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沿断裂的DNA链形成动态γ-H2AX结构域受到ATM和MDC1的明显调控,并取决于染色质中的H2AX密度。

Formation of dynamic gamma-H2AX domains along broken DNA strands is distinctly regulated by ATM and MDC1 and dependent upon H2AX densities in chromatin.

作者信息

Savic Velibor, Yin Bu, Maas Nancy L, Bredemeyer Andrea L, Carpenter Andrea C, Helmink Beth A, Yang-Iott Katherine S, Sleckman Barry P, Bassing Craig H

机构信息

Cell and Molecular Biology Graduate Program, University of Pennsylvania School of Medicine, Philadelphia, PA 19104, USA.

出版信息

Mol Cell. 2009 May 15;34(3):298-310. doi: 10.1016/j.molcel.2009.04.012.

Abstract

A hallmark of the cellular response to DNA double-strand breaks (DSBs) is histone H2AX phosphorylation in chromatin to generate gamma-H2AX. Here, we demonstrate that gamma-H2AX densities increase transiently along DNA strands as they are broken and repaired in G1 phase cells. The region across which gamma-H2AX forms does not spread as DSBs persist; rather, gamma-H2AX densities equilibrate at distinct levels within a fixed distance from DNA ends. Although both ATM and DNA-PKcs generate gamma-H2AX, only ATM promotes gamma-H2AX formation to maximal distance and maintains gamma-H2AX densities. MDC1 is essential for gamma-H2AX formation at high densities near DSBs, but not for generation of gamma-H2AX over distal sequences. Reduced H2AX levels in chromatin impair the density, but not the distance, of gamma-H2AX formed. Our data suggest that H2AX fuels a gamma-H2AX self-reinforcing mechanism that retains MDC1 and activated ATM in chromatin near DSBs and promotes continued local phosphorylation of H2AX.

摘要

细胞对DNA双链断裂(DSB)作出反应的一个标志是染色质中的组蛋白H2AX发生磷酸化,从而产生γ-H2AX。在此,我们证明,在G1期细胞中,当DNA链断裂并修复时,γ-H2AX密度会沿着DNA链短暂增加。随着DSB持续存在,γ-H2AX形成的区域不会扩散;相反,γ-H2AX密度在距DNA末端固定距离内达到不同水平的平衡。尽管ATM和DNA-PKcs都会产生γ-H2AX,但只有ATM能促进γ-H2AX形成至最大距离并维持γ-H2AX密度。MDC1对于在DSB附近高密度形成γ-H2AX至关重要,但对于在远端序列上产生γ-H2AX则并非必需。染色质中H2AX水平降低会损害γ-H2AX形成的密度,但不会影响其形成的距离。我们的数据表明,H2AX推动了一种γ-H2AX自我增强机制,该机制将MDC1和活化的ATM保留在DSB附近的染色质中,并促进H2AX的持续局部磷酸化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/65a2/2744111/939decb50e41/nihms112078f1.jpg

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