Rabbit Polyclonal ATP5G3 antibody. Suitable for IHC-P, ICC/IF and reacts with Human samples. Cited in 2 publications. Immunogen corresponding to Synthetic Peptide within Human ATP5MC3.
View Alternative Names
ATP5G3, ATP5MC3, ATP synthase lipid-binding protein, ATP synthase membrane subunit c locus 3, ATP synthase proteolipid P3, ATP synthase proton-transporting mitochondrial F(0) complex subunit C3, ATPase protein 9, ATPase subunit c
- IHC-P
Unknown
Immunohistochemistry (Formalin/PFA-fixed paraffin-embedded sections) - Anti-ATP5G3 antibody (AB129742)
ab129742, at 1/50 dilution, staining ATP5G3 in paraffin-embedded Human pancreas tissue by Immunohistochemistry in the presence (right panel) or absence (left panel) of immunizing peptide.
- ICC/IF
Unknown
Immunocytochemistry/ Immunofluorescence - Anti-ATP5G3 antibody (AB129742)
ab129742, at 1/100 dilution, staining ATP5G3 in A549 cells by Immunofluorescence in the presence (right panel) or absence (left panel) of immunizing peptide.
Reactivity data
Properties and storage information
Form
Purification technique
Storage buffer
Shipped at conditions
Appropriate short-term storage conditions
Appropriate long-term storage conditions
Storage information
Supplementary information
This supplementary information is collated from multiple sources and compiled automatically.
Biological function summary
ATP5G3 plays an important role in the mitochondrial ATP synthase complex also referred to as Complex V part of the electron transport chain. This complex catalyzes the conversion of ADP and inorganic phosphate into ATP using the proton gradient established by the complexes I-IV. ATP5G3 through its mechanical function helps maintain the efficiency of ATP production within cells. Its operation is important for cellular energy supply supporting processes like muscle contraction and biosynthetic reactions.
Pathways
ATP5G3 integrates into the oxidative phosphorylation pathway where it interacts with other subunits of the ATP synthase complex to ensure ATP synthesis. This pathway coordinates with the citric acid cycle (Krebs cycle) which generates the electrons used to establish the proton gradient necessary for ATP production. Proteins such as cytochrome c and NADH dehydrogenase (Complex I) connect with ATP5G3 through their roles in the electron transport chain creating a streamlined flow of electron transfer and energy conversion.
Product protocols
- Visit the General protocols
- Visit the Troubleshooting
Target data
Publications (2)
Recent publications for all applications. Explore the full list and refine your search
Frontiers in molecular biosciences 8:793732 PubMed35320929
2022
Applications
Unspecified application
Species
Unspecified reactive species
ACS pharmacology & translational science 2:453-467 PubMed32259077
2019
Applications
Unspecified application
Species
Unspecified reactive species
Product promise
Please note: All products are 'FOR RESEARCH USE ONLY. NOT FOR USE IN DIAGNOSTIC OR THERAPEUTIC PROCEDURES'.
For licensing inquiries, please contact partnerships@abcam.com