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

Vitoria Gomes, M.; landwerlin, P.; Diebold-Durand, M.-L.; Shaik, T. B.; Troesch, E.; Weber, C.; Durand, A.; Brillet, K.; Dulac, L.; Antony, P.; Watrin, E.; Ennifar, E.; Golzio, C.; Romier, C.

2022-06-30 biochemistry
10.1101/2022.06.24.497451 bioRxiv
Show abstract

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.

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