Panizza S, Tanaka T, Hochwagen A, Eisenhaber F, Nasmyth K
Research Institute of Molecular Pathology, Dr Bohr-gasse 7, A-1030 Vienna, Austria.
Curr Biol. 2000;10(24):1557-64. doi: 10.1016/s0960-9822(00)00854-x.
Sister chromatid cohesion depends on a complex called cohesin, which contains at least four subunits: Smc1, Smc3, Scc1 and Scc3. Cohesion is established during DNA replication, is partially dismantled in many, but not all, organisms during prophase, and is finally destroyed at the metaphase-to-anaphase transition. A quite separate protein called Spo76 is required for sister chromatid cohesion during meiosis in the ascomycete Sordaria. Spo76-like proteins are highly conserved amongst eukaryotes and a homologue in Aspergillus nidulans, called BimD, is required for the completion of mitosis. The isolation of the cohesin subunit Smc3 as a suppressor of BimD mutations suggests that Spo76/BimD might function in the same process as cohesin.
We show here that the yeast homologue of Spo76, called Pds5, is essential for establishing sister chromatid cohesion and maintaining it during metaphase. We also show that Pds5 co-localizes with cohesin on chromosomes, that the chromosomal association of Pds5 and cohesin is interdependent, that Scc1 recruits Pds5 to chromosomes in G1 and that its cleavage causes dissociation of Pds5 from chromosomes at the metaphase-to-anaphase transition.
Our data show that Pds5 functions as part of the same process as cohesin. Sequence similarities and secondary structure predictions indicate that Pds5 consists of tandemly repeated HEAT repeats, and might therefore function as a protein-protein interaction scaffold, possibly in the cohesin-DNA complex assembly.
姐妹染色单体黏连依赖于一种名为黏连蛋白的复合体,该复合体至少包含四个亚基:Smc1、Smc3、Scc1和Scc3。黏连在DNA复制过程中建立,在许多(但并非所有)生物体的前期部分被拆解,并最终在中期到后期的转变过程中被破坏。在子囊菌粗糙脉孢菌的减数分裂过程中,姐妹染色单体黏连需要一种完全不同的名为Spo76的蛋白质。Spo76样蛋白在真核生物中高度保守,构巢曲霉中的一种同源物BimD是有丝分裂完成所必需的。黏连蛋白亚基Smc3作为BimD突变的抑制因子被分离出来,这表明Spo76/BimD可能在与黏连蛋白相同的过程中发挥作用。
我们在此表明,Spo76的酵母同源物Pds5对于建立姐妹染色单体黏连并在中期维持该黏连至关重要。我们还表明,Pds5与黏连蛋白在染色体上共定位,Pds5与黏连蛋白的染色体结合是相互依赖的,Scc1在G1期将Pds5招募到染色体上,并且其切割导致Pds5在中期到后期的转变过程中从染色体上解离。
我们的数据表明,Pds5与黏连蛋白在同一过程中发挥作用。序列相似性和二级结构预测表明,Pds5由串联重复的HEAT重复序列组成,因此可能作为蛋白质-蛋白质相互作用支架发挥作用,可能参与黏连蛋白-DNA复合体的组装。