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Mitochondrial Electron Transport Chain Complexes I and II (NADH:ubiquinone oxidoreductase and Succinate dehydrogenase) (Complex I & II (CI & CII, NADH:CoQ reductase, SDH))

Target
Complex I & II (CI & CII, NADH:CoQ reductase, SDH)
Molecular classification
Enzyme, Mitochondrial respiratory chain protein complex
01

Overview

The **mitochondrial electron transport chain complexes I and II** are large multi-subunit enzyme complexes embedded in the inner mitochondrial membrane. **Complex I (NADH:ubiquinone oxidoreductase)** accepts electrons from NADH, generated in the citric acid cycle, and passes them to ubiquinone (coenzyme Q), concurrently pumping protons into the intermembrane space to generate a proton gradient necessary for ATP synthesis[1][2][3]. **Complex II (succinate dehydrogenase)** is unique as it participates both in the citric acid cycle (oxidizing succinate to fumarate) and the electron transport chain (transferring electrons via FADH2 to coenzyme Q) but does not contribute to proton pumping[1][3][4][7]. Both complexes are essential for oxidative phosphorylation and ATP generation. Dysfunction or inhibition is linked to neurodegenerative diseases, inherited mitochondrial disorders, cancer, and aging[5][7]. Several inhibitors—natural and synthetic—target these complexes for study or as experimental drugs. Their targeting as therapies is limited by safety concerns due to the essential bioenergetic function of these complexes and the risk of off-target cytotoxicity[1][3][5].

Other names
NADH dehydrogenaseNADH:CoQ oxidoreductasemitochondrial complex ISuccinate-CoQ reductaseSDHsuccinate dehydrogenase complex
02

Mechanism of action

Inhibition of electron transfer (most inhibitors) Reduction in ATP synthesis due to disruption of proton gradient Increased oxidative stress (inhibitors promote superoxide/leakage) Induction of apoptosis (particularly with Complex I inhibitors)

03

Biological functions

Oxidative phosphorylationCellular respirationATP productionElectron transportGeneration of mitochondrial membrane potentialApoptosis regulation (especially Complex I)
04

Disease associations

Cancer (mutations in both complex I and II implicated in various cancers)Neurodegenerative disease (dysfunction linked to Parkinson’s and other disorders)Mitochondrial diseases (complex II and especially complex I mutations are causes)Cardiovascular disease (mitochondrial dysfunction contributes)Other (including aging, metabolic syndromes)
05

Safety considerations

Inhibition reduces cellular ATP, potentially causing cytotoxicity and neurotoxicityEnhanced reactive oxygen species (ROS) generation can accelerate cell damageMitochondrial dysfunction is broadly cytotoxic, so off-target tissue damage and systemic side effects are a concern with systemic inhibition
06

Interacting drugs

Rotenone (Complex I inhibitor)

6 more in the full profile.

07

Biomarkers

Accumulation of lactate and succinate (complex dysfunction)ROS levels (oxidative stress marker)Deficiency in mitochondrial enzyme activities measured in muscle biopsy

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