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Rad51聚合揭示了一种新的染色质重塑机制。

Rad51 polymerization reveals a new chromatin remodeling mechanism.

作者信息

Dupaigne Pauline, Lavelle Christophe, Justome Anthony, Lafosse Sophie, Mirambeau Gilles, Lipinski Marc, Piétrement Olivier, Le Cam Eric

机构信息

CNRS, Laboratoire de Microscopie Moléculaire et Cellulaire, UMR 8126 Interactions Moléculaires et Cancer, Institut de Cancérologie Gustave Roussy, Villejuif, France.

出版信息

PLoS One. 2008;3(11):e3643. doi: 10.1371/journal.pone.0003643. Epub 2008 Nov 4.

Abstract

Rad51 protein is a well known protagonist of homologous recombination in eukaryotic cells. Rad51 polymerization on single-stranded DNA and its role in presynaptic filament formation have been extensively documented. Rad51 polymerizes also on double-stranded DNA but the significance of this filament formation remains unclear. We explored the behavior of Saccharomyces cerevisiae Rad51 on dsDNA and the influence of nucleosomes on Rad51 polymerization mechanism to investigate its putative role in chromatin accessibility to recombination machinery. We combined biochemical approaches, transmission electron microscopy (TEM) and atomic force microscopy (AFM) for analysis of the effects of the Rad51 filament on chromatinized templates. Quantitative analyses clearly demonstrated the occurrence of chromatin remodeling during nucleoprotein filament formation. During Rad51 polymerization, recombinase proteins moved all the nucleosomal arrays in front of the progressing filament. This polymerization process had a powerful remodeling effect, as Rad51 destabilized the nucleosomes along considerable stretches of DNA. Similar behavior was observed with RecA. Thus, recombinase polymerization is a powerful mechanism of chromatin remodeling. These remarkable features open up new possibilities for understanding DNA recombination and reveal new types of ATP-dependent chromatin dynamics.

摘要

Rad51蛋白是真核细胞中同源重组的一个著名主角。Rad51在单链DNA上的聚合及其在突触前细丝形成中的作用已被广泛记录。Rad51也能在双链DNA上聚合,但这种细丝形成的意义仍不清楚。我们研究了酿酒酵母Rad51在双链DNA上的行为以及核小体对Rad51聚合机制的影响,以研究其在染色质对重组机制可及性中的假定作用。我们结合生化方法、透射电子显微镜(TEM)和原子力显微镜(AFM)来分析Rad51细丝对染色质化模板的影响。定量分析清楚地证明了在核蛋白细丝形成过程中发生了染色质重塑。在Rad51聚合过程中,重组酶蛋白将所有核小体阵列移到正在形成的细丝前方。这种聚合过程具有强大的重塑作用,因为Rad51使沿着相当长一段DNA的核小体不稳定。RecA也观察到了类似的行为。因此,重组酶聚合是染色质重塑的一种强大机制。这些显著特征为理解DNA重组开辟了新的可能性,并揭示了新型的ATP依赖的染色质动力学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b4ce/2574414/87ef7371f2a7/pone.0003643.g001.jpg

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