Complex I Dysfunction Redirects Cellular and Mitochondrial Metabolism in Arabidopsis
Open Access
- 10 September 2008
- journal article
- Published by Oxford University Press (OUP) in Plant Physiology
- Vol. 148 (3) , 1324-1341
- https://doi.org/10.1104/pp.108.125880
Abstract
Mitochondrial complex I is a major avenue for reduced NAD oxidation linked to oxidative phosphorylation in plants. However, the plant enzyme has structural and functional features that set it apart from its counterparts in other organisms, raising questions about the physiological significance of this complex in plants. We have developed an experimental model in which rotenone, a classic complex I inhibitor, has been applied to Arabidopsis (Arabidopsis thaliana) cell suspension cultures in order to dissect early metabolic adjustments involved in cell acclimation to mitochondrial dysfunction. Rotenone induced a transitory decrease in cellular respiration (0-4 h after treatment). Cell respiration then progressively recovered and reached a steady state at 10 to 12 h after treatment. Complex I inhibition by rotenone did not induce obvious oxidative stress or cell death but affected longer term cell growth. Integrated analyses of gene expression, the mitochondrial proteome, and changes in primary metabolism indicated that rotenone treatment caused changes in mitochondrial function via alterations in specific components. A physical disengagement of glycolytic activities associated with the mitochondrial outer membrane was observed, and the tricarboxylic acid cycle was altered. Amino acid and organic acid pools were also modified by rotenone treatment, with a marked early decrease of 2-oxoglutarate, aspartate, and glutamine pools. These data demonstrate that, in Arabidopsis cells, complex I inhibition by rotenone induces significant remodeling of metabolic pathways involving the mitochondria and other compartments and point to early metabolic changes in response to mitochondrial dysfunction.Keywords
This publication has 62 references indexed in Scilit:
- Glycolytic Enzymes Associate Dynamically with Mitochondria in Response to Respiratory Demand and Support Substrate ChannelingPlant Cell, 2007
- The Pentatricopeptide Repeat GeneOTP43Is Required fortrans-Splicing of the Mitochondrialnad1Intron 1 inArabidopsis thalianaPlant Cell, 2007
- Lack of Respiratory Chain Complex I Impairs Alternative Oxidase Engagement and Modulates Redox Signaling during Elicitor-Induced Cell Death in TobaccoPlant Cell, 2007
- A Discussion of Statistical Methods for Design and Analysis of Microarray Experiments for Plant ScientistsPlant Cell, 2006
- The mechanism of superoxide production by NADH:ubiquinone oxidoreductase (complex I) from bovine heart mitochondriaProceedings of the National Academy of Sciences, 2006
- Mitochondria-Driven Changes in Leaf NAD Status Exert a Crucial Influence on the Control of Nitrate Assimilation and the Integration of Carbon and Nitrogen MetabolismPlant Physiology, 2005
- Response of mitochondria to light intensity in the leaves of sun and shade speciesPlant, Cell & Environment, 2005
- Mitochondrial Respiratory Deficiencies Signal Up-regulation of Genes for Heat Shock ProteinsJournal of Biological Chemistry, 2004
- Proton pumping by NADH:ubiquinone oxidoreductase. A redox driven conformational change mechanism?FEBS Letters, 2003
- Effect of calcium ions and inhibitors on internal NAD(P)H dehydrogenases in plant mitochondriaEuropean Journal of Biochemistry, 1991