Department of Physiology, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA 19104.
Department of Biochemistry and Biophysics, Penn Center for Genome Integrity, Epigenetics Institute, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA 19104.
Mol Biol Cell. 2021 Jun 15;32(13):1241-1255. doi: 10.1091/mbc.E20-07-0461. Epub 2021 May 6.
Mitotic kinetochores assemble via the hierarchical recruitment of numerous cytosolic components to the centromere region of each chromosome. However, how these orderly and localized interactions are achieved without spurious macromolecular assemblies forming from soluble kinetochore components in the cell cytosol remains poorly understood. We developed assembly assays to monitor the recruitment of green fluorescent protein-tagged recombinant proteins and native proteins from human cell extracts to inner kinetochore components immobilized on microbeads. In contrast to prior work in yeast and egg extracts, we find that human mitotic cell extracts fail to support de novo assembly of microtubule-binding subcomplexes. A subset of interactions, such as those between CENP-A-containing nucleosomes and CENP-C, are permissive under these conditions. However, the subsequent phospho-dependent binding of the Mis12 complex is less efficient, whereas recruitment of the Ndc80 complex is blocked, leading to weak microtubule-binding activity of assembled particles. Using molecular variants of the Ndc80 complex, we show that auto-inhibition of native Ndc80 complex restricts its ability to bind to the CENP-T/W complex, whereas inhibition of the Ndc80 microtubule binding is driven by a different mechanism. Together, our work reveals regulatory mechanisms that guard against the spurious formation of cytosolic microtubule-binding kinetochore particles.
有丝分裂的动粒通过将大量细胞质成分有序地招募到每条染色体的着丝粒区域来组装。然而,在细胞细胞质中可溶性动粒成分不形成错误的大分子组装的情况下,这些有序且局部的相互作用是如何实现的,目前还知之甚少。我们开发了组装测定法来监测绿色荧光蛋白标记的重组蛋白和来自人细胞提取物的天然蛋白向固定在微珠上的内动粒成分的募集。与酵母和卵提取物中的先前工作相比,我们发现人有丝分裂细胞提取物不能支持微管结合亚基的从头组装。在这些条件下,一组相互作用(例如,包含 CENP-A 的核小体与 CENP-C 之间的相互作用)是允许的。然而,随后 Mis12 复合物的磷酸依赖性结合效率较低,而 Ndc80 复合物的募集被阻断,导致组装颗粒的微管结合活性较弱。使用 Ndc80 复合物的分子变体,我们表明天然 Ndc80 复合物的自动抑制限制了其与 CENP-T/W 复合物结合的能力,而 Ndc80 微管结合的抑制是由不同的机制驱动的。总之,我们的工作揭示了防止细胞质微管结合动粒颗粒错误形成的调节机制。