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bioRxiv · 10.1101/760678

A role of the Nse4 kleisin and Nse1/Nse3 KITE subunits in the ATPase cycle of SMC5/6

Abstract

The SMC (Structural Maintenance of Chromosomes) complexes are composed of SMC dimers, kleisin and kleisin-interacting subunits. Mutual interactions of these subunits constitute the basal architecture of the SMC complexes. Particularly, terminal domains of the kleisin subunit bridge the SMC head domains of the SMC molecules. Binding of ATP molecules to the heads and their hydrolysis alter the shape of long SMC molecules (from rod-like to open-ring shapes) and power them with motor activity. The kleisin-interacting (HAWK or KITE) subunits bind kleisin linker regions and regulate such dynamic activities.\n\nWe developed new systems to follow the interactions between SMC5/6 subunits and stability of the SMC5/6 complexes. First, we show that the N-terminal domain of the Nse4 kleisin molecule binds to the SMC6 neck and bridges it to the SMC5 head. Second, binding of the Nse1 and Nse3 KITE proteins to the Nse4 linker part increases stability of the ATP-free SMC5/6 complex. In contrast, binding of ATP to the SMC5/6 complex containing KITE subunits significantly decreases its stability. Elongation of the Nse4 linker partially suppresses instability of the ATP-bound complex, suggesting that the binding of the KITE proteins to the Nse4 linker constrains its limited size. Our data suggest that the KITE proteins may shape the Nse4 linker to fit the ATP-free complex optimally and to facilitate opening of the complex upon ATP binding. This mechanism suggests an important role of the KITE subunits in the dynamics of the SMC5/6 complexes.\n\nAUTHOR SUMMARYThe SMC5/6 complex is member of the Structural maintenance of chromosomes (SMC) family, key organizers of both prokaryotic and eukaryotic genomes. Their architecture and dynamics (driven by ATP binding and hydrolysis) are essential for cellular processes, like chromatin segregation, condensation, replication and repair. In this paper, we described conserved mode of the Nse4 kleisin subunit binding to the SMC6 (similar to cohesin and condensin) and its bridging role. Furthermore, we showed different impact of the binding of the Nse1-Nse3 KITE subunits to the Nse4 kleisin bridge. Our study suggested that the KITE proteins modulate the stability of the SMC5/6 complex, depending on its binding and hydrolysis of ATP. Our findings uncover molecular mechanisms underlying dynamics of the SMC5/6 complexes.

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Vondrova, L., Adamus, M., Nociar, M., Kolesar, P., Oliver, A., Palecek, J. J.. 2019-09-06. A role of the Nse4 kleisin and Nse1/Nse3 KITE subunits in the ATPase cycle of SMC5/6. https://doi.org/10.1101/760678

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