| Features: | ||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||
| Glabrescione B (GlaB) was extracted and purified from seeds of Derris glabrescens (Leguminosae) Glabrescione B — Glabrescione B (GlaB) is a naturally occurring isoflavone-derived small molecule originally isolated from the seeds of Derris glabrescens. It is classified as a direct GLI transcription-factor inhibitor and experimental Hedgehog-pathway antagonist. Unlike clinically used Smoothened inhibitors, GlaB acts downstream of SMO by binding the zinc-finger DNA-binding region of GLI1 and disrupting GLI1-DNA interaction. This downstream mechanism is potentially relevant to tumors with canonical or non-canonical GLI1 activation and to resistance mechanisms that bypass SMO. GlaB remains an experimental preclinical compound rather than an approved anticancer drug. Primary mechanisms (ranked):
Bioavailability / PK relevance: Free GlaB has poor aqueous solubility and unfavorable formulation characteristics that substantially limit systemic translation. Nanocarrier approaches, including polymeric nanocapsules, self-assembling mPEG-cholane micelles, and liposomes, have been developed to improve solubility, circulation exposure, tumor delivery, and pharmacokinetics. In mouse models, micellar GlaB achieved longer systemic exposure and delivery across the blood-brain barrier; newer liposomal formulations produced higher exposure and slower elimination than free GlaB. In-vitro vs systemic exposure relevance: Many mechanistic experiments use approximately 1–10 µM GlaB for 24–72 hours. These concentrations should not be assumed to be achievable or maintainable with unformulated systemic GlaB. The major translational issue is therefore drug delivery rather than evidence that oral or conventional systemic dosing can reproduce standard in-vitro concentrations. Nanocarrier formulation materially changes this exposure constraint. Clinical evidence status: Preclinical only. Antitumor activity has been demonstrated in cultured cells, cancer stem-cell assays, xenografts, orthotopic medulloblastoma models, patient-derived renal cancer organoids, and other animal models. No human therapeutic trial of Glabrescione B and no FDA, EMA, or Health Canada approval were identified as of August 2026. Current development remains focused on formulation, pharmacokinetics, and preclinical validation. Glabrescione B Cancer-Relevant Mechanisms
|
| Source: |
| Type: |
| Cancer Stem Cells Phytochemicals (natural plant-derived compounds) that may affect CSCs: Curcumin — suppresses self-renewal and pathways (Wnt/Notch/Hedgehog). Resveratrol — shown to reduce CSC populations and sphere formation in multiple models. Sulforaphane (from broccoli sprouts) — reported to inhibit CSC properties and pathways; active in vitro and in vivo. EGCG (epigallocatechin-3-gallate, green tea) — reduces CSC markers and sphere formation in several cancer types. Quercetin — reported to inhibit CSC proliferation, self-renewal and invasiveness (breast, endometrial, others). Berberine — shown to suppress CSC “stemness” and reduce tumorigenic properties in multiple models. Genistein (soy isoflavone) — decreases CSC markers, sphere formation and stemness signaling in prostate/breast/other models. Honokiol (Magnolia bark) — shown to eliminate or suppress CSC-like populations in oral, colon, glioma models. Luteolin — inhibits stemness/EMT and reduces CSC markers and self-renewal in breast, prostate and other models. Withaferin A (from Withania somnifera / ashwagandha) — multiple preclinical reports show WA targets CSCs and reduces tumor growth/metastasis in models. Circadian disruption in cancer and regulation of cancer stem cells by circadian clock genes: An updated review Potential Role of the Circadian Clock in the Regulation of Cancer Stem Cells and Cancer Therapy Can we utilise the circadian clock to target cancer stem cells? |
| 31- | GlaB, | Gli1/DNA interaction is a druggable target for Hedgehog-dependent tumors |
| - | in-vitro, | BCC, | NA |
| 32- | GlaB, | Gli1/DNA interaction is a druggable target for Hedgehog-dependent tumors |
| - | in-vivo, | MB, | NA |
Query results interpretion may depend on "conditions" listed in the research papers. Such Conditions may include : -low or high Dose -format for product, such as nano of lipid formations -different cell line effects -synergies with other products -if effect was for normal or cancerous cells
Filter Conditions: Pro/AntiFlg:% IllCat:% CanType:% Cells:% prod#:90 Target#:795 State#:% Dir#:%
wNotes=0 sortOrder:rid,rpid