Fujisawa Ryo, Ohashi Eiji, Hirota Kouji, Tsurimoto Toshiki
Department of Biology, Faculty of Science, Kyushu University, 744 Motooka, Nishi-ku, Fukuoka 819-0395, Japan.
Department of Chemistry, Graduate School of Science and Engineering, Tokyo Metropolitan University, Minami-Osawa 1-1, Hachioji-shi, Tokyo 192-0397, Japan.
Nucleic Acids Res. 2017 May 5;45(8):4550-4563. doi: 10.1093/nar/gkx096.
The alternative proliferating-cell nuclear antigen (PCNA)-loader CTF18-RFC forms a stable complex with DNA polymerase ε (Polε). We observed that, under near-physiological conditions, CTF18-RFC alone loaded PCNA inefficiently, but loaded it efficiently when complexed with Polε. During efficient PCNA loading, CTF18-RFC and Polε assembled at a 3΄ primer-template junction cooperatively, and directed PCNA to the loading site. Site-specific photo-crosslinking of directly interacting proteins at the primer-template junction showed similar cooperative binding, in which the catalytic N-terminal portion of Polε acted as the major docking protein. In the PCNA-loading intermediate with ATPγS, binding of CTF18 to the DNA structures increased, suggesting transient access of CTF18-RFC to the primer terminus. Polε placed in DNA synthesis mode using a substrate DNA with a deoxidised 3΄ primer end did not stimulate PCNA loading, suggesting that DNA synthesis and PCNA loading are mutually exclusive at the 3΄ primer-template junction. Furthermore, PCNA and CTF18-RFC-Polε complex engaged in stable trimeric assembly on the template DNA and synthesised DNA efficiently. Thus, CTF18-RFC appears to be involved in leading-strand DNA synthesis through its interaction with Polε, and can load PCNA onto DNA when Polε is not in DNA synthesis mode to restore DNA synthesis.
替代增殖细胞核抗原(PCNA)装载因子CTF18-RFC与DNA聚合酶ε(Polε)形成稳定复合物。我们观察到,在接近生理条件下,单独的CTF18-RFC装载PCNA的效率很低,但与Polε复合时则能高效装载。在高效装载PCNA的过程中,CTF18-RFC和Polε在3′引物-模板连接处协同组装,并将PCNA引导至装载位点。引物-模板连接处直接相互作用蛋白的位点特异性光交联显示出类似的协同结合,其中Polε的催化性N端部分作为主要对接蛋白。在含有ATPγS的PCNA装载中间体中,CTF18与DNA结构的结合增加,表明CTF18-RFC可短暂接近引物末端。使用具有脱氧3′引物末端的底物DNA将Polε置于DNA合成模式时,不会刺激PCNA装载,这表明在3′引物-模板连接处DNA合成和PCNA装载相互排斥。此外,PCNA与CTF18-RFC-Polε复合物在模板DNA上形成稳定的三聚体组装,并高效合成DNA。因此,CTF18-RFC似乎通过与Polε相互作用参与前导链DNA合成,并且在Polε不处于DNA合成模式时可将PCNA装载到DNA上以恢复DNA合成。