Noctor Graham, Dutilleul Christelle, De Paepe Rosine, Foyer Christine H
Laboratoire Signalisation Redox, Institut de Biotechnologie des Plantes, Bâtiment 630, Université Paris XI,F-91405 Orsay cedex, France.
J Exp Bot. 2004 Jan;55(394):49-57. doi: 10.1093/jxb/erh021. Epub 2003 Nov 17.
Primary leaf metabolism requires the co-ordinated production and use of carbon skeletons and redox equivalents in several subcellular compartments. The role of the mitochondria in leaf metabolism has long been recognized, but it is only recently that molecular tools and mutants have become available to evaluate cause-and-effect relationships. In particular, analysis of the CMSII mutant of Nicotiana sylvestris, which lacks functional complex I, has provided information on the role of mitochondrial electron transport in leaf function. The essential feature of CMSII is the absence of a major NADH sink, i.e. complex I. This necessitates re-adjustment of whole-cell redox homeostasis, gene expression, and also influences metabolic pathways that use pyridine nucleotides. In air, CMSII is not able to use its photosynthetic capacity as well as the wild type. The mutant shows up-regulation of the leaf antioxidant system, lower leaf contents of reactive oxygen species, and enhanced stress resistance. Lastly, the loss of a major mitochondrial dehydrogenase has important repercussions for the integration of primary carbon and nitrogen metabolism, causing distinct changes in leaf organic acid profiles, and also affecting downstream processes such as the biosynthesis of the spectrum of leaf amino acids.
叶片的初级代谢需要在几个亚细胞区室中协调碳骨架和氧化还原当量的产生与利用。线粒体在叶片代谢中的作用早已为人所知,但直到最近才有分子工具和突变体可用于评估因果关系。特别是,对缺乏功能性复合体I的野生烟草CMSII突变体的分析,为线粒体电子传递在叶片功能中的作用提供了信息。CMSII的基本特征是缺少一个主要的NADH库,即复合体I。这就需要重新调整全细胞的氧化还原稳态、基因表达,并且还会影响使用吡啶核苷酸的代谢途径。在空气中,CMSII无法像野生型那样充分利用其光合能力。该突变体表现出叶片抗氧化系统上调、叶片活性氧含量降低以及抗逆性增强。最后,一种主要线粒体脱氢酶的缺失对初级碳代谢和氮代谢的整合产生重要影响,导致叶片有机酸谱发生明显变化,还会影响下游过程,如叶片氨基酸谱的生物合成。