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9.4: Lipid Catabolism

  • Page ID
    187940
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    Lipid catabolism (the metabolic process by which fats are broken down to release energy) is a major source of ATP in cells, particularly during prolonged energy demand such as fasting, endurance activity, or low carbohydrate availability. Because lipids store large amounts of chemical energy, their breakdown yields significantly more ATP per molecule than carbohydrates or proteins.

    Lipids are primarily stored as triglycerides and must be broken down into smaller components before they can enter energy-producing pathways.

    Breakdown of Triglycerides

    The first step in lipid catabolism is the breakdown of triglycerides into their component parts: fatty acids and glycerol. This process releases fatty acids, which serve as the primary energy-rich molecules, and glycerol, which can be converted into intermediates of glycolysis.

    Once released, fatty acids are transported into the cell and, in eukaryotes, into the mitochondria, where most lipid catabolism occurs.

    Beta Oxidation of Fatty Acids

    Fatty acids are broken down through beta oxidation (a cyclic pathway that shortens fatty acids two carbons at a time). During each cycle of beta oxidation, a two-carbon unit is removed from the fatty acid and converted into acetyl CoA. At the same time, high-energy electrons are captured in the form of NADH and FADH₂.

    This process continues until the entire fatty acid chain has been converted into multiple acetyl CoA molecules. These acetyl CoA molecules then enter the citric acid cycle, where further oxidation occurs and additional electron carriers are produced.

    ATP Production from Lipids

    Lipid catabolism yields large amounts of ATP because fatty acids are highly reduced molecules rich in high-energy electrons. The NADH and FADH₂ produced during beta oxidation and the citric acid cycle deliver electrons to the electron transport chain, driving oxidative phosphorylation and ATP synthesis.

    As a result, lipids provide more than twice the energy per gram compared to carbohydrates, making them an efficient long-term energy storage molecule

    lipid catabolism.png

    Attribution: Figure generated using CharGpt AI and modified by Emalee Mackenzie, Irvine Valley College. Licensed under CC BY-NC-SA.


    This page titled 9.4: Lipid Catabolism is shared under a CC BY-NC-SA 4.0 license and was authored, remixed, and/or curated by Emalee MacKenzie.