Eskiw Christopher H, Dellaire Graham, Mymryk Joe S, Bazett-Jones David P
Programme in Cell Biology, The Hospital for Sick Children, Toronto, Canada.
J Cell Sci. 2003 Nov 1;116(Pt 21):4455-66. doi: 10.1242/jcs.00758. Epub 2003 Sep 16.
The promyelocytic leukemia (PML) protein has been implicated in many cellular pathways, but it is unclear whether the accumulation of PML and other proteins into PML nuclear bodies is a regulated or random process. In this paper we have used a variety of physiological stresses, including heat stress, Cd+2 exposure and adenovirus E1A expression, as tools to study the principles underlying the assembly/disassembly, integrity and dynamic behavior of PML bodies. Using live-cell imaging and immunofluorescence microscopy, we observe that PML bodies are positionally stable over time intervals of a few hours. After stress, however, microstructures form as a result of fission or budding from the surface of 'parental' PML bodies. Since new PML bodies do not form at new locations, and the relative sizes observed before heat shock are preserved after recovery, we conclude that there are pre-determined locations for PML bodies, and that they are not random accumulations of protein. Over-expression of small ubiquitin-like modifier (SUMO-1) prevents stress-induced disassembly of PML bodies, implicating SUMO-1 as a key regulator of PML body integrity. Stress-induced fission of SUMO-1-deficient microstructures from parental PML bodies may be a mechanism to change local chromatin domain environments by the dispersal of protein factors. PML bodies may provide a useful paradigm for the dynamics and integrity of other supramolecular protein complexes involved in processes such as transcription, RNA processing DNA repair and replication.
早幼粒细胞白血病(PML)蛋白参与了许多细胞信号通路,但尚不清楚PML及其他蛋白在PML核小体中的积累是一个受调控的过程还是随机过程。在本文中,我们利用多种生理应激因素,包括热应激、镉离子暴露和腺病毒E1A表达,作为工具来研究PML核小体组装/拆卸、完整性和动态行为的潜在机制。通过活细胞成像和免疫荧光显微镜观察,我们发现PML核小体在数小时的时间间隔内位置稳定。然而,应激后,由于“亲本”PML核小体表面的裂变或出芽会形成微观结构。由于新的PML核小体不会在新位置形成,且热休克前观察到的相对大小在恢复后得以保留,我们得出结论,PML核小体有预先确定的位置,并非蛋白质的随机聚集。小泛素样修饰物(SUMO-1)的过表达可防止应激诱导的PML核小体解体,这表明SUMO-1是PML核小体完整性的关键调节因子。应激诱导的SUMO-1缺陷型微观结构从亲本PML核小体上裂变,可能是通过蛋白质因子的分散来改变局部染色质结构域环境的一种机制。PML核小体可能为参与转录、RNA加工、DNA修复和复制等过程的其他超分子蛋白复合物的动态变化和完整性提供一个有用的范例。