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ATPIF1 HumanDescription:
ATPase Inhibitory Factor 1 Human Recombinant
ATPase inhibitor mitochondrial, Inhibitor of F(1)F(o)-ATPase, IF(1), IF1, ATPIF1, ATPI, IP, ATPIP.
Product # :
PRO-1154Price :
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Shipped with Ice Packs
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ATP6V1F HumanDescription:
ATPase Transporting, Lysosomal V1 Subunit F Human Recombinant
ATP6S14, VATF, Vma7, V-type proton ATPase subunit F, V-ATPase 14 kDa subunit.
Product # :
PRO-2166Price :
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ATP6AP2 HumanDescription:
ATPase Transporting Lysosomal Accessory Protein 2 Human Recombinant
Renin receptor, ATPase H(+)-transporting lysosomal accessory protein 2, ATPase H(+)-transporting lysosomal-interacting protein 2, ER-localized type I transmembrane adaptor, Embryonic liver differentiation factor 10, N14F, Renin/prorenin receptor, Vacuolar ATP synthase membrane sector-associated protein M8-9, ATP6M8-9, V-ATPase M8.9 subunit, ATP6AP2, ATP6IP2, CAPER, ELDF10, M8-9, MRXE, XMRE, XPDS, HT028, MRXSH, MSTP009, APT6M8-9.
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PRO-1599Price :
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Shipped at Room temp
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ATP1B3 HumanDescription:
ATPaseTransporting Beta 3 Human Recombinant
ATPase Na+/K+ Transporting Beta 3 Polypeptide, Sodium-Potassium ATPase Subunit Beta 3 (Non-Catalytic), Sodium/Potassium-Transporting ATPase Subunit Beta-3, Sodium/Potassium-Dependent ATPase Subunit Beta-3, Sodium Pump Subunit Beta-3, ATPB-3, Sodium/Potassium-Transporting ATPase Beta-3 Chain, Sodium/Potassium-Dependent ATPase Beta-3 Subunit, Na K-ATPase Beta-3 Polypeptide, CD298 Antigen, CD298, ATP1B3.
Product # :
PRO-1962Price :
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ATP1B2 Human, Sf9Description:
ATPase Transporting Beta 2 Human Recombinant, Sf9
ATP1B2, AMOG, Sodium/Potassium-Transporting ATPase Beta-2 Chain, Sodium/Potassium-Dependent ATPase Beta-2 Subunit, Na, K-ATPase Beta-2 Polypeptide, Adhesion Molecule On Glia, ATPase Na+/K+ Transporting Subunit Beta 2, Sodium-Potassium ATPase Subunit Beta 2 (Non-Catalytic), Sodium/Potassium-Transporting ATPase Subunit Beta-2, Sodium/Potassium-Dependent ATPase Subunit Beta-2, ATPase, Na+/K+ Transporting, Beta 2 Polypeptide, Sodium Pump Subunit Beta-2, Adhesion Molecule In Glia.
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PRO-2397Price :
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ATP1B2 HumanDescription:
ATPaseTransporting Beta 2 Human Recombinant
ATPase Na+/K+ Transporting Beta 2 Polypeptide, Sodium-Potassium ATPase Subunit Beta 2 (Non-Catalytic), Sodium/Potassium-Dependent ATPase Beta-2 Subunit, Sodium/Potassium-Transporting ATPase Beta-2 Chain, Adhesion Molecule On Glia, Na K-ATPase Beta-2 Polypeptide, Sodium Pump Subunit Beta-2, AMOG.
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PRO-1647Price :
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ATP1B1 Human, Sf9Description:
ATPase Transporting Beta 1 Human Recombinant, Sf9
Sodium/potassium-transporting ATPase subunit beta-1, ATPase, Na+/K+ transporting, beta 1 polypeptide, ATP1B, ATPBS, Sodium/potassium-dependent ATPase subunit beta-1, ATP1B1, ATPaseTransporting Beta 1.
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PRO-2385Price :
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ATP1B1 HumanDescription:
ATPase Transporting Beta 1 Human Recombinant
Sodium/potassium-transporting ATPase subunit beta-1, ATPase, Na+/K+ transporting, beta 1 polypeptide, ATP1B, ATPBS, Sodium/potassium-dependent ATPase subunit beta-1, ATP1B1, ATPaseTransporting Beta 1.
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PRO-1665Price :
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About ATPase:
ATPases are a class of enzymes which are known to catalyze the decomposition of ATP into ADP, along with a free phosphate ion, or to encourage the inverse action. Overall, this reaction releases energy, and the enzyme then usually harnesses that energy to help drive a range of other chemical reactions. In many cases, those reactions would not occur if it were not for this process first taking place. It is a process that is used widely in all forms of life all over the planet.
ATPase Function
As part of this process, there is a general importing of many of the metabolites necessary for cell metabolism, and at the same time an exporting of toxins, wastes and solutes that are known to hinder cellular processes. One example would be the sodium-potassium exchanger, which maintains cell membrane potential.
ATPase Structure
Something you can find in all natural ATPases, and which is therefore considered to be something of a telltale sign of them, is the Walker motifs. This is a protein sequence which is to be found in nearly every ATPase.
ATPase Mechanism
The coupling that takes place between ATP hydrolysis and transport is a chemical reaction, so that means that a fixed number of solute molecules are transported for each ATP molecule that becomes hydrolyzed. ATPases thereby harness the chemical potential energy of ATP by performing mechanical work, transporting solutes directly opposite to the direction which is thermodynamically preferred for movement. This is a process known as active transport, and it is a defining feature.