Department of Biochemistry, Gene Center, Center for Integrated Protein Sciences and Munich Center for Advanced Photonics, Ludwig-Maximilians University Munich, Feodor-Lynen-Str 25, D-81377 Munich, Germany.
Nucleic Acids Res. 2010 Jun;38(10):3454-65. doi: 10.1093/nar/gkq038. Epub 2010 Feb 5.
Structural Maintenance of Chromosomes (SMC) proteins are vital for a wide range of processes including chromosome structure and dynamics, gene regulation and DNA repair. Eukaryotes have three SMC complexes, consisting of heterodimeric pairs of six different SMC proteins along with several specific regulatory subunits. In addition to their other functions, all three SMC complexes play distinct roles in DNA repair. Cohesin (SMC1-SMC3) is involved in DNA double-strand break repair, condensin (SMC2-SMC4) participates in single-strand break (SSB) repair, and the SMC5-SMC6 complex functions in various DNA repair pathways. SMC proteins consist of N- and C-terminal domains that fold back onto each other to create an ATPase 'head' domain, connected to a central 'hinge' domain via long coiled-coils. The hinge domain mediates dimerization of SMC proteins and binds DNA, but it is not clear to what purpose this activity serves. We studied the structure and function of the condensin hinge domain from mouse. While the SMC hinge domain structure is largely conserved from prokaryotes to eukaryotes, its function seems to have diversified throughout the course of evolution. The condensin hinge domain preferentially binds single-stranded DNA. We propose that this activity plays a role in the SSB repair function of the condensin complex.
结构维持染色体(SMC)蛋白对于广泛的过程至关重要,包括染色体结构和动态、基因调节和 DNA 修复。真核生物有三种 SMC 复合物,由六种不同的 SMC 蛋白的异二聚体对组成,还有几个特定的调节亚基。除了它们的其他功能外,所有三种 SMC 复合物在 DNA 修复中都发挥着不同的作用。黏合蛋白(SMC1-SMC3)参与 DNA 双链断裂修复,凝聚蛋白(SMC2-SMC4)参与单链断裂(SSB)修复,SMC5-SMC6 复合物则在各种 DNA 修复途径中发挥作用。SMC 蛋白由 N 端和 C 端结构域组成,这些结构域折叠在一起形成一个 ATP 酶“头”结构域,通过长的卷曲螺旋与中央“铰链”结构域相连。铰链结构域介导 SMC 蛋白的二聚化和与 DNA 的结合,但不清楚这种活性的目的是什么。我们研究了来自小鼠的凝聚蛋白铰链域的结构和功能。虽然 SMC 铰链结构域的结构从原核生物到真核生物基本保持不变,但它的功能似乎在进化过程中已经多样化。凝聚蛋白铰链域优先结合单链 DNA。我们提出,这种活性在凝聚蛋白复合物的 SSB 修复功能中发挥作用。