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单分子研究揭示 Hmo1 而非 Hho1 促进芽殖酵母中的染色质组装。

Single-molecule study reveals Hmo1, not Hho1, promotes chromatin assembly in budding yeast.

机构信息

State Key Laboratory of Microbial Resources, Institute of Microbiology, Chinese Academy of Sciences , Beijing, China.

College of Life Sciences, University of Chinese Academy of Sciences , Beijing, China.

出版信息

mBio. 2023 Aug 31;14(4):e0099323. doi: 10.1128/mbio.00993-23. Epub 2023 Jul 11.

Abstract

Linker histone H1 plays a crucial role in various biological processes, including nucleosome stabilization, high-order chromatin structure organization, gene expression, and epigenetic regulation in eukaryotic cells. Unlike higher eukaryotes, little about the linker histone in is known. Hho1 and Hmo1 are two long-standing controversial histone H1 candidates in budding yeast. In this study, we directly observed at the single-molecule level that Hmo1, but not Hho1, is involved in chromatin assembly in the yeast nucleoplasmic extracts (YNPE), which can replicate the physiological condition of the yeast nucleus. The presence of Hmo1 facilitates the assembly of nucleosomes on DNA in YNPE, as revealed by single-molecule force spectroscopy. Further single-molecule analysis showed that the lysine-rich -terminal domain (CTD) of Hmo1 is essential for the function of chromatin compaction, while the second globular domain at the -terminus of Hho1 impairs its ability. In addition, Hmo1, but not Hho1, forms condensates with double-stranded DNA via reversible phase separation. The phosphorylation fluctuation of Hmo1 coincides with metazoan H1 during the cell cycle. Our data suggest that Hmo1, but not Hho1, possesses some functionality similar to that of linker histone in , even though some properties of Hmo1 differ from those of a canonical linker histone H1. Our study provides clues for the linker histone H1 in budding yeast and provides insights into the evolution and diversity of histone H1 across eukaryotes. IMPORTANCE There has been a long-standing debate regarding the identity of linker histone H1 in budding yeast. To address this issue, we utilized YNPE, which accurately replicate the physiological conditions in yeast nuclei, in combination with total internal reflection fluorescence microscopy and magnetic tweezers. Our findings demonstrated that Hmo1, rather than Hho1, is responsible for chromatin assembly in budding yeast. Additionally, we found that Hmo1 shares certain characteristics with histone H1, including phase separation and phosphorylation fluctuations throughout the cell cycle. Furthermore, we discovered that the lysine-rich domain of Hho1 is buried by its second globular domain at the -terminus, resulting in the loss of function that is similar to histone H1. Our study provides compelling evidence to suggest that Hmo1 shares linker histone H1 function in budding yeast and contributes to our understanding of the evolution of linker histone H1 across eukaryotes.

摘要

组蛋白 H1 发挥着至关重要的作用,参与各种生物学过程,包括核小体稳定、高级染色质结构组织、基因表达和真核细胞中的表观遗传调控。与高等真核生物不同,人们对 中的组蛋白 H1 知之甚少。Hho1 和 Hmo1 是芽殖酵母中两个长期存在争议的组蛋白 H1 候选物。在这项研究中,我们在单分子水平上直接观察到,在酵母核质提取物(YNPE)中,Hmo1 而不是 Hho1 参与染色质组装,YNPE 可以复制酵母细胞核的生理条件。单分子力谱学揭示,Hmo1 的存在促进了 YNPE 中核小体在 DNA 上的组装。进一步的单分子分析表明,Hmo1 的富含赖氨酸的 C 末端结构域(CTD)对于染色质紧缩功能至关重要,而 Hho1 的 C 末端的第二个球状结构域则会损害其功能。此外,Hmo1 而不是 Hho1 通过可逆相分离与双链 DNA 形成凝聚体。Hmo1 的磷酸化波动与细胞周期中的后生动物 H1 相吻合。我们的数据表明,Hmo1 具有与 中的组蛋白 H1 相似的某些功能,即使 Hmo1 的某些性质与典型的组蛋白 H1 不同。我们的研究为芽殖酵母中的组蛋白 H1 提供了线索,并深入了解了真核生物中组蛋白 H1 的进化和多样性。重要性 关于芽殖酵母中组蛋白 H1 的身份一直存在争议。为了解决这个问题,我们利用 YNPE,结合全内反射荧光显微镜和磁镊,准确模拟酵母核内的生理条件。我们的研究结果表明,Hmo1 而不是 Hho1 负责芽殖酵母中的染色质组装。此外,我们发现 Hmo1 与组蛋白 H1 具有某些共同特征,包括整个细胞周期中的相分离和磷酸化波动。此外,我们发现 Hho1 的富含赖氨酸的结构域被其 C 末端的第二个球状结构域掩盖,导致功能丧失,这类似于组蛋白 H1。我们的研究提供了有力的证据表明,Hmo1 在芽殖酵母中具有组蛋白 H1 的连接子功能,并有助于我们理解真核生物中连接子组蛋白 H1 的进化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ceaa/10470511/d7097f3d26c4/mbio.00993-23.f001.jpg

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