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PW-032 Energy Metabolism & Cellular Respiration Catabolic (energy transduction) unreviewed

Electron Transport Chain (Complexes I–IV)

NADH / FADH2 + O2 H2O + proton-motive force
Compartment
Inner mitochondrial membrane
Main tissue
All aerobic tissues
Rate-limiting
Not flagged in the source
Steps
5

Reaction steps

In source order, 5 total

showing 1–5
  1. 1

    NADH + H+ + ubiquinone (Q) → NAD+ + ubiquinol (QH2)

    Notes

    Required cofactors: FMN, Fe–S clusters, NADH, and ubiquinone. For each NADH oxidized and Q reduced, Complex I translocates 4 H+ from matrix to intermembrane space; this electron-entry step is not normally called the committed rate-limiting step of oxidative phosphorylation, but it is a major regulated redox entry point.

  2. 2

    Succinate + Q → fumarate + QH2

    Notes

    Required cofactors: enzyme-bound FAD, Fe–S centers, heme b, and ubiquinone. Complex II pumps 0 H+; because FADH2-derived electrons enter at the Q pool and bypass Complex I, they yield less ATP than NADH-derived electrons. Other mitochondrial flavoproteins, including glycerol-3-phosphate dehydrogenase and electron-transfer flavoprotein:ubiquinone oxidoreductase, also feed electrons to Q.

  3. 3

    QH2 + 2 cytochrome c(Fe3+) + 2 H+matrix → Q + 2 cytochrome c(Fe2+) + 4 H+intermembrane space

    Notes

    Required cofactors: cytochromes bL and bH, cytochrome c1, and the Rieske [2Fe–2S] protein. Through the Q cycle, oxidation of two QH2 molecules transfers two electrons to two cytochrome c molecules and results in a net 4 H+ translocated/released to the intermembrane space per electron pair; this is a key proton-pumping step.

  4. 4

    2 cytochrome c(Fe2+) + 1/2 O2 + 2 H+matrix → 2 cytochrome c(Fe3+) + H2O

    Notes

    Required cofactors: CuA center, hemes a and a3, CuB, cytochrome c, O2, and matrix protons. Per pair of electrons (one NADH equivalent), Complex IV pumps 2 H+ from matrix to intermembrane space and also consumes 2 matrix H+ chemically to form water; for four electrons/O2 it pumps 4 H+ and consumes 4 matrix H+.

  5. 5

    Electron-carrier integration: NADH/FADH2 → Q pool → Complex III → cytochrome c → Complex IV → O2

    ↪ Q pool → Complex III → cytochrome c → Complex IV → O2

    Notes

    Cytochrome c is a small, soluble peripheral protein on the outer face of the inner membrane that carries one electron at a time from Complex III to Complex IV. For NADH-derived electrons, the ETC pumps a total of 10 H+ per NADH (4 at I, 4 at III, 2 at IV); for FADH2-derived electrons entering through Complex II, it pumps 6 H+ (0 at II, 4 at III, 2 at IV).

Showing all 5 steps.

Regulation

What speeds each enzyme up and what slows it down

Complex I (NADH:ubiquinone oxidoreductase)

Accelerated by

NADH availability, ADP/ATP demand, adequate O2 downstream

Inhibited by

Rotenone, piericidin A, amobarbital; excess NADH can favor reduced-state backpressure

Hormonal

Thyroid hormone can increase mitochondrial respiratory capacity over time; acute control is principally acceptor control by ADP and substrate redox state

Complex III (cytochrome bc1 complex)

Accelerated by

QH2 availability, oxidized cytochrome c

Inhibited by

Antimycin A, myxothiazol, stigmatellin

Hormonal

Primarily indirect through respiratory demand and mitochondrial biogenesis

Cytochrome c oxidase (Complex IV)

Accelerated by

ADP, Pi, reduced cytochrome c, O2 availability; low ATP/ADP ratio

Inhibited by

Cyanide, carbon monoxide, azide, hydrogen sulfide; severe hypoxia

Hormonal

Thyroid hormone and exercise training increase mitochondrial content; acute flux follows ADP availability (respiratory acceptor control)

Overview

The mitochondrial electron transport chain (ETC) transfers electrons from NADH and FADH2 to molecular oxygen through a sequence of redox carriers while using the released free energy to pump protons across the inner mitochondrial membrane. Electron flow establishes the proton-motive force that powers ATP synthesis, metabolite transport, and other mitochondrial work. Oxygen is the terminal electron acceptor; reduction of O2 to water prevents the respiratory chain from remaining in a reduced, electron-blocked state.

Cellular location

Complexes I–IV, ubiquinone, cytochrome c, and associated supercomplexes reside in the inner mitochondrial membrane. Complexes I, III, and IV pump protons from the matrix into the intermembrane space; the outer membrane is relatively permeable to small solutes, so the intermembrane-space environment communicates substantially with the cytosol. Aerobic tissues with high ATP demand—especially cardiac muscle, brain, renal cortex, liver, and oxidative skeletal muscle—depend heavily on ETC function; erythrocytes lack the organelle and respiratory chain.

Net energetics

The ETC itself produces no ATP directly; it converts redox energy into proton-motive force. Oxidation of one matrix NADH by the sequence I → III → IV pumps approximately 10 H+, whereas one FADH2-equivalent entering via Complex II → III → IV pumps approximately 6 H+. These proton-pumping stoichiometries underlie modern average P/O ratios of about 2.5 ATP per NADH and 1.5 ATP per FADH2 after accounting for ATP synthase and transport costs. Therefore, oxidation of the NADH and FADH2 generated from complete aerobic oxidation of glucose supports the conventional modern total of approximately 30–32 ATP per glucose, not the older approximate estimate of 36–38 ATP.

Clinical significance

The ETC is the main source of ATP in most aerobic tissues and is also a significant potential source of reactive oxygen species (ROS), particularly at Complexes I and III when electron carriers are highly reduced. Cyanide, carbon monoxide, azide, and hydrogen sulfide inhibit Complex IV, blocking oxygen utilization and causing rapidly fatal histotoxic hypoxia despite potentially normal arterial oxygen content. Pathogenic mitochondrial DNA or nuclear-gene variants affecting ETC subunits can cause heterogeneous mitochondrial diseases, often involving high-energy organs such as brain, skeletal muscle, heart, retina, and cochlea. Release of cytochrome c from damaged mitochondria also participates in intrinsic apoptotic signaling.

Recent literature

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    Synergistic application of taurine and spermidine enhances wheat tolerance to neodymium stress through redox homeostasis, metabolic adjustment, and nutrient regulation.

    Iqbal R, Mehmood H, Majeed A, Murtaza G, Rebouh NY, Alotaibi MS, Alotaibi SS, Ullah S, Huseynova A, Ali S. · 2026-06-15

    open access unreviewed
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    Harsonowati W, Sanjaya LL, Krismawati A, Rembang JHW, Rawung JBM, Widiyono W, Doni F, Iqbal R, Ullah S. · 2026-06-11

    open access unreviewed
  4. 4
    The regulatory roles of non-coding RNAs in aerobic glycolysis and therapeutic potential in pancreatic ductal adenocarcinoma.

    Fan Y, Tang X, Li S, Liu S, Fang Y, Sun X, Xue Z, Niu H, Chen Y, Dai C, Ling R. · 2026-06-09

    open access unreviewed
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    Kang Y, Jin Q, Li S, Lv Y, Wang X, Jin X, Zhou M, Li D, Lv J, Zheng H, Wang Y. · 2026-05-24

    open access unreviewed
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    Soil-derived microbiota induces T regulatory cells and protect against mouse colitis, metabolic disease, and sepsis.

    Szurek EA, Ngo VL, Abo H, Cebula A, Chassaing B, Howard RA, Hart M, Hori S, Weaver CT, Gewirtz AT, Ignatowicz… · 2026-05-24

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    Wang X, Zou X, Liu L, Liang X, Wang H, Yang C, Li Y, Liao L, Zhu Z, Wang Y, Zhao J, He L. · 2026-06-02

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    Pathogenicity and virulence of the blast fungus <i>Magnaporthe oryzae</i>.

    Molinari C, Talbot NJ. · 2026-05-31

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External claims. These come from an index outside this database and are not checked against it. Treat them as leads.