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天然染色质中的组蛋白磷酸化会诱导局部结构变化,这可通过电双折射进行探测。

Histone phosphorylation in native chromatin induces local structural changes as probed by electric birefringence.

作者信息

Marion C, Martinage A, Tirard A, Roux B, Daune M, Mazen A

出版信息

J Mol Biol. 1985 Nov 20;186(2):367-79. doi: 10.1016/0022-2836(85)90111-1.

Abstract

In order to understand how the phosphorylation of histones affects the chromatin structure, we used electron microscopy, sedimentation velocity, circular dichroism and electric birefringence to monitor the salt-induced filament reversible solenoid transition of phosphorylated and native chromatin. Phosphorylation in vitro of chicken erythrocyte chromatin by cyclic-AMP-dependent protein kinase from porcine heart led to the modification of the histones H3 and H5 only, which were modified at a level of one phosphate and about three phosphate groups per molecule, respectively. In contrast to circular dichroism and sedimentation studies, which tend to suggest that phosphorylation of H3 and H5 does not affect chromatin structure, electron microscopy reveals that phosphorylation causes a relaxation of structure at low ionic strength. Electric birefringence and relaxation time measurements clearly prove that local structural changes are induced in chromatin: we observe a decrease of the steady-state birefringence with the appearance of a negative contribution in the signal and a marked increase of the flexibility of fibres. The component with the negative birefringence presents very short relaxation times, like those exhibited by small DNA fragments or individual nucleosomes. Two possibilities are then suggested. First, the conformational change is consistent with what would be expected from the presence of DNA segments loosely associated with the core histone H3. That the length of such segments could correspond to about one to two base-pairs per nucleosome strongly suggests that phosphorylation induces changes affecting some specific H3-DNA interactions only. This result could corroborate previous observations indicating that the N-terminal region of H3, where the site of phosphorylation is located, plays a decisive role in maintaining the superstructure of chromatin. Second, phosphorylation could introduce hinge points between each nucleosome. In this case, the negative birefringence results from partial orientation of the swinging nucleosomes. A possible mode of action of phosphorylation might be to weaken structural restraints imposed by histone H3, thus facilitating further condensation of chromatin.

摘要

为了了解组蛋白磷酸化如何影响染色质结构,我们使用电子显微镜、沉降速度、圆二色性和电双折射来监测磷酸化染色质和天然染色质在盐诱导下的丝状 - 可逆螺线管转变。用猪心来源的环磷酸腺苷依赖性蛋白激酶对鸡红细胞染色质进行体外磷酸化,结果发现仅组蛋白H3和H5发生了修饰,每个分子分别被修饰了一个磷酸基团和约三个磷酸基团。与倾向于表明H3和H5磷酸化不影响染色质结构的圆二色性和沉降研究相反,电子显微镜显示磷酸化在低离子强度下会导致结构松弛。电双折射和弛豫时间测量清楚地证明染色质中发生了局部结构变化:我们观察到稳态双折射降低,信号中出现负贡献,并且纤维的柔韧性显著增加。具有负双折射的组分呈现出非常短的弛豫时间,类似于小DNA片段或单个核小体所表现出的弛豫时间。由此提出了两种可能性。首先,构象变化与存在与核心组蛋白H3松散结合的DNA片段时预期的情况一致。这种片段的长度可能对应于每个核小体约一到两个碱基对,这强烈表明磷酸化仅诱导影响某些特定H3 - DNA相互作用的变化。这一结果可以证实先前的观察结果,即磷酸化位点所在的H3的N端区域在维持染色质超结构中起决定性作用。其次,磷酸化可能在每个核小体之间引入铰链点。在这种情况下,负双折射是由摆动的核小体的部分取向引起的。磷酸化的一种可能作用方式可能是削弱组蛋白H3施加的结构限制,从而促进染色质的进一步凝聚。

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