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  2. Energy carrier - Wikipedia

    en.wikipedia.org/wiki/Energy_carrier

    Energy carriers are produced by the energy sector using primary energy sources. In the field of energetics, an energy carrier is produced by human technology from a primary energy source. Only the energy sector uses primary energy sources. Other sectors of society use an energy carrier to perform useful activities (end-uses). [3]

  3. Adenosine triphosphate - Wikipedia

    en.wikipedia.org/wiki/Adenosine_triphosphate

    Adenosine triphosphate (ATP) is a nucleoside triphosphate [2] that provides energy to drive and support many processes in living cells, such as muscle contraction, nerve impulse propagation, and chemical synthesis. Found in all known forms of life, it is often referred to as the "molecular unit of currency" for intracellular energy transfer. [3]

  4. Electron transport chain - Wikipedia

    en.wikipedia.org/wiki/Electron_transport_chain

    This reflux releases free energy produced during the generation of the oxidized forms of the electron carriers (NAD + and Q) with energy provided by O 2. The free energy is used to drive ATP synthesis, catalyzed by the F 1 component of the complex. [13] Coupling with oxidative phosphorylation is a key step for ATP production.

  5. Adenosine - Wikipedia

    en.wikipedia.org/wiki/Adenosine

    Adenosine (symbol A) is an organic compound that occurs widely in nature in the form of diverse derivatives. The molecule consists of an adenine attached to a ribose via a β-N 9-glycosidic bond.

  6. Cellular respiration - Wikipedia

    en.wikipedia.org/wiki/Cellular_respiration

    During energy metabolism, glucose 6-phosphate becomes fructose 6-phosphate. An additional ATP is used to phosphorylate fructose 6-phosphate into fructose 1,6-bisphosphate by the help of phosphofructokinase. Fructose 1,6-biphosphate then splits into two phosphorylated molecules with three carbon chains which later degrades into pyruvate.

  7. Glycolysis - Wikipedia

    en.wikipedia.org/wiki/Glycolysis

    The hydrogen is used to reduce two molecules of NAD +, a hydrogen carrier, to give NADH + H + for each triose. Hydrogen atom balance and charge balance are both maintained because the phosphate (P i ) group actually exists in the form of a hydrogen phosphate anion ( HPO 2− 4 ), [ 6 ] which dissociates to contribute the extra H + ion and gives ...

  8. Nicotinamide adenine dinucleotide - Wikipedia

    en.wikipedia.org/wiki/Nicotinamide_adenine_di...

    Found in all living cells, NAD is called a dinucleotide because it consists of two nucleotides joined through their phosphate groups. One nucleotide contains an adenine nucleobase and the other, nicotinamide. NAD exists in two forms: an oxidized and reduced form, abbreviated as NAD + and NADH (H for hydrogen), respectively.

  9. Hydrogen carrier - Wikipedia

    en.wikipedia.org/wiki/Hydrogen_carrier

    A hydrogen carrier is an organic macromolecule that transports atoms of hydrogen from one place to another inside a cell or from cell to cell for use in various metabolical processes. [1] Examples include NADPH , NADH , and FADH .