes readily unlink from one another and segregate to daughter cells during cell division highlighting a remarkable ability of cells to organize long DNA molecules. SMC complexes mediate chromosome folding by DNA loop extrusion. In most bacteria, SMC complexes start loop extrusion at the ParB/parS partition complex formed near the replication origin. Whether they are recruited by recognizing a specific DNA structure in the partition complex or a protein component is unknown. By replacing genes in Bacillus subtilis with orthologous sequences from Streptococcus pneumoniae, we show that the three subunits of the bacterial Smc complex together with the ParB protein form a functional module that can organize and segregate chromosomes when transplanted into another organism. Using chimeric proteins and chemical cross-linking, we find that ParB binds to the Smc subunit directly. We map a binding interface to the Smc joint and the ParB CTP-binding domain. Structure prediction indicates how the ParB clamp presents DNA to the Smc complex to initiate DNA loop extrusion.

biochemistry↗