Laboratory Receptor Biology and Gene Expression, Center for Cancer Research, National Cancer Institute, Bethesda, MD 20892.
Department of Chemistry and Biochemistry, Institute for Physical Science and Technology, University of Maryland, College Park, MD 20742.
Proc Natl Acad Sci U S A. 2019 Nov 26;116(48):24066-24074. doi: 10.1073/pnas.1911880116. Epub 2019 Nov 11.
Histone variants fine-tune transcription, replication, DNA damage repair, and faithful chromosome segregation. Whether and how nucleosome variants encode unique mechanical properties to their cognate chromatin structures remains elusive. Here, using in silico and in vitro nanoindentation methods, extending to in vivo dissections, we report that histone variant nucleosomes are intrinsically more elastic than their canonical counterparts. Furthermore, binding proteins, which discriminate between histone variant nucleosomes, suppress this innate elasticity and also compact chromatin. Interestingly, when we overexpress the binding proteins in vivo, we also observe increased compaction of chromatin enriched for histone variant nucleosomes, correlating with diminished access. Taken together, these data suggest a plausible link between innate mechanical properties possessed by histone variant nucleosomes, the adaptability of chromatin states in vivo, and the epigenetic plasticity of the underlying locus.
组蛋白变体精细调节转录、复制、DNA 损伤修复和染色体的准确分离。核小体变体是否以及如何为其同源染色质结构编码独特的机械性能仍然难以捉摸。在这里,我们使用计算机模拟和体外纳米压痕方法,扩展到体内剖析,报告说组蛋白变体核小体本质上比它们的规范对应物更有弹性。此外,区分组蛋白变体核小体的结合蛋白抑制了这种固有弹性,并使染色质紧凑。有趣的是,当我们在体内过表达这些结合蛋白时,我们也观察到富含组蛋白变体核小体的染色质的紧密程度增加,与可及性降低相关。总之,这些数据表明,组蛋白变体核小体所具有的固有机械性能、体内染色质状态的适应性以及潜在基因座的表观遗传可塑性之间存在着合理的联系。