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Published on: June 16, 2022
Luteolin inhibition of V-ATPase a3-d2 interaction decreases osteoclast resorptive activity
Gazelle J Crasto1, Norbert Kartner, Yeqi Yao
1Dental Research Institute, University of Toronto, Toronto, Ontario, Canada M5G 1G6.
Abstract:
V-ATPase-mediated acid secretion is required for osteoclast bone resorption. Osteoclasts are enriched in V-ATPase a3 and d2 subunit isoforms, and disruption of either of their genes impairs bone resorption. Using purified fusion proteins of a3 N-terminal domain (NTa3) and full-length d subunits we determined in a solid-phase binding assay that half-maximal binding of d1 or d2 to immobilized NTa3 occurs at 3.1 ± 0.4 or 3.6 ± 0.6 nM, respectively, suggesting equally high-affinity interactions. A high-throughput modification of this assay was then used to screen chemical libraries for a3-d2 interaction inhibitors, and luteolin, a naturally occurring flavonoid, was identified, with half-maximal inhibition at 2.4 ± 0.9 µM. Luteolin did not significantly affect NIH/3T3 or RAW 264.7 cell viability, nor did it affect cytokine-induced osteoclastogenesis of RAW 264.7 cells or bone marrow mononuclear cells at concentrations ≤ 40 µM. Luteolin inhibited osteoclast bone resorption with an EC(50) of approximately 2.5 µM, without affecting osteoclast actin ring formation. Luteolin-treated osteoclasts produced deeper resorption pits, but with decreased surface area, resulting in overall decreased pit volume. Luteolin did not affect transcription, or protein levels, of V-ATPase subunits a3, d2, and E, or V(1) V(0) assembly. Previous work has shown that luteolin can be effective in reducing bone resorption, and our studies suggest that this effect of luteolin may be through disruption of osteoclast V-ATPase a3-d2 interaction. We conclude that the V-ATPase a3-d2 interaction is a viable target for novel anti-resorptive therapeutics that potentially preserve osteoclast-osteoblast signaling important for bone remodeling.
Insights
The V-ATPase a3-d2 interaction is crucial for osteoclast bone resorption. Researchers identified luteolin as an inhibitor of this interaction, suggesting it as a potential therapeutic target for bone remodeling disorders.
Area of Science:
- Biochemistry
- Cell Biology
- Pharmacology
Background:
- Osteoclast-mediated bone resorption relies on V-ATPase acid secretion.
- Specific V-ATPase subunit isoforms, a3 and d2, are essential for this process.
- Disruption of V-ATPase a3 or d2 genes impairs bone resorption.
Purpose of the Study:
- To investigate the interaction between V-ATPase a3 and d subunits.
- To identify inhibitors of the V-ATPase a3-d2 interaction.
- To explore luteolin as a potential therapeutic agent for bone resorption.
Main Methods:
- Solid-phase binding assays using purified fusion proteins to determine binding affinities.
- High-throughput screening of chemical libraries to identify interaction inhibitors.
- Cell viability assays and assessment of osteoclastogenesis and bone resorption in vitro.
Main Results:
- V-ATPase d1 and d2 subunits bind to the a3 N-terminal domain with high affinity.
- Luteolin identified as an inhibitor of the a3-d2 interaction with an IC50 of 2.4 µM.
- Luteolin inhibited osteoclast bone resorption (EC50 ≈ 2.5 µM) without affecting cell viability or osteoclastogenesis.
Conclusions:
- The V-ATPase a3-d2 interaction is a validated target for anti-resorptive therapies.
- Luteolin's anti-resorptive effects may stem from its disruption of the V-ATPase a3-d2 interaction.
- Targeting this interaction could lead to novel therapeutics that preserve bone remodeling signaling.
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