From the Genome Dynamics Project, Department of Genome Medicine, Tokyo Metropolitan Institute of Medical Science, 2-1-6 Kamikitazawa, Setagaya-ku, Tokyo 156-8506, Japan.
From the Genome Dynamics Project, Department of Genome Medicine, Tokyo Metropolitan Institute of Medical Science, 2-1-6 Kamikitazawa, Setagaya-ku, Tokyo 156-8506, Japan
J Biol Chem. 2018 Mar 9;293(10):3607-3624. doi: 10.1074/jbc.RA117.000446. Epub 2018 Jan 18.
Rap1-interacting protein 1 (Rif1) regulates telomere length in budding yeast. We previously reported that, in metazoans and fission yeast, Rif1 also plays pivotal roles in controlling genome-wide DNA replication timing. We proposed that Rif1 may assemble chromatin compartments that contain specific replication-timing domains by promoting chromatin loop formation. Rif1 also is involved in DNA lesion repair, restart after replication fork collapse, anti-apoptosis activities, replicative senescence, and transcriptional regulation. Although multiple physiological functions of Rif1 have been characterized, biochemical and structural information on mammalian Rif1 is limited, mainly because of difficulties in purifying the full-length protein. Here, we expressed and purified the 2418-amino-acid-long, full-length murine Rif1 as well as its partially truncated variants in human 293T cells. Hydrodynamic analyses indicated that Rif1 forms elongated or extended homo-oligomers in solution, consistent with the presence of a HEAT-type helical repeat segment known to adopt an elongated shape. We also observed that the purified murine Rif1 bound G-quadruplex (G4) DNA with high specificity and affinity, as was previously shown for Rif1 from fission yeast. Both the N-terminal (HEAT-repeat) and C-terminal segments were involved in oligomer formation and specifically bound G4 DNA, and the central intrinsically disordered polypeptide segment increased the affinity for G4. Of note, pulldown assays revealed that Rif1 simultaneously binds multiple G4 molecules. Our findings support a model in which Rif1 modulates chromatin loop structures through binding to multiple G4 assemblies and by holding chromatin fibers together.
Rap1 相互作用蛋白 1(Rif1)调节芽殖酵母中的端粒长度。我们之前报道过,在后生动物和裂殖酵母中,Rif1 还在控制全基因组 DNA 复制时间方面发挥着关键作用。我们提出 Rif1 可能通过促进染色质环形成来组装包含特定复制时间域的染色质隔室。Rif1 还参与 DNA 损伤修复、复制叉崩溃后的重启动、抗凋亡活性、复制性衰老和转录调控。尽管 Rif1 的多种生理功能已被表征,但哺乳动物 Rif1 的生化和结构信息有限,主要是因为难以纯化全长蛋白。在这里,我们在人 293T 细胞中表达和纯化了全长 2418 个氨基酸的全长鼠 Rif1 及其部分截断变体。流体动力学分析表明 Rif1 在溶液中形成拉长或延伸的同型寡聚物,这与存在已知采用拉长形状的 HEAT 型螺旋重复片段一致。我们还观察到纯化的鼠 Rif1 与 G-四链体(G4)DNA 具有高度特异性和亲和力,如裂殖酵母中的 Rif1 所示。N 端(HEAT 重复)和 C 端片段都参与寡聚体形成并特异性结合 G4 DNA,而中央固有无序多肽片段增加了对 G4 的亲和力。值得注意的是,下拉测定表明 Rif1 同时结合多个 G4 分子。我们的研究结果支持这样一种模型,即 Rif1 通过结合多个 G4 组装体并将染色质纤维保持在一起来调节染色质环结构。