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Overview

Uniprot IDA0A8L2Q0A6
Protein NameATP synthase peripheral stalk subunit F6, mitochondrial
Gene NameAtp5pf
OrganismRattus norvegicus

Kla Sites from experimental identification

Position Flanking peptide
141 DRELFKLKQMYGKGE
146 KLKQMYGKGEMDKFP

Function

Subunit F6, of the mitochondrial membrane ATP synthase complex (F(1)F(0) ATP synthase or Complex V) that 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. ATP synthase complex consist of a soluble F(1) head domain - the catalytic core - and a membrane F(1) domain - the membrane proton channel. These two domains are linked by a central stalk rotating inside the F(1) region and a stationary peripheral stalk. During catalysis, ATP synthesis in the catalytic domain of F(1) is coupled via a rotary mechanism of the central stalk subunits to proton translocation. In vivo, can only synthesize ATP although its ATP hydrolase activity can be activated artificially in vitro. Part of the complex F(0) domain. Part of the complex F(0) domain and the peripheric stalk, which acts as a stator to hold the catalytic alpha(3)beta(3) subcomplex and subunit a/ATP6 static relative to the rotary elements

Protein Sequence

10 MRTVQCFQEG 20 KEGEVKCRKD 30 GGVLAEGPGS 40 TYPPLPPPVW 50 LLSHLEASGR 60 RLSSRRFLSD 70 STMTVQRIFR 80 LSSVLRSAVS 90 VHLRRNIGVT 100 AVAFNKELDP 110 VQKLFLDKIR 120 EYKAKRLASG 130 GPVDTGPEYQ 140 QEVDRELFKL 150 KQMYGKGEMD 160 KFPTFNFEDP 170 KFEVLDKPQS

Gene Ontology

Classification GO ID Description
Cellular Component GO:0005743 mitochondrial inner membrane
Cellular Component GO:0045259 proton-transporting ATP synthase complex
Molecular Function GO:0015078 proton transmembrane transporter activity
Biological Process GO:0015986 proton motive force-driven ATP synthesis

Reference

[1] Chen Y, Sun W, Sun Z, Zhao H, Wu T et al.. Effect of electroacupuncture on hippocampal protein lactylation in a rat model of vascular dementia.. Front Neurol 16:1629474. 2025. PMID: 40963935.