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| Isoquercitrin - Quercetin-3-O-Glucoside Alternative Names: Isoquercetin, quercetin-3-O-glucoside, quercetin-3-O-β-D-glucopyranoside, Q3G, IQ Type: Flavonol glycoside / quercetin glycoside / natural phytochemical Sources: Naturally present in numerous medicinal plants, fruits, vegetables, and plant-derived foods. Isoquercitrin can also be produced from rutin by enzymatic removal of the rhamnose residue. Function: Isoquercitrin is a bioactive quercetin glycoside with antioxidant, anti-inflammatory, anticancer, metabolic, and neuroprotective effects. Reported mechanisms include modulation of Nrf2/ARE, NF-κB, JAK/STAT3, PI3K/AKT, MAPK, AMPK, Wnt signaling, oxidative stress, and programmed cell death. Cancer: Preclinical studies demonstrate inhibition of cancer-cell proliferation, survival, migration, and tumor-associated signaling together with induction of apoptosis and modulation of oxidative stress. Anticancer mechanisms include regulation of Wnt, MAPK, JAK/STAT3, PI3K/AKT, NF-κB, and related signaling pathways. Alzheimer's Disease: Preclinical studies indicate neuroprotective activity, including improved learning and memory in amyloid-β-induced models and reduction of oxidative and inflammatory neuronal injury. Isoquercitrin — also called isoquercetin, quercetin-3-O-glucoside, quercetin-3-O-β-D-glucopyranoside, Q3G, IQ, or ISQ, is a naturally occurring flavonol glycoside consisting of quercetin conjugated to glucose at the 3-O position. It is a dietary phytochemical and quercetin derivative found in many fruits, vegetables, medicinal plants, and plant-derived foods; it can also be produced from rutin by enzymatic removal of rhamnose. Isoquercitrin is generally absorbed more efficiently than quercetin aglycone or rutin, but circulating intact isoquercitrin is limited because intestinal and hepatic metabolism rapidly produces quercetin glucuronide, sulfate, methylated, and other metabolites. Enzymatically modified isoquercitrin and α-glycosyl isoquercitrin are related higher-solubility preparations but should not be treated as pharmacokinetically identical to native isoquercitrin. Primary mechanisms (ranked):
Bioavailability / PK relevance: Oral isoquercitrin is absorbed substantially better than rutin and is rapidly processed in the intestine and liver. Human administration of quercetin-3-glucoside produces plasma quercetin-derived conjugates with peak total quercetin concentrations in the low-micromolar range; intact glucoside is essentially absent or present only in very small quantities in plasma. Therefore, systemic biological activity after oral administration is likely mediated substantially by quercetin conjugates and downstream metabolites rather than prolonged exposure to intact isoquercitrin. Enzymatic glycosylation can further improve solubility and systemic exposure, but EMIQ/AGIQ should be distinguished from native isoquercitrin. In-vitro vs systemic exposure relevance: Many anticancer experiments use approximately 20–200 µM isoquercitrin, whereas human oral exposure produces predominantly quercetin metabolites at substantially lower free/intact isoquercitrin concentrations. Consequently, direct tumor-cell effects demonstrated at tens to hundreds of micromolar intact isoquercitrin may exceed realistically achievable systemic exposure after conventional oral dosing. Lower-micromolar or metabolite-mediated effects have greater translational plausibility. The bladder is a potential special context because urinary exposure to flavonoid metabolites may differ from plasma exposure, but this has not established clinical anticancer efficacy. Clinical evidence status: Cancer: preclinical only; cell-culture and xenograft evidence exists for hepatocellular, bladder, pancreatic, colorectal, melanoma, osteosarcoma, esophageal and other tumor models, but there is no established anticancer indication or convincing human oncology trial evidence. Human studies of isoquercitrin-related preparations have primarily evaluated cardiovascular, antioxidant, exercise/nutrition, or allergic outcomes rather than cancer. Alzheimer’s disease: preclinical only, with cell and rodent evidence for anti-amyloidogenic, antioxidant, mitochondrial-protective, and cognitive effects; no established human AD efficacy. Regulatory use should not be confused with therapeutic validation: Health Canada lists isoquercitrin as an approved NHP ingredient, while α-glycosyl isoquercitrin has FDA GRAS-notice status for specified food uses; neither status represents approval as a cancer or Alzheimer treatment. Isoquercitrin Cancer-Relevant Mechanisms
TSF: P: 0–30 min R: 30 min–3 hr G: >3 hr Alzheimer’s disease relevance: Isoquercitrin has meaningful but entirely preclinical AD-related evidence. Reported effects include direct inhibition of β- and γ-secretase activity, ↓ Aβ aggregation with enhanced disaggregation in cell-free systems, ↓ amyloidogenic proteins including β-secretase and presenilins in animal models, ↓ neuronal oxidative stress, preservation of mitochondrial function, ↓ apoptosis, and improved learning and memory in Aβ- and streptozotocin-based rodent models. These findings support an anti-amyloidogenic and neuroprotective research classification, but there is currently no convincing human clinical evidence demonstrating prevention or treatment of Alzheimer’s disease. Translation constraint: Most AD evidence uses experimental Aβ25-35 injection, streptozotocin, cell-based amyloid systems, or other simplified models that do not reproduce the full biology of sporadic human AD. Oral metabolism also means that brain exposure to intact isoquercitrin is uncertain and circulating quercetin metabolites may contribute substantially to any systemic effect. Isoquercitrin Alzheimer-Relevant Mechanisms
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| Destruction of mitochondrial transmembrane potential, which is widely regarded as one of the earliest events in the process of cell apoptosis. Mitochondria are organelles within eukaryotic cells that produce adenosine triphosphate (ATP), the main energy molecule used by the cell. For this reason, the mitochondrion is sometimes referred to as “the powerhouse of the cell”. Mitochondria produce ATP through process of cellular respiration—specifically, aerobic respiration, which requires oxygen. The citric acid cycle, or Krebs cycle, takes place in the mitochondria. The mitochondrial membrane potential is widely used in assessing mitochondrial function as it relates to the mitochondrial capacity of ATP generation by oxidative phosphorylation. The mitochondrial membrane potential is a reliable indicator of mitochondrial health. In cancer cells, ΔΨm is often decreased, which can lead to changes in cellular metabolism, increased glycolysis, increased reactive oxygen species (ROS) production, and altered cell death pathways. The membrane of malignant mitochondria is hyperpolarized (−220 mV) in comparison to their healthy counterparts (−160 mV), which facilitates the penetration of positively charged molecules to the cancer cells mitochondria. The MMP is a critical indicator of mitochondrial function, directly reflecting the organelle's capacity to generate ATP through oxidative phosphorylation. |
| 7848- | ISQ, | Review of anticancer mechanisms of isoquercitin |
| - | Review, | Var, | NA |
| 7800- | ISQ, | Isoquercitrin Attenuates Oxidative Liver Damage Through AMPK-YAP Signaling: An Integrative In Silico, In Vitro, and In Vivo Study |
| - | vitro+vivo, | Nor, | HepG2 |
| 7816- | ISQ, | Isoquercitrin Induces Endoplasmic Reticulum Stress and Immunogenic Cell Death in Gastric Cancer Cells |
| - | in-vitro, | GC, | AGS | - | in-vitro, | GC, | HGC27 |
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
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