Franken Jaco, Kroppenstedt Sven, Swiegers Jan H, Bauer Florian F
Department of Viticulture and Oenology, Institute for Wine Biotechnology, University of Stellenbosch, Stellenbosch, ZA 7600, South Africa.
Curr Genet. 2008 Jun;53(6):347-60. doi: 10.1007/s00294-008-0191-0. Epub 2008 Apr 22.
To date, the only reported metabolic and physiological roles for carnitine in Saccharomyces cerevisiae are related to the activity of the carnitine shuttle. In yeast, the shuttle transfers peroxisomal activated acetyl-residues to the mitochondria. However, acetyl-CoA can also be metabolised by the glyoxylate cycle to form succinate. The two pathways, therefore, provide a metabolic bypass for each other, and carnitine-dependent phenotypes have only been described in strains with non-functional peroxisomal citrate synthase, Cit2p. Here, we present evidence for a role of carnitine in stress protection that is independent of CIT2 and of the carnitine shuttle. Data show that carnitine improves growth during oxidative stress and in the presence of weak organic acids in wt and in CAT deletion strains. Our data also show that strains with single, double and triple deletions of the three CAT genes generally present identical phenotypes, but that the deletion of CAT2 decreases survival during oxidative stress in a carnitine-independent manner. Overexpression of single CAT genes does not lead to cross-complementation, suggesting a highly specific metabolic role for each enzyme. The data suggest that carnitine protects cells from oxidative and organic acid stress, while CAT2 contributes to the response to oxidative stress.
迄今为止,在酿酒酵母中,肉碱唯一被报道的代谢和生理作用与肉碱穿梭系统的活性有关。在酵母中,该穿梭系统将过氧化物酶体活化的乙酰基残基转运至线粒体。然而,乙酰辅酶A也可通过乙醛酸循环代谢生成琥珀酸。因此,这两条途径为彼此提供了一条代谢旁路,并且仅在过氧化物酶体柠檬酸合酶Cit2p无功能的菌株中描述了依赖肉碱的表型。在此,我们提供证据表明肉碱在应激保护中具有独立于CIT2和肉碱穿梭系统的作用。数据显示,在野生型和CAT缺失菌株中,肉碱在氧化应激期间以及存在弱有机酸的情况下可促进生长。我们的数据还表明,三个CAT基因单缺失、双缺失和三缺失的菌株通常表现出相同的表型,但CAT2的缺失以不依赖肉碱的方式降低了氧化应激期间的存活率。单个CAT基因的过表达不会导致交叉互补,这表明每种酶具有高度特异性的代谢作用。数据表明,肉碱可保护细胞免受氧化和有机酸应激,而CAT2有助于细胞对氧化应激作出反应。