Howard Hughes Medical Institute and the Department of Biochemistry and Molecular Biology, Colorado State University, Fort Collins, CO 80523, USA.
Nucleic Acids Res. 2012 Nov 1;40(20):10139-49. doi: 10.1093/nar/gks812. Epub 2012 Aug 31.
Following acetylation, newly synthesized H3-H4 is directly transferred from the histone chaperone anti-silencing factor 1 (Asf1) to chromatin assembly factor 1 (CAF-1), another histone chaperone that is critical for the deposition of H3-H4 onto replicating DNA. However, it is unknown how CAF-1 binds and delivers H3-H4 to the DNA. Here, we show that CAF-1 binds recombinant H3-H4 with 10- to 20-fold higher affinity than H2A-H2B in vitro, and H3K56Ac increases the binding affinity of CAF-1 toward H3-H4 2-fold. These results provide a quantitative thermodynamic explanation for the specific H3-H4 histone chaperone activity of CAF-1. Surprisingly, H3-H4 exists as a dimer rather than as a canonical tetramer at mid-to-low nanomolar concentrations. A single CAF-1 molecule binds a cross-linked (H3-H4)2 tetramer, or two H3-H4 dimers that contain mutations at the (H3-H4)2 tetramerization interface. These results suggest that CAF-1 binds to two H3-H4 dimers in a manner that promotes formation of a (H3-H4)2 tetramer. Consistent with this idea, we confirm that CAF-1 synchronously binds two H3-H4 dimers derived from two different histone genes in vivo. Together, the data illustrate a clear mechanism for CAF-1-associated H3-H4 chaperone activity in the context of de novo nucleosome (re)assembly following DNA replication.
在乙酰化之后,新合成的 H3-H4 直接从组蛋白伴侣抗沉默因子 1(Asf1)转移到染色质组装因子 1(CAF-1),CAF-1 是将 H3-H4 沉积到复制 DNA 上的关键组蛋白伴侣。然而,尚不清楚 CAF-1 如何结合并将 H3-H4 递送到 DNA。在这里,我们表明 CAF-1 在体外以比 H2A-H2B 高 10 到 20 倍的亲和力结合重组 H3-H4,并且 H3K56Ac 将 CAF-1 对 H3-H4 的结合亲和力提高了 2 倍。这些结果为 CAF-1 对 H3-H4 组蛋白伴侣的特异性提供了定量热力学解释。令人惊讶的是,H3-H4 在中低纳摩尔浓度下以二聚体而不是经典的四聚体形式存在。单个 CAF-1 分子结合交联的(H3-H4)2 四聚体,或两个包含在(H3-H4)2 四聚化界面处突变的 H3-H4 二聚体。这些结果表明 CAF-1 以促进(H3-H4)2 四聚体形成的方式结合两个 H3-H4 二聚体。与这一想法一致,我们在体内证实 CAF-1 同步结合来自两个不同组蛋白基因的两个 H3-H4 二聚体。总之,这些数据说明了在 DNA 复制后从头组装核小体(重新)的情况下,CAF-1 相关的 H3-H4 伴侣活性的明确机制。