Cabrera-Orefice Alfredo, Guerrero-Castillo Sergio, Díaz-Ruíz Rodrigo, Uribe-Carvajal Salvador
Dept of Molecular Genetics, Instituto de Fisiología Celular, Universidad Nacional Autónoma de México, Mexico City, Mexico.
Facultad de Medicina, Programa de Posgrado en Ciencias Médicas, Odontológicas y de la Salud, Universidad Nacional Autónoma de México, Mexico City, Mexico.
Biochimie. 2014 Jul;102:124-36. doi: 10.1016/j.biochi.2014.03.003. Epub 2014 Mar 19.
Physiological uncoupling of mitochondrial oxidative phosphorylation (OxPhos) was studied in Debaryomyces hansenii. In other species, such as Yarrowia lipolytica and Saccharomyces cerevisiae, OxPhos can be uncoupled through differential expression of branched respiratory chain enzymes or by opening of a mitochondrial unspecific channel (ScMUC), respectively. However D. hansenii mitochondria, which contain both a branched respiratory chain and a mitochondrial unspecific channel (DhMUC), selectively uncouple complex I-dependent rate of oxygen consumption in the stationary growth phase. The uncoupled complex I-dependent respiration was only 20% of the original activity. Inhibition was not due to inactivation of complex I, lack of protein expression or to differential expression of alternative oxidoreductases. Furthermore, all other respiratory chain activities were normal. Decrease of complex I-dependent respiration was due to NAD(+) loss from the matrix, probably through an open of DhMUC. When NAD(+) was added back, coupled complex I-activity was recovered. NAD(+) re-uptake was independent of DhMUC opening and seemed to be catalyzed by a NAD(+)-specific transporter, which was sensitive to bathophenanthroline, bromocresol purple or pyridoxal-5'-phosphate as described for S. cerevisiae mitochondrial NAD(+) transporters. Loss of NAD(+) from the matrix through an open MUC is proposed as an additional mechanism to uncouple OxPhos.
在汉逊德巴利酵母中研究了线粒体氧化磷酸化(OxPhos)的生理解偶联。在其他物种中,如解脂耶氏酵母和酿酒酵母,OxPhos可分别通过分支呼吸链酶的差异表达或线粒体非特异性通道(ScMUC)的开放实现解偶联。然而,汉逊德巴利酵母线粒体同时含有分支呼吸链和线粒体非特异性通道(DhMUC),在稳定生长期会选择性地使依赖复合物I的氧消耗速率解偶联。解偶联的依赖复合物I的呼吸作用仅为原始活性的20%。抑制并非由于复合物I失活、蛋白质表达缺失或替代氧化还原酶的差异表达。此外,所有其他呼吸链活性均正常。依赖复合物I的呼吸作用降低是由于基质中NAD(+)的流失,可能是通过DhMUC的开放。当重新添加NAD(+)时,依赖复合物I的偶联活性得以恢复。NAD(+)的重新摄取与DhMUC的开放无关,似乎由一种NAD(+)特异性转运蛋白催化,该转运蛋白对邻菲罗啉、溴甲酚紫或吡哆醛-5'-磷酸敏感,正如酿酒酵母线粒体NAD(+)转运蛋白的情况。通过开放的MUC使基质中的NAD(+)流失被认为是使OxPhos解偶联的另一种机制。