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  2. Template:Glycolysis summary - Wikipedia

    en.wikipedia.org/wiki/Template:Glycolysis_summary

    "The metabolic pathway of glycolysis converts glucose to pyruvate via a series of intermediate metabolites. Each chemical modification (red box) is performed by a different enzyme. Steps 1 and 3 consume ATP (blue) and steps 7 and 10 produce ATP (yellow). Since steps 6-10 occur twice per glucose molecule, this leads to a net production of energy."

  3. Glycolysis - Wikipedia

    en.wikipedia.org/wiki/Glycolysis

    The change in free energy, ΔG, for each step in the glycolysis pathway can be calculated using ΔG = ΔG°′ + RTln Q, where Q is the reaction quotient. This requires knowing the concentrations of the metabolites. All of these values are available for erythrocytes, with the exception of the concentrations of NAD + and NADH.

  4. Template:Glycolysis - Wikipedia

    en.wikipedia.org/wiki/Template:Glycolysis

    This page is the template for the Glycolysis Navigation template. This template should be used on biological chemical and enzyme pages which lie in the glycolysis metabolic pathway . This template is part of Metabolic Pathways task force .

  5. Category:Biology templates - Wikipedia

    en.wikipedia.org/wiki/Category:Biology_templates

    [[Category:Biology templates]] to the <includeonly> section at the bottom of that page. Otherwise, add <noinclude>[[Category:Biology templates]]</noinclude> to the end of the template code, making sure it starts on the same line as the code's last character.

  6. Pyruvate decarboxylation - Wikipedia

    en.wikipedia.org/wiki/Pyruvate_decarboxylation

    Pyruvate oxidation is the step that connects glycolysis and the Krebs cycle. [4] In glycolysis, a single glucose molecule (6 carbons) is split into 2 pyruvates (3 carbons each). Because of this, the link reaction occurs twice for each glucose molecule to produce a total of 2 acetyl-CoA molecules, which can then enter the Krebs cycle.

  7. Cori cycle - Wikipedia

    en.wikipedia.org/wiki/Cori_cycle

    Cori cycle. The Cori cycle (also known as the lactic acid cycle), named after its discoverers, Carl Ferdinand Cori and Gerty Cori, [1] is a metabolic pathway in which lactate, produced by anaerobic glycolysis in muscles, is transported to the liver and converted to glucose, which then returns to the muscles and is cyclically metabolized back to lactate.

  8. Glycated hemoglobin - Wikipedia

    en.wikipedia.org/wiki/Glycated_hemoglobin

    Glycated hemoglobin, also called glycohemoglobin, is a form of hemoglobin (Hb) that is chemically linked to a sugar. [note 1] Most monosaccharides, including glucose, galactose, and fructose, spontaneously (that is, non-enzymatically) bond with hemoglobin when they are present in the bloodstream.

  9. Glyoxylate cycle - Wikipedia

    en.wikipedia.org/wiki/Glyoxylate_cycle

    The two initial steps of the glyoxylate cycle are identical to those in the citric acid cycle: acetate → citrate → isocitrate. In the next step, catalyzed by the first glyoxylate cycle enzyme, isocitrate lyase, isocitrate undergoes cleavage into succinate and glyoxylate (the latter gives the cycle its name).