Mechanistic basis for Sgo1-mediated centromere localization and function of the CPC.

The Journal of Cell Biology Pub Date : 2022-08-01 Epub Date: 2022-07-01 DOI:10.1083/jcb.202108156
Maria Alba Abad, Tanmay Gupta, Michael A Hadders, Amanda Meppelink, J Pepijn Wopken, Elizabeth Blackburn, Juan Zou, Anjitha Gireesh, Lana Buzuk, David A Kelly, Toni McHugh, Juri Rappsilber, Susanne M A Lens, A Arockia Jeyaprakash
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Abstract

Centromere association of the chromosomal passenger complex (CPC; Borealin-Survivin-INCENP-Aurora B) and Sgo1 is crucial for chromosome biorientation, a process essential for error-free chromosome segregation. Phosphorylated histone H3 Thr3 (H3T3ph; directly recognized by Survivin) and histone H2A Thr120 (H2AT120ph; indirectly recognized via Sgo1), together with CPC's intrinsic nucleosome-binding ability, facilitate CPC centromere recruitment. However, the molecular basis for CPC-Sgo1 binding and how their physical interaction influences CPC centromere localization are lacking. Here, using an integrative structure-function approach, we show that the "histone H3-like" Sgo1 N-terminal tail-Survivin BIR domain interaction acts as a hotspot essential for CPC-Sgo1 assembly, while downstream Sgo1 residues and Borealin contribute for high-affinity binding. Disrupting Sgo1-Survivin interaction abolished CPC-Sgo1 assembly and perturbed CPC centromere localization and function. Our findings reveal that Sgo1 and H3T3ph use the same surface on Survivin to bind CPC. Hence, it is likely that these interactions take place in a spatiotemporally restricted manner, providing a rationale for the Sgo1-mediated "kinetochore-proximal" CPC centromere pool.

Abstract Image

Abstract Image

Abstract Image

sgo1介导的着丝粒定位和CPC功能的机制基础。
染色体乘客复合体的着丝粒结合;Borealin-Survivin-INCENP-Aurora B)和Sgo1对染色体双向定位至关重要,这是染色体无差错分离的必要过程。磷酸化组蛋白H3 Thr3 (H3T3ph;由Survivin直接识别)和组蛋白H2A Thr120 (H2AT120ph;通过Sgo1间接识别),加上CPC固有的核小体结合能力,促进了CPC着丝粒的招募。然而,CPC- sgo1结合的分子基础以及它们的物理相互作用如何影响CPC着丝粒定位尚不清楚。本研究采用综合结构功能方法,发现Sgo1 n端尾- survivin BIR结构域相互作用是CPC-Sgo1组装的关键热点,而下游Sgo1残基和Borealin则有助于高亲和力结合。破坏Sgo1-Survivin相互作用会破坏CPC- sgo1组装,扰乱CPC着丝粒定位和功能。我们的研究结果表明Sgo1和H3T3ph在Survivin上使用相同的表面结合CPC。因此,这些相互作用很可能以一种时空限制的方式发生,为sgo1介导的“着丝点-近端”CPC着丝粒池提供了基本原理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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