Target intelligence / Profile preview

Vacuolar-type H+-ATPase (V-ATPase) (V-ATPase)

Target
V-ATPase
Molecular classification
Enzyme, Transporter, ATPase, Proton pump
01

Overview

Vacuolar-type H+-ATPase (V-ATPase) is a multi-subunit enzyme complex that functions as an ATP-driven proton pump, primarily responsible for the acidification of endosomes, lysosomes, and other intracellular organelles [8, 17, 23]. By transporting protons from the cytoplasm into the organelle lumen, V-ATPase creates the acidic environment necessary for various biological processes, including receptor-ligand dissociation, protein degradation, and vesicular trafficking [8, 21, 24]. Dysregulation of endosomal pH is implicated in numerous diseases; for instance, many viruses (such as SARS-CoV-2 and Influenza) exploit the acidic endosomal environment for membrane fusion and entry into the host cell [1, 12, 15]. In cancer, V-ATPase is often overexpressed or relocated to the plasma membrane, contributing to an acidic tumor microenvironment that promotes invasion and drug resistance [3, 8, 23]. Therapeutic strategies targeting endosomal acidification include direct V-ATPase inhibitors like bafilomycin A1 and lysosomotropic agents like chloroquine, which neutralize the pH gradient [11, 12, 15, 19]. However, the essential housekeeping role of V-ATPase across multiple tissues presents significant challenges for achieving therapeutic selectivity and minimizing systemic toxicity [8, 23].

Other names
Endosomal acidificationEndosomal pH regulationVacuolar proton pumpH+-transporting ATPaseV-type ATPase
02

Mechanism of action

Drugs targeting endosomal acidification primarily act by either directly inhibiting the V-ATPase enzyme complex (e.g., bafilomycin A1) to prevent proton pumping, or by acting as lysosomotropic weak bases (e.g., chloroquine) that accumulate in acidic compartments and neutralize the pH gradient [11, 12, 15]. These actions disrupt pH-dependent processes such as viral membrane fusion, receptor-ligand dissociation, and lysosomal enzyme activity [1, 19].

03

Biological functions

Endosomal acidification [1, 8, 17]pH regulation [2, 7, 10]Protein degradation [8, 21]Vesicular trafficking [2, 8, 21]Autophagy [2, 8, 20]Bone resorption [8, 24]Signal transduction [8, 21, 23]
04

Disease associations

Infection [1, 12, 15]Cancer [3, 8, 23]Neurodegenerative disease [2, 4, 7]Osteoporosis [8, 24]Renal tubular acidosis [24]
05

Safety considerations

Disruption of autophagy and lysosomal degradation [2, 8, 20]Systemic toxicity due to housekeeping roles [8, 23]Potential for lysosomal storage-like phenotypes [2, 21]Impairment of renal acid-base regulation [24]Neurotoxicity [2]
06

Interacting drugs

Bafilomycin A1

8 more in the full profile.

07

Biomarkers

Endosomal pH [10, 11, 13]Cathepsin L activity [1, 19]Viral N gene levels (for SARS-CoV-2) [12, 15]Bone resorption markers (e.g., CTX-1) [8]

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