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酿酒酵母中的线粒体基因表达。IV. 酵母胞质溶胶对线粒体蛋白质合成、降解及呼吸作用的影响。

Mitochondrial gene expression in Saccharomyces cerevisiae. IV. Effects of yeast cytosol on mitochondrial protein synthesis, degradation, and respiration.

作者信息

McKee E E

机构信息

South Bend Center for Medical Education, Indiana University School of Medicine.

出版信息

Biochim Biophys Acta. 1994 Nov 11;1201(2):235-44. doi: 10.1016/0304-4165(94)90046-9.

Abstract

It has been known for some time that the addition of a crude yeast cytosolic fraction to isolated mitochondria stimulates the rate of amino acid incorporation into protein in the isolated organelles. However, the mechanism and importance of this phenomenon relative to mitochondrial function has not been established. While it has been assumed that this effect is at the level of translation, the recognition that newly synthesized mitochondrial translation products are rapidly degraded in isolated yeast mitochondria raises the possibility that cytosol affects amino acid incorporation by inhibiting proteolysis. Using pulse-chase experiments we demonstrate that the rate constants of degradation of the nascent products are not affected by yeast cytosol. Further, not only is proteolysis not inhibited by cytosol, but the loss of label caused by proteolysis is actually increased. This increase is directly related to an increase in the size of the nascent product pool which increases simply as a consequence of increasing the rate of translation. By utilizing an approach in which the loss of label due to proteolysis is minimized, the true stimulatory activity of the cytosolic fraction on synthesis was determined (2.1-fold vs. 1.3-fold by the previous method). Pulse-chase experiments in the presence of pactamycin, an initiation inhibitor, demonstrate that yeast cytosol causes an initial increase in the rate of translational initiation without increasing the rate of elongation. However, at later intervals the yeast cytosol acts primarily to maintain the rate of elongation which falls steadily in the controls. Finally, the presence of yeast cytosol dramatically increases the length of incubation time in which the mitochondrial preparation consumes oxygen and maintains coupled respiration, parameters that fall rapidly in the controls. Thus, a yeast cytosolic fraction may function to promote the stability of the mitochondrial preparation, which in turn may account for the increase in rates of translation, particularly with regard to maintaining rates of elongation.

摘要

一段时间以来,人们已经知道,向分离的线粒体中添加粗制酵母胞质部分会刺激氨基酸掺入分离细胞器中蛋白质的速率。然而,这种现象相对于线粒体功能的机制和重要性尚未确定。虽然人们一直认为这种作用是在翻译水平上,但认识到新合成的线粒体翻译产物在分离的酵母线粒体中会迅速降解,这就增加了胞质溶胶通过抑制蛋白水解来影响氨基酸掺入的可能性。我们通过脉冲追踪实验证明,新生产物的降解速率常数不受酵母胞质溶胶的影响。此外,胞质溶胶不仅不会抑制蛋白水解,反而由蛋白水解导致的标记损失实际上还会增加。这种增加与新生产物池大小的增加直接相关,而新生产物池大小的增加仅仅是翻译速率增加的结果。通过采用一种将蛋白水解导致的标记损失降至最低的方法,确定了胞质部分对合成的真正刺激活性(与之前方法相比为2.1倍对1.3倍)。在存在起始抑制剂 pactamycin 的情况下进行的脉冲追踪实验表明,酵母胞质溶胶会导致翻译起始速率最初增加,而不会增加延伸速率。然而,在随后的时间段内,酵母胞质溶胶主要起到维持延伸速率的作用,而在对照中延伸速率会稳步下降。最后,酵母胞质溶胶的存在显著增加了线粒体制剂消耗氧气并维持偶联呼吸的孵育时间长度,而在对照中这些参数会迅速下降。因此,酵母胞质部分可能起到促进线粒体制剂稳定性的作用,这反过来可能解释了翻译速率的增加,特别是在维持延伸速率方面。

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