ATP5F1D antibody
Quick Overview for ATP5F1D antibody (ABIN7111792)
Target
See all ATP5F1D AntibodiesReactivity
Host
Clonality
Conjugate
Application
-
-
Purpose
- ATP5F1D antibody
-
Purification
- Immunogen affinity purified
-
Purity
- ≥95 % as determined by SDS-PAGE
-
Immunogen
- ATP synthase, H+ transporting, mitochondrial F1 complex, delta subunit
-
Isotype
- IgG
-
-
-
-
Application Notes
- WB: 1:500-1:2000, IHC: 1:20-1:200
-
Restrictions
- For Research Use only
-
-
-
Format
- Liquid
-
Buffer
- PBS with 0.02 % sodium azide and 50 % glycerol pH 7.3,
-
Preservative
- Sodium azide
-
Precaution of Use
- This product contains Sodium azide: a POISONOUS AND HAZARDOUS SUBSTANCE which should be handled by trained staff only.
-
Handling Advice
- Avoid repeated freeze / thaw cycles.
-
Storage
- -20 °C
-
Storage Comment
- -20°C for 12 months
-
Expiry Date
- 12 months
-
-
- ATP5F1D (ATP synthase subunit delta, mitochondrial (ATP5F1D))
-
Alternative Name
- ATP5F1D
-
Background
-
Synonyms: ATP synthase subunit delta, mitochondrial|ATP synthase F1 subunit delta|F-ATPase delta subunit|ATP5F1D|ATP5D
Background: Mitochondrial membrane ATP synthase(F(1)F(0) ATP synthase or Complex V) produces ATP from ADP in the presence of a proton gradient across the membrane which is generated by electron transport complexes of the respiratory chain. F-type ATPases consist of two structural domains, F(1)-containing the extramembraneous catalytic core, and F(0)-containing the membrane proton channel, linked together by a central stalk and a peripheral stalk. During catalysis, ATP turnover in the catalytic domain of F(1) is coupled via a rotary mechanism of the central stalk subunits to proton translocation. Part of the complex F(1) domain and of the central stalk which is part of the complex rotary element. Rotation of the central stalk against the surrounding alpha(3)beta(3) subunits leads to hydrolysis of ATP in three separate catalytic sites on the beta subunits.
-
Molecular Weight
- 15-17 kDa
-
Gene ID
- 513
-
UniProt
- P30049
-
Pathways
- Proton Transport, Ribonucleoside Biosynthetic Process
Target
-