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线粒体转运体FLX1缺失引发酿酒酵母中活性氧稳态改变及寿命缩短。

Alteration of ROS homeostasis and decreased lifespan in S. cerevisiae elicited by deletion of the mitochondrial translocator FLX1.

作者信息

Giancaspero Teresa Anna, Dipalo Emilia, Miccolis Angelica, Boles Eckhard, Caselle Michele, Barile Maria

机构信息

Istituto di Biomembrane e Bioenergetica, CNR, Via Amendola 165/A, 70126 Bari, Italy.

Dipartimento di Bioscienze, Biotecnologie e Biofarmaceutica, Università degli Studi di Bari "A. Moro", Via Orabona 4, 70126 Bari, Italy.

出版信息

Biomed Res Int. 2014;2014:101286. doi: 10.1155/2014/101286. Epub 2014 May 8.

Abstract

This paper deals with the control exerted by the mitochondrial translocator FLX1, which catalyzes the movement of the redox cofactor FAD across the mitochondrial membrane, on the efficiency of ATP production, ROS homeostasis, and lifespan of S. cerevisiae. The deletion of the FLX1 gene resulted in respiration-deficient and small-colony phenotype accompanied by a significant ATP shortage and ROS unbalance in glycerol-grown cells. Moreover, the flx1Δ strain showed H2O2 hypersensitivity and decreased lifespan. The impaired biochemical phenotype found in the flx1Δ strain might be justified by an altered expression of the flavoprotein subunit of succinate dehydrogenase, a key enzyme in bioenergetics and cell regulation. A search for possible cis-acting consensus motifs in the regulatory region upstream SDH1-ORF revealed a dozen of upstream motifs that might respond to induced metabolic changes by altering the expression of Flx1p. Among these motifs, two are present in the regulatory region of genes encoding proteins involved in flavin homeostasis. This is the first evidence that the mitochondrial flavin cofactor status is involved in controlling the lifespan of yeasts, maybe by changing the cellular succinate level. This is not the only case in which the homeostasis of redox cofactors underlies complex phenotypical behaviours, as lifespan in yeasts.

摘要

本文探讨了线粒体转运体FLX1(其催化氧化还原辅因子FAD穿过线粒体膜)对酿酒酵母ATP产生效率、ROS稳态及寿命的调控作用。FLX1基因的缺失导致呼吸缺陷和小菌落表型,伴随甘油培养细胞中显著的ATP短缺和ROS失衡。此外,flx1Δ菌株表现出对H2O2超敏且寿命缩短。flx1Δ菌株中出现的生化表型受损可能是由于琥珀酸脱氢酶黄素蛋白亚基表达改变所致,琥珀酸脱氢酶是生物能量学和细胞调控中的关键酶。在SDH1-ORF上游调控区域寻找可能的顺式作用共有基序,发现了十几个可能通过改变Flx1p表达来响应诱导代谢变化的上游基序。在这些基序中,有两个存在于编码参与黄素稳态的蛋白质的基因调控区域。这是线粒体黄素辅因子状态参与控制酵母寿命的首个证据,可能是通过改变细胞琥珀酸水平实现的。氧化还原辅因子的稳态是复杂表型行为(如酵母寿命)的基础,这并非唯一的例子。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b537/4033422/414a74708513/BMRI2014-101286.001.jpg

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