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2
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本文引用的文献

1
A mitochondrial paradigm of metabolic and degenerative diseases, aging, and cancer: a dawn for evolutionary medicine.代谢性疾病、退行性疾病、衰老及癌症的线粒体范式:进化医学的曙光。
Annu Rev Genet. 2005;39:359-407. doi: 10.1146/annurev.genet.39.110304.095751.
2
Mitochondrial DNA mutations, oxidative stress, and apoptosis in mammalian aging.哺乳动物衰老过程中的线粒体DNA突变、氧化应激与细胞凋亡。
Science. 2005 Jul 15;309(5733):481-4. doi: 10.1126/science.1112125.
3
Mitochondria, oxidants, and aging.线粒体、氧化剂与衰老
Cell. 2005 Feb 25;120(4):483-95. doi: 10.1016/j.cell.2005.02.001.
4
Yeast longevity and aging--the mitochondrial connection.酵母的寿命与衰老——线粒体的联系。
Mech Ageing Dev. 2005 Feb;126(2):243-8. doi: 10.1016/j.mad.2004.08.016.
5
Cross-compartment protection by SOD1.超氧化物歧化酶1的跨区室保护作用
Free Radic Biol Med. 2005 Jan 1;38(1):146-7. doi: 10.1016/j.freeradbiomed.2004.10.017.
6
Mitochondrial protein oxidation in yeast mutants lacking manganese-(MnSOD) or copper- and zinc-containing superoxide dismutase (CuZnSOD): evidence that MnSOD and CuZnSOD have both unique and overlapping functions in protecting mitochondrial proteins from oxidative damage.缺乏锰超氧化物歧化酶(MnSOD)或铜锌超氧化物歧化酶(CuZnSOD)的酵母突变体中的线粒体蛋白质氧化:证据表明MnSOD和CuZnSOD在保护线粒体蛋白质免受氧化损伤方面具有独特且重叠的功能。
J Biol Chem. 2004 Dec 10;279(50):51817-27. doi: 10.1074/jbc.M405958200. Epub 2004 Sep 21.
7
Higher respiratory activity decreases mitochondrial reactive oxygen release and increases life span in Saccharomyces cerevisiae.较高的呼吸活性可降低酿酒酵母中线粒体活性氧的释放并延长其寿命。
J Biol Chem. 2004 Nov 26;279(48):49883-8. doi: 10.1074/jbc.M408918200. Epub 2004 Sep 21.
8
Coupling the mitochondrial transcription machinery to human disease.将线粒体转录机制与人类疾病联系起来。
Trends Genet. 2004 Oct;20(10):513-9. doi: 10.1016/j.tig.2004.08.005.
9
Superoxide inhibits 4Fe-4S cluster enzymes involved in amino acid biosynthesis. Cross-compartment protection by CuZn-superoxide dismutase.超氧化物抑制参与氨基酸生物合成的4Fe-4S簇酶。铜锌超氧化物歧化酶的跨区室保护作用。
J Biol Chem. 2004 Jul 30;279(31):32055-62. doi: 10.1074/jbc.M403590200. Epub 2004 May 27.
10
Premature ageing in mice expressing defective mitochondrial DNA polymerase.表达缺陷型线粒体DNA聚合酶的小鼠早衰
Nature. 2004 May 27;429(6990):417-23. doi: 10.1038/nature02517.

线粒体基因表达缺陷导致活性氧介导的呼吸抑制和酵母寿命缩短。

Defective mitochondrial gene expression results in reactive oxygen species-mediated inhibition of respiration and reduction of yeast life span.

作者信息

Bonawitz Nicholas D, Rodeheffer Matthew S, Shadel Gerald S

机构信息

Department of Pathology, Yale University School of Medicine, 310 Cedar St., P.O. Box 208023, New Haven, CT 06520-8023, USA.

出版信息

Mol Cell Biol. 2006 Jul;26(13):4818-29. doi: 10.1128/MCB.02360-05.

DOI:10.1128/MCB.02360-05
PMID:16782871
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1489155/
Abstract

Mitochondrial dysfunction causes numerous human diseases and is widely believed to be involved in aging. However, mechanisms through which compromised mitochondrial gene expression elicits the reported variety of cellular defects remain unclear. The amino-terminal domain (ATD) of yeast mitochondrial RNA polymerase is required to couple transcription to translation during expression of mitochondrial DNA-encoded oxidative phosphorylation subunits. Here we report that several ATD mutants exhibit reduced chronological life span. The most severe of these (harboring the rpo41-R129D mutation) displays imbalanced mitochondrial translation, conditional inactivation of respiration, elevated production of reactive oxygen species (ROS), and increased oxidative stress. Reduction of ROS, via overexpression of superoxide dismutase (SOD1 or SOD2 product), not only greatly extends the life span of this mutant but also increases its ability to respire. Another ATD mutant with similarly reduced respiration (rpo41-D152A/D154A) accumulates only intermediate levels of ROS and has a less severe life span defect that is not rescued by SOD. Altogether, our results provide compelling evidence for the "vicious cycle" of mitochondrial ROS production and lead us to propose that the amount of ROS generated depends on the precise nature of the mitochondrial gene expression defect and initiates a downward spiral of oxidative stress only if a critical threshold is crossed.

摘要

线粒体功能障碍会引发多种人类疾病,人们普遍认为其与衰老有关。然而,线粒体基因表达受损引发所报道的各种细胞缺陷的机制仍不清楚。酵母线粒体RNA聚合酶的氨基末端结构域(ATD)在线粒体DNA编码的氧化磷酸化亚基表达过程中,是将转录与翻译偶联所必需的。在此,我们报道几个ATD突变体的时序寿命缩短。其中最严重的突变体(携带rpo41-R129D突变)表现出线粒体翻译失衡、呼吸作用的条件性失活、活性氧(ROS)生成增加以及氧化应激增强。通过超氧化物歧化酶(SOD1或SOD2产物)的过表达来降低ROS水平,不仅能极大地延长该突变体的寿命,还能增强其呼吸能力。另一个呼吸作用同样减弱的ATD突变体(rpo41-D152A/D154A)仅积累中等水平的ROS,其寿命缺陷较轻,且不能通过SOD得到挽救。总之,我们的结果为线粒体ROS生成的“恶性循环”提供了有力证据,并使我们提出,所产生的ROS量取决于线粒体基因表达缺陷的精确性质,且只有当超过临界阈值时才会引发氧化应激的恶性循环。