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HeLa S-3细胞周期中不同组蛋白1亚型的磷酸化状态及其与染色质功能的关系。

Phosphorylation states of different histone 1 subtypes and their relationship to chromatin functions during the HeLa S-3 cell cycle.

作者信息

Ajiro K, Borun T W, Cohen L H

出版信息

Biochemistry. 1981 Mar 17;20(6):1445-54. doi: 10.1021/bi00509a007.

Abstract

The histone 1 (H1) fraction of HeLa S-3 cells contains two principal subtypes, H1A (Mr approximately 21 000) and H1B (Mr approximately 22 000). In G1 cells, the H1 molecules are distributed among several phosphorylation states, most H1A molecules containing 0 or 1 phosphate groups and most H1B molecules containing 0, 1, 2, or 3 phosphate groups. Both subtypes undergo a general increase in phosphorylation levels of approximately 1 P/mol during the S phase and a further increase or 3--4 P/mol during mitosis. These two increases affect most of the H1 molecules and thus reflect phosphorylations occurring widely throughout the chromatin, presumably in association with replication and mitotic chromosome condensation. During all these periods, multiple phosphorylation levels of H1 molecules persist, as does the phosphorylation differential between H1A and H1B. Thus, there appear to be phosphorylation states that only some of the H1 molecules occupy, a fact that may be related to the conformational diversity in interphase and mitotic chromatin. The existence of differences between H1A and H1B phosphorylation states throughout the cell cycle, and within a single cell type, is in accord with the hypothesis that the H1 subtypes are functionally distinct, such that subtype-specific phosphorylations contribute to the control of chromatin organization.

摘要

海拉S-3细胞的组蛋白1(H1)组分包含两种主要亚型,即H1A(相对分子质量约为21 000)和H1B(相对分子质量约为22 000)。在G1期细胞中,H1分子分布于几种磷酸化状态,大多数H1A分子含有0或1个磷酸基团,而大多数H1B分子含有0、1、2或3个磷酸基团。在S期,这两种亚型的磷酸化水平普遍增加约1个磷酸基团/摩尔,在有丝分裂期间进一步增加至3 - 4个磷酸基团/摩尔。这两次增加影响了大多数H1分子,因此反映了整个染色质广泛发生的磷酸化,推测与复制和有丝分裂染色体凝聚有关。在所有这些时期,H1分子的多种磷酸化水平持续存在,H1A和H1B之间的磷酸化差异也同样存在。因此,似乎存在一些只有部分H1分子占据的磷酸化状态,这一事实可能与间期和有丝分裂染色质的构象多样性有关。在整个细胞周期以及单一细胞类型内,H1A和H1B磷酸化状态存在差异,这与H1亚型在功能上不同的假设一致,即亚型特异性磷酸化有助于染色质组织的调控。

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