Ohta Shinya, Montaño-Gutierrez Luis F, de Lima Alves Flavia, Ogawa Hiromi, Toramoto Iyo, Sato Nobuko, Morrison Ciaran G, Takeda Shunichi, Hudson Damien F, Rappsilber Juri, Earnshaw William C
From the ‡Center for Innovative and Translational Medicine, Medical School, Kochi University Kohasu, Oko-cho, Nankoku, Kochi 783-8505, Japan; §Wellcome Trust Centre for Cell Biology, School of Biological Sciences, University of Edinburgh, Mayfield Road, Edinburgh EH9 3BF, UK;
§Wellcome Trust Centre for Cell Biology, School of Biological Sciences, University of Edinburgh, Mayfield Road, Edinburgh EH9 3BF, UK;
Mol Cell Proteomics. 2016 Aug;15(8):2802-18. doi: 10.1074/mcp.M116.057885. Epub 2016 May 26.
Packaging of DNA into condensed chromosomes during mitosis is essential for the faithful segregation of the genome into daughter nuclei. Although the structure and composition of mitotic chromosomes have been studied for over 30 years, these aspects are yet to be fully elucidated. Here, we used stable isotope labeling with amino acids in cell culture to compare the proteomes of mitotic chromosomes isolated from cell lines harboring conditional knockouts of members of the condensin (SMC2, CAP-H, CAP-D3), cohesin (Scc1/Rad21), and SMC5/6 (SMC5) complexes. Our analysis revealed that these complexes associate with chromosomes independently of each other, with the SMC5/6 complex showing no significant dependence on any other chromosomal proteins during mitosis. To identify subtle relationships between chromosomal proteins, we employed a nano Random Forest (nanoRF) approach to detect protein complexes and the relationships between them. Our nanoRF results suggested that as few as 113 of 5058 detected chromosomal proteins are functionally linked to chromosome structure and segregation. Furthermore, nanoRF data revealed 23 proteins that were not previously suspected to have functional interactions with complexes playing important roles in mitosis. Subsequent small-interfering-RNA-based validation and localization tracking by green fluorescent protein-tagging highlighted novel candidates that might play significant roles in mitotic progression.
在有丝分裂期间将DNA包装成浓缩染色体对于基因组准确分离到子核中至关重要。尽管对有丝分裂染色体的结构和组成已经研究了30多年,但这些方面仍有待充分阐明。在这里,我们使用细胞培养中氨基酸的稳定同位素标记来比较从携带凝聚素(SMC2、CAP-H、CAP-D3)、黏连蛋白(Scc1/Rad21)和SMC5/6(SMC5)复合体成员条件性敲除的细胞系中分离出的有丝分裂染色体的蛋白质组。我们的分析表明,这些复合体彼此独立地与染色体结合,在有丝分裂期间,SMC5/6复合体对任何其他染色体蛋白没有明显依赖性。为了确定染色体蛋白之间的微妙关系,我们采用了纳米随机森林(nanoRF)方法来检测蛋白复合体及其之间的关系。我们的nanoRF结果表明,在检测到的5058种染色体蛋白中,只有113种在功能上与染色体结构和分离相关。此外,nanoRF数据揭示了23种以前未被怀疑与在有丝分裂中起重要作用的复合体有功能相互作用的蛋白质。随后基于小干扰RNA的验证以及通过绿色荧光蛋白标记进行的定位追踪突出了可能在有丝分裂进程中发挥重要作用的新候选蛋白。