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9.3: Anaerobic Respiration

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    187938
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    Anaerobic respiration (a form of cellular respiration that occurs in the absence of oxygen) allows cells to continue producing ATP when oxygen is not available. Like aerobic respiration, anaerobic respiration uses an electron transport chain and oxidative phosphorylation, but it differs in the type of molecule that serves as the final electron acceptor.

    In anaerobic respiration, oxygen is replaced by an alternative electron acceptor, such as nitrate (NO₃⁻), sulfate (SO₄²⁻), or carbon dioxide (CO₂). These molecules accept electrons at the end of the electron transport chain, allowing electron flow to continue and ATP to be generated.

    Key Features of Anaerobic Respiration

    Anaerobic respiration still relies on oxidation–reduction reactions and the transfer of high-energy electrons through membrane-bound protein complexes. As electrons move through the electron transport chain, protons are pumped across a membrane, creating a proton gradient. This gradient drives ATP synthesis through ATP synthase in the same general manner as aerobic respiration.

    However, because alternative electron acceptors are less effective than oxygen at pulling electrons through the chain, anaerobic respiration produces less ATP than aerobic respiration. Despite this lower efficiency, anaerobic respiration yields more ATP than fermentation, which does not use an electron transport chain.

    Organisms That Use Anaerobic Respiration

    Anaerobic respiration is most commonly found in prokaryotes, particularly bacteria and archaea that live in oxygen-poor environments such as deep soil, sediments, wetlands, and the digestive tracts of animals. These organisms play important ecological roles, including nutrient cycling and waste decomposition.

    Different organisms use different electron acceptors depending on their environment. For example, some bacteria use nitrate as a final electron acceptor in a process that contributes to the nitrogen cycle, while others use sulfate in sulfur-rich environments.

    Infographic about anaerobic respiration mechanisms, illustrating processes, components, and the absence of oxygen in life forms.


    This page titled 9.3: Anaerobic Respiration is shared under a CC BY-NC-SA 4.0 license and was authored, remixed, and/or curated by Emalee MacKenzie.