PML核体在活细胞中的装配动力学。

Peter Brand, Thorsten Lenser, Peter Hemmerich
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引用次数: 74

摘要

哺乳动物细胞核包含多种细胞器或核体,这些细胞器或核体有助于关键的核功能。早幼粒细胞白血病核小体(PML NBs)参与细胞凋亡、抗病毒反应、DNA损伤反应和染色质结构的调控,但其在这些核通路中的确切生化功能尚不清楚。解决这个问题的一个策略是评估活细胞中这些大分子组件的组成部分的生物物理特性。在这项研究中,我们通过活细胞成像结合数学建模来确定PML NB组装动力学。首次在缺乏内源性PML的细胞中测量了PML体形成的动力学。我们发现所有六种人类核PML同工异构体都能在PML阴性细胞中形成核体。在PML阳性细胞中,所有同种异构体在NBs上都表现出各自的交换速率,但PML I、II、III和IV在PML阴性细胞的核体上是静态的,这表明这些同种异构体需要额外的蛋白质伙伴才能进行有效的交换。PML V在PML Nbs处翻转非常缓慢,这支持了这种同工异构体具有结构功能的观点。我们还证明了PML在赖氨酸位置K160和/或K490的sumo化是体内核体形成所必需的。我们提出了一个模型,其中PML的同种异构体特定停留时间提供了结构稳定性,作为支架功能和灵活性,以吸引特定的核蛋白在核体表面进行有效的生化反应。MCS代码:92C37。
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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Assembly dynamics of PML nuclear bodies in living cells.

The mammalian cell nucleus contains a variety of organelles or nuclear bodies which contribute to key nuclear functions. Promyelocytic leukemia nuclear bodies (PML NBs) are involved in the regulation of apoptosis, antiviral responses, the DNA damage response and chromatin structure, but their precise biochemical function in these nuclear pathways is unknown. One strategy to tackle this problem is to assess the biophysical properties of the component parts of these macromolecular assemblies in living cells. In this study we determined PML NB assembly dynamics by live cell imaging, combined with mathematical modeling. For the first time, dynamics of PML body formation were measured in cells lacking endogenous PML. We show that all six human nuclear PML isoforms are able to form nuclear bodies in PML negative cells. All isoforms exhibit individual exchange rates at NBs in PML positive cells but PML I, II, III and IV are static at nuclear bodies in PML negative cells, suggesting that these isoforms require additional protein partners for efficient exchange. PML V turns over at PML Nbs very slowly supporting the idea of a structural function for this isoform. We also demonstrate that SUMOylation of PML at Lysine positions K160 and/or K490 are required for nuclear body formation in vivo.We propose a model in which the isoform specific residence times of PML provide both, structural stability to function as a scaffold and flexibility to attract specific nuclear proteins for efficient biochemical reactions at the surface of nuclear bodies.MCS code: 92C37.

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