ArticleJournal of advanced research2025
Dual regulation of phaseol on osteoclast formation and osteoblast differentiation by targeting TAK1 kinase for osteoporosis treatment.
Article in Journal of advanced research, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers.
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Who cites it
6 citing papers in PubMed.
- Long non-coding RNA antisense of insulin-like growth factor 2 receptor promotes osteogenic differentiation by enhancing runt-related transcription factor 2 translation: A potential therapeutic target for osteoporosis.Journal of advanced research · 2026Article
- Traditional Chinese Medicine for osteoporosis management: from molecular mechanisms to drug discovery.Chinese medicine · 2026Review
- Diallyl Disulfide Mitigates LPS-Induced Inhibition of Osteogenic Differentiation and Alleviates Inflammatory Bone Loss via PI3K/AKT Signaling Pathway.Drug design, development and therapy · 2026Article
- Paroxetine as a Therapeutic Agent in Inflammatory Osteolysis: Mechanistic Insights and Efficacy.Drug design, development and therapy · 2026Article
- Unraveling the causal role of TGF-βRII in osteoporosis and the potential of its associated differential genes as novel targets.European journal of medical research · 2025Article
- γ-Mangostin attenuates osteoclastogenesis and bone resorption by suppressing the PI3K/AKT/NF-κB pathway.Frontiers in pharmacology · 2025Article
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8 authors.
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Abstract
introductionOsteoporosis is an osteolytic disorder resulting from an inequilibrium between osteoblast-mediated osteogenesis and osteoclast-driven bone absorption. Safe and effective approaches for osteoporosis management are still highly demanded. PURPOSE: This study aimed to examine the osteoprotective effect and the mechanisms of phaseol (PHA) in vitro and in vivo.
methodsVirtual screening identified the potential inhibitors of transforming growth factor-beta-activated kinase 1 (TAK1) from coumestans. The interaction between PHA and TAK1 was investigated by molecular simulation, pronase and thermal resistance assays. The maturation and function of osteoclasts were determined using tartrate-resistant acid phosphatase staining, bone absorption and F-actin ring formation assays. The differentiation and calcification of osteoblasts were assessed by alkaline phosphatase staining and Alizarin Red S staining. The activity of related targets and pathways were detected using immunoblotting, immunofluorescence and co-immunoprecipitation assays. The in vivo osteoprotective effect of PHA was evaluated using a lipopolysaccharide (LPS)-induced mouse osteoporosis model.
resultsFirstly, we confirmed that TAK1 was essential in controlling bone remodeling by regulating osteogenesis and osteoclastogenesis. Moreover, PHA, a coumestan compound predominantly present in leguminous plants, was identified as a potent TAK1 inhibitor through virtual and real experiments. Subsequently, PHA was observed to enhance osteoblast differentiation and calcification, while suppress osteoclast maturation and bone resorptive function in vitro. Mechanistically, PHA remarkably inhibited the TRAF6-TAK1 complex formation, and inhibited the activation of TAK1, MAPK and NF-κB pathways by targeting TAK1. In the in vivo study, PHA strongly attenuated bone loss, inflammatory responses, and osteoclast over-activation in lipopolysaccharide-induced osteoporosis mice.
conclusionPHA had a dual-functional regulatory impact on osteogenesis and osteoclastogenesis by targeting TAK1, suppressing TRAF6-TAK1 complex generation, and modulating its associated signaling pathways, ultimately leading to mitigating osteoporosis. This study offered compelling evidence in favor of using PHA for preventing and managing osteoporosis as both a bone anabolic and anti-resorptive agent.
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