Single-stranded nucleic acid binding and coacervation by linker histone H1

连接器 凝聚 核酸 DNA 组蛋白H1 生物 连接器DNA 生物物理学 组蛋白 细胞生物学 化学 生物化学 计算机科学 操作系统
作者
Rachel Leicher,Adewola Osunsade,Gabriella N. L. Chua,Sarah Faulkner,Andrew P. Latham,John W. Watters,Tuan Nguyen,Emily C. Beckwitt,Sophia Christodoulou-Rubalcava,Paul G. Young,Bin Zhang,Yael David,Shixin Liu
出处
期刊:Nature Structural & Molecular Biology [Nature Portfolio]
卷期号:29 (5): 463-471 被引量:45
标识
DOI:10.1038/s41594-022-00760-4
摘要

The H1 linker histone family is the most abundant group of eukaryotic chromatin-binding proteins. However, their contribution to chromosome structure and function remains incompletely understood. Here we use single-molecule fluorescence and force microscopy to directly visualize the behavior of H1 on various nucleic acid and nucleosome substrates. We observe that H1 coalesces around single-stranded DNA generated from tension-induced DNA duplex melting. Using a droplet fusion assay controlled by optical tweezers, we find that single-stranded nucleic acids mediate the formation of gel-like H1 droplets, whereas H1–double-stranded DNA and H1–nucleosome droplets are more liquid-like. Molecular dynamics simulations reveal that multivalent and transient engagement of H1 with unpaired DNA strands drives their enhanced phase separation. Using eGFP-tagged H1, we demonstrate that inducing single-stranded DNA accumulation in cells causes an increase in H1 puncta that are able to fuse. We further show that H1 and Replication Protein A occupy separate nuclear regions, but that H1 colocalizes with the replication factor Proliferating Cell Nuclear Antigen, particularly after DNA damage. Overall, our results provide a refined perspective on the diverse roles of H1 in genome organization and maintenance, and indicate its involvement at stalled replication forks. Using single-molecule imaging and manipulation, the authors show linker histone H1 preferentially forms phase-separated droplets with single-stranded nucleic acids over double-stranded DNA and nucleosomes, suggesting a noncanonical nuclear function.
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