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sNASP and ASF1A function through both competitive and compatible modes of histone binding

机译:sNASP和ASF1A通过竞争和兼容的组蛋白结合模式发挥功能

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摘要

Histone chaperones are proteins that interact with histones to regulate the thermodynamic process of nucleosome assembly. sNASP and ASF1 are conserved histone chaperones that interact with histones H3 and H4 and are found in a multi-chaperoning complex in vivo. Previously we identified a short peptide motif within H3 that binds to the TPR domain of sNASP with nanomolar affinity. Interestingly, this peptide motif is sequestered within the known ASF1–H3–H4 interface, raising the question of how these two proteins are found in complex together with histones when they share the same binding site. Here, we show that sNASP contains at least two additional histone interaction sites that, unlike the TPR–H3 peptide interaction, are compatible with ASF1A binding. These surfaces allow ASF1A to form a quaternary complex with both sNASP and H3–H4. Furthermore, we demonstrate that sNASP makes a specific complex with H3 on its own in vitro, but not with H4, suggesting that it could work upstream of ASF1A. Further, we show that sNASP and ASF1A are capable of folding an H3–H4 dimer in vitro under native conditions. These findings reveal a network of binding events that may promote the entry of histones H3 and H4 into the nucleosome assembly pathway.
机译:组蛋白伴侣蛋白是与组蛋白相互作用以调节核小体组装热力学过程的蛋白质。 sNASP和ASF1是保守的组蛋白伴侣,可与组蛋白H3和H4相互作用,并存在于体内的多分子复合物中。以前,我们在H3中鉴定了一个短肽基序,该基序以纳摩尔亲和力与sNASP的TPR域结合。有趣的是,这种肽基序被隔离在已知的ASF1-H3-H4界面内,这引发了一个问题,即当这两个蛋白具有相同的结合位点时,它们如何与组蛋白一起复合存在。在这里,我们显示sNASP包含至少两个额外的组蛋白相互作用位点,与TPR-H3肽相互作用不同,它们与ASF1A结合相容。这些表面允许ASF1A与sNASP和H3-H4形成四元络合物。此外,我们证明sNASP可以在体外单独与H3形成特定的复合物,但与H4无关,这表明它可以在ASF1A的上游起作用。此外,我们显示sNASP和ASF1A能够在天然条件下体外折叠H3-H4二聚体。这些发现揭示了结合事件的网络,其可以促进组蛋白H3和H4进入核小体组装途径。

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