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酵母细胞中含有带有缺陷型沃克A基序的Orc5p的起始识别复合物的降解机制及其通过过量表达Orc4p的抑制作用。

Mechanism for the degradation of origin recognition complex containing Orc5p with a defective Walker A motif and its suppression by over-production of Orc4p in yeast cells.

作者信息

Makise Masaki, Takahashi Naoko, Matsuda Kazuya, Yamairi Fumiko, Suzuki Keitarou, Tsuchiya Tomofusa, Mizushima Tohru

机构信息

Graduate School of Medical and Pharmaceutical Sciences, Kumamoto University, Kumamoto 862-0973, Japan.

出版信息

Biochem J. 2007 Mar 1;402(2):397-403. doi: 10.1042/BJ20060841.

Abstract

Orc5p is one of six subunits constituting the ORC (origin recognition complex), a possible initiator of chromosomal DNA replication in eukaryotes. Orc5p contains a Walker A motif. We recently reported that a strain of Saccharomyces cerevisiae having a mutation in Orc5p's Walker A motif (orc5-A), showed cell-cycle arrest at G2/M and degradation of ORC at high temperatures (37 degrees C). Over-production of Orc4p, another subunit of ORC, specifically suppressed these phenotypes [Takahashi, Yamaguchi, Yamairi, Makise, Takenaka, Tsuchiya and Mizushima (2004) J. Biol. Chem. 279, 8469-8477]. In the present study, we examined the mechanisms of ORC degradation and of its suppression by Orc4p over-production. In orc5-A, at high temperatures, ORC is degraded by proteasomes; either addition of a proteasome inhibitor, or introduction of a mutation of either tan1-1 or nob1-4 that inhibits proteasomes, prevented ORC degradation. Introduction of the tan1-1 mutation restored cell cycle progression, suggesting that the defect was due to ORC degradation by proteasomes. Yeast two-hybrid and co-immunoprecipitation analyses suggested that Orc5p interacts preferentially with Orc4p and that the orc5-A mutation diminishes this interaction. We suggest that this interaction is mediated by the C-terminal region of Orc4p, and the N-terminal region of Orc5p. Based on these observations, we consider that ATP binding to Orc5p is required for efficient interaction with Orc4p and that, in orc5-A, loss of this interaction at higher temperatures allows proteasomes to degrade ORC, causing growth defects. This model could also explain why over-production of Orc4p suppresses the orc5-A strain's phenotype.

摘要

Orc5p是构成ORC(起源识别复合物)的六个亚基之一,ORC可能是真核生物中染色体DNA复制的起始因子。Orc5p含有一个沃克A基序。我们最近报道,一株在Orc5p的沃克A基序中发生突变(orc5-A)的酿酒酵母菌株,在高温(37摄氏度)下表现出细胞周期在G2/M期停滞以及ORC降解。ORC的另一个亚基Orc4p的过量表达特异性地抑制了这些表型[高桥、山口、山入、牧濑、竹中、土屋和水岛(2004年)《生物化学杂志》279卷,8469 - 8477页]。在本研究中,我们研究了ORC降解及其被Orc4p过量表达抑制的机制。在orc5-A中,在高温下,ORC被蛋白酶体降解;添加蛋白酶体抑制剂,或引入抑制蛋白酶体的tan1-1或nob1-4突变,均可阻止ORC降解。引入tan1-1突变可恢复细胞周期进程,表明该缺陷是由于蛋白酶体对ORC的降解所致。酵母双杂交和共免疫沉淀分析表明,Orc5p优先与Orc4p相互作用,而orc5-A突变减弱了这种相互作用。我们认为这种相互作用是由Orc4p的C末端区域和Orc5p的N末端区域介导的。基于这些观察结果,我们认为ATP与Orc5p的结合是与Orc4p有效相互作用所必需的,并且在orc5-A中,在较高温度下这种相互作用的丧失使得蛋白酶体能够降解ORC,从而导致生长缺陷。该模型也可以解释为什么Orc4p的过量表达会抑制orc5-A菌株的表型。

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本文引用的文献

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