Chen Shoudeng, Rufiange Anne, Huang Hongda, Rajashankar Kanagalaghatta R, Nourani Amine, Patel Dinshaw J
Structural Biology Program, Memorial Sloan-Kettering Cancer Center, New York, New York 10065, USA;
Groupe St-Patrick de Recherche en Oncologie Fondamentale, L'Hôtel-Dieu de Québec (Université Laval), Québec G1R 2J6, Canada;
Genes Dev. 2015 Jun 15;29(12):1326-40. doi: 10.1101/gad.261115.115.
Cells use specific mechanisms such as histone chaperones to abrogate the inherent barrier that the nucleosome poses to transcribing polymerases. The current model postulates that nucleosomes can be transiently disrupted to accommodate passage of RNA polymerases and that histones H3 and H4 possess their own chaperones dedicated to the recovery of nucleosomes. Here, we determined the crystal structure of the conserved C terminus of human Suppressors of Ty insertions 2 (hSpt2C) chaperone bound to an H3/H4 tetramer. The structural studies demonstrate that hSpt2C is bound to the periphery of the H3/H4 tetramer, mimicking the trajectory of nucleosomal-bound DNA. These structural studies have been complemented with in vitro binding and in vivo functional studies on mutants that disrupt key intermolecular contacts involving two acidic patches and hydrophobic residues on Spt2C. We show that contacts between both human and yeast Spt2C with the H3/H4 tetramer are required for the suppression of H3/H4 exchange as measured by H3K56ac and new H3 deposition. These interactions are also crucial for the inhibition of spurious transcription from within coding regions. Together, our data indicate that Spt2 interacts with the periphery of the H3/H4 tetramer and promotes its recycling in the wake of RNA polymerase.
细胞利用诸如组蛋白伴侣等特定机制来消除核小体对转录聚合酶构成的固有障碍。当前模型假定,核小体可被短暂破坏以容纳RNA聚合酶通过,并且组蛋白H3和H4拥有各自专门用于核小体恢复的伴侣。在此,我们确定了与H3/H4四聚体结合的人类Ty插入抑制因子2(hSpt2C)伴侣保守C末端的晶体结构。结构研究表明,hSpt2C结合在H3/H4四聚体的外围,模拟了核小体结合DNA的轨迹。这些结构研究通过对破坏涉及Spt2C上两个酸性斑块和疏水残基的关键分子间接触的突变体进行体外结合和体内功能研究得到了补充。我们表明,通过H3K56ac和新H3沉积测量,人类和酵母Spt2C与H3/H4四聚体之间的接触对于抑制H3/H4交换是必需的。这些相互作用对于抑制编码区域内的假转录也至关重要。总之,我们的数据表明Spt2与H3/H4四聚体的外围相互作用,并在RNA聚合酶之后促进其循环利用。