isoorientin / LDH Cancer Research Results

isoO, isoorientin: Click to Expand ⟱
Features:

Isoorientin is specifically luteolin-6-C-glucoside

Isoorientin — a naturally occurring flavone C-glycoside, specifically luteolin-6-C-glucoside, also known as homoorientin. It is a dietary/plant polyphenol rather than an approved drug and occurs in multiple medicinal and food plants. Isoorientin is structurally related to orientin, but differs in the position of C-glucosylation. Its anticancer pharmacology is dominated by redox-dependent mitochondrial apoptosis and suppression of pro-survival signaling, while in non-cancer inflammatory and neurological models it generally behaves as an antioxidant and anti-inflammatory GSK3β/NF-κB modulator. This context-dependent redox behavior is important when interpreting apparently opposite ROS effects.
-buckwheat sprouts contain orientin, isoorientin, vitexin, isovitexin, and rutin

Primary mechanisms (ranked):

  1. ROS-dependent mitochondrial apoptosis in cancer cells, with mitochondrial membrane-potential loss, cytochrome-c release, Bax/Bcl-2 shift and caspase activation.
  2. PI3K/Akt survival-pathway suppression, contributing to apoptosis and reduced proliferation.
  3. MAPK/STAT3/NF-κB modulation, typically with ↑ JNK/p38 and ↓ ERK, STAT3 and NF-κB signaling in susceptible cancer models.
  4. Wnt/β-catenin/STAT3 suppression, reducing cancer stem-cell characteristics, epithelial-mesenchymal transition, invasion and tumorigenicity.
  5. AMPK activation, associated with reduced proliferation, invasiveness, EMT-associated signaling and VEGF secretion in pancreatic cancer models.
  6. Cell-cycle arrest, commonly G2/M in lung and gastric cancer models, involving ↓ cyclins/CDKs and ↑ p21/p27.
  7. Autophagy induction accompanying apoptosis in selected models, particularly HepG2 cells, through ROS-, PI3K/Akt-, JNK-, p38- and p53-linked signaling.
  8. Anti-inflammatory GSK3β inhibition with secondary NRF2/HO-1 activation in non-cancer cells; this is more relevant to neuroprotection and inflammatory disease than to the primary anticancer mechanism.

Bioavailability / PK relevance: Oral systemic exposure is low. In rats, absolute oral bioavailability was approximately 9%, with low circulating parent isoorientin after a 150 mg/kg oral dose and substantially greater formation of sulfated metabolite. Low aqueous solubility and extensive first-pass metabolism are important translational constraints. Reported intravenous terminal half-life in rats is approximately 1.7–2.1 hours.

In-vitro vs systemic exposure relevance: Many anticancer experiments use approximately 20–160 µM isoorientin, while oral administration produces low circulating parent-compound exposure. These concentrations therefore commonly exceed plausibly achievable systemic free-isoorientin concentrations after conventional oral dosing. Local gastrointestinal exposure, metabolites, high-dose experimental administration and specialized delivery systems may not follow this limitation to the same degree.

Clinical evidence status: Preclinical. Anticancer activity is supported by multiple cell studies and a small number of animal/xenograft studies, including oral squamous-cell carcinoma models. A 2026 systematic review identified 12 eligible anticancer studies but no established human oncology efficacy. Isoorientin is not an approved anticancer drug and there is no established therapeutic human cancer dose.

Isoorientin Cancer Mechanisms

Rank Pathway / Axis Cancer Cells Normal Cells TSF Primary Effect Notes / Interpretation
1 ROS-dependent mitochondrial apoptosis ↑ ROS; ↓ mitochondrial membrane potential; ↑ cytochrome c; ↑ Bax/Bcl-2 ratio; ↑ caspase-3 ↓ ROS or ↔ (context-dependent) P→G Apoptosis Core anticancer mechanism in liver, lung and gastric models. NAC substantially suppresses apoptosis, supporting a causal role for ROS rather than ROS being only a downstream marker.
2 PI3K/Akt survival signaling ↓ Akt phosphorylation; ↓ survival signaling ↔ (context-dependent) R→G Growth inhibition and apoptosis Strong mechanistic evidence in HepG2 and gastric cancer models; interacts with ROS and mitochondrial apoptosis.
3 MAPK STAT3 NF-κB signaling ↑ JNK; ↑ p38; ↓ ERK; ↓ STAT3; ↓ NF-κB ↓ excessive MAPK/NF-κB activation R→G Apoptosis and reduced pro-survival transcription ROS-dependent signaling is particularly well demonstrated in A549 lung cancer cells. In inflammatory normal-cell models, suppression of MAPK/NF-κB is predominantly cytoprotective.
4 Wnt β-catenin STAT3 and cancer stemness ↓ β-catenin; ↓ p-STAT3; ↓ TCF1/TCF7; ↓ LEF1; ↓ stemness Not established G Reduced EMT, invasion and tumor initiation Supported by oral squamous-cell carcinoma cell and xenograft models. Particularly relevant to metastatic and cancer-stem-cell phenotypes.
5 AMPK and angiogenic signaling ↑ AMPK; ↓ VEGF; ↓ invasiveness ↔ or ↑ metabolic AMPK signaling (context-dependent) R→G Growth and invasion suppression Mechanistically prominent in pancreatic cancer; PRKAA1 knockdown substantially attenuated the reported anticancer effects.
6 Cell-cycle control ↑ p21; ↑ p27; ↓ cyclin B1; ↓ CDK1/2; ↑ G2/M arrest Not established G Proliferation arrest G2/M arrest is reported in lung and gastric cancer; phase effects vary among tumor models.
7 Autophagy apoptosis coupling ↑ Beclin-1; ↑ LC3-II; ↑ autophagy Context-dependent R→G Autophagic and apoptotic cell death Best established in HepG2 cells. Pharmacologic inhibition suggests reciprocal interaction between autophagy and apoptosis rather than two independent responses.
8 EMT migration and invasion ↓ EMT; ↓ migration; ↓ invasion Not established G Antimetastatic phenotype Downstream of Wnt/β-catenin/STAT3, Akt and AMPK signaling depending on tumor model.
9 Chemosensitization ↑ cisplatin cytotoxicity (model-dependent) Not established G Potential combination therapy Demonstrated preclinically in oral squamous-cell carcinoma. Human benefit and therapeutic index remain unknown.
10 GSK3β NRF2 HO-1 inflammatory regulation Context-dependent ↓ GSK3β activity; ↑ NRF2; ↑ HO-1; ↓ NF-κB R→G Anti-inflammatory and cytoprotective activity More strongly established in macrophage, microglial and neurological disease models than as a primary cancer mechanism.
11 Clinical Translation Constraint Low oral exposure relative to many effective in-vitro concentrations Low oral exposure relative to many experimental concentrations G PK and evidence limitation Rat oral bioavailability is approximately 9%; substantial first-pass sulfation occurs. Most anticancer evidence remains cellular or animal, with no established human oncology dose or clinical efficacy.

TSF legend: P: 0–30 min    R: 30 min–3 hr    G: >3 hr



Isoorientin and Alzheimer’s disease — Isoorientin has meaningful preclinical AD relevance centered on inhibition of GSK3β and suppression of neuroinflammation. In APP/PS1 mice, chronic oral administration reduced GSK3β overactivation, tau hyperphosphorylation, amyloid-β deposition and microglial inflammation while improving long-term potentiation and spatial memory. Cell studies additionally show suppression of Aβ-induced ROS, NF-κB, iNOS, COX-2 and inflammatory cytokines. This evidence remains preclinical; no established human AD efficacy or therapeutic dose has been demonstrated.

Primary mechanisms (ranked):

  1. GSK3β inhibition, reducing pathological tau phosphorylation and influencing downstream inflammatory and redox signaling.
  2. Reduction of amyloid-β-associated pathology and Aβ-induced microglial activation.
  3. NF-κB suppression with reduced TNF-α, IL-6, iNOS and COX-2.
  4. Secondary NRF2/HO-1 activation and antioxidant protection in neural and microglial cells.
  5. Protection of synaptic plasticity and cognitive function in animal models.

Clinical evidence status: Preclinical. Evidence includes cellular models and APP/PS1 transgenic mice, but there is no established clinical efficacy in human Alzheimer’s disease.

Isoorientin Alzheimer’s Mechanisms

Rank Pathway / Axis Modulation Primary Effect Notes / Interpretation
1 GSK3β ↓ activity Reduced pathological kinase signaling Isoorientin has been characterized as a substrate-competitive GSK3β inhibitor; GSK3β is a particularly relevant target because of its roles in tau phosphorylation and neuroinflammation.
2 Tau phosphorylation ↓ p-tau Reduced tau pathology Observed in APP/PS1 mouse brain and mechanistically consistent with reduced GSK3β activity.
3 Amyloid beta pathology ↓ Aβ deposition Reduced amyloid burden Reduced Aβ deposition has been reported in APP/PS1 mice; the precise contribution of direct amyloid processing versus secondary signaling effects remains uncertain.
4 Microglial NF-κB inflammation ↓ NF-κB; ↓ TNF-α; ↓ IL-6; ↓ iNOS; ↓ COX-2 Reduced neuroinflammation Supported by LPS- and Aβ-stimulated microglial models and by reduced activated microglia in APP/PS1 mice.
5 NRF2 HO-1 antioxidant response ↑ NRF2; ↑ HO-1; ↓ ROS Neuroprotection Secondary cytoprotective mechanism particularly evident in inflammatory microglial models.
6 Synaptic plasticity ↑ long-term potentiation Improved synaptic function Observed electrophysiologically in APP/PS1 mice after chronic treatment.
7 Cognition and spatial memory ↑ memory performance Functional neurological improvement Animal-model outcome; should not be interpreted as demonstrated clinical cognitive efficacy.
8 Clinical Translation Constraint Low oral bioavailability; human efficacy not established Translation limitation Animal efficacy is encouraging but human pharmacokinetics, CNS exposure, therapeutic dose and clinical effectiveness remain undetermined.


LDH, Lactate Dehydrogenase: Click to Expand ⟱
Source:
Type:
LDH is a general term that refers to the enzyme that catalyzes the interconversion of lactate and pyruvate. LDH is a tetrameric enzyme, meaning it is composed of four subunits.
LDH refers to the enzyme as a whole, while LDHA specifically refers to the M subunit. Elevated LDHA levels are often associated with poor prognosis and aggressive tumor behavior, similar to elevated LDH levels.
leakage of LDH is a well-known indicator of cell membrane integrity and cell viability [35]. LDH leakage results from the breakdown of the plasma membrane and alterations in membrane permeability, and is widely used as a cytotoxicity endpoint.

However, it's worth noting that some studies have shown that LDHA is a more specific and sensitive biomarker for cancer than total LDH, as it is more closely associated with the Warburg effect and cancer metabolism.

Dysregulated LDH activity contributes significantly to cancer development, promoting the Warburg effect (Chen et al., 2007), which involves increased glucose uptake and lactate production, even in the presence of oxygen, to meet the energy demands of rapidly proliferating cancer cells (Warburg and Minami, 1923; Dai et al., 2016b). LDHA overexpression favors pyruvate to lactate conversion, leading to tumor microenvironment acidification and aiding cancer progression and metastasis.

Inhibitors:
Flavonoids, a group of polyphenols abundant in fruit, vegetables, and medicinal plants, function as LDH inhibitors.
LDH is used as a clinical biomarker for Synthetic liver function, nutrition


Tier A — Direct LDH Enzyme Inhibitors (Validated Catalytic Inhibition)

Rank Compound Type LDH Target Potency Level Primary Effect Notes
1 NCI-006 Research drug LDHA / LDHB High (in vivo active) Potent glycolysis suppression Modern benchmark LDH inhibitor used in metabolic oncology models.
2 (R)-GNE-140 Research drug LDHA (±LDHB) High (nM range reported) Lactate production ↓ Widely used experimental LDH inhibitor.
3 FX11 Research drug LDHA High (μM range) Metabolic crisis in LDHA-dependent tumors Classic LDHA inhibitor; often increases ROS secondary to metabolic stress.
4 Oxamate Tool compound LDH (pyruvate-competitive) Moderate (mM cellular use) Reduces lactate flux Classical LDH inhibitor; requires high concentrations in cells.
5 Gossypol Natural product derivative LDHA Moderate–High Glycolysis inhibition Also has other targets; safety considerations apply.
6 Galloflavin Natural compound LDH isoforms Moderate Lactate production ↓ One of the better-supported “natural-like” LDH inhibitors.

Tier B — Indirect LDH-Axis Modulators (Glycolysis / Lactate Reduction Without Confirmed Direct Catalytic Inhibition)

Rank Compound Mechanism Type LDH Claim Type Primary Axis Notes / Caution
1 Lonidamine MCT/MPC modulation Lactate axis inhibition Metabolic transport blockade Better classified as lactate/pyruvate transport modulator.
2 Stiripentol Repurposed drug LDH pathway modulation Metabolic axis modulation Emerging oncology interest; primarily neurological drug.
3 Quercetin Flavonoid Reported LDH inhibition (mixed evidence) NF-κB / PI3K modulation Often LDH-release confusion; direct enzymatic proof limited.
4 Ursolic acid Triterpenoid Reported LDH interaction Warburg modulation More credible as metabolic signaling modulator.
5 Fisetin Flavonoid Docking / indirect reports Apoptosis / survival signaling Enzyme inhibition not well validated.
6 Resveratrol Polyphenol Indirect glycolysis suppression AMPK / HIF-1α modulation Reduces lactate via upstream signaling.
7 Curcumin Polyphenol Indirect LDH expression modulation Inflammation + metabolic signaling Bioavailability limits translational strength.
8 Berberine Alkaloid Indirect metabolic modulation AMPK activation Closer to metformin-like metabolic pressure.
9 Honokiol Lignan Indirect glycolysis effects Survival pathway suppression Not validated as catalytic LDH inhibitor.
10 Silibinin Flavonolignan Mixed / indirect reports Inflammation + metabolic axis Often misclassified as LDH inhibitor.
11 Kaempferol Flavonoid Often LDH-release marker confusion Glucose transport / signaling Do not list as direct LDH inhibitor without enzyme data.
12 Oleanolic acid / Limonin / Allicin / Taurine Natural compounds Weak / indirect evidence General metabolic modulation Should not be categorized as true LDH inhibitors.

Tier A = Direct catalytic LDH inhibition (enzyme-level validation).
Tier B = Indirect lactate reduction or glycolytic modulation without strong catalytic inhibition evidence.
Important: LDH release assays (cell damage marker) are not proof of LDH enzymatic inhibition.



Scientific Papers found: Click to Expand⟱
7885- isoO,    Isoorientin from Gypsophila elegans induces apoptosis in liver cancer cells via mitochondrial-mediated pathway
Dose↝, tumCV↓, TumCP↓, LDH↑, TumCCA↑, ROS↑, MMP↓, BAX↑, Bcl-2↓, Cyt‑c↑, Casp3↑, Casp9↑,

Showing Research Papers: 1 to 1 of 1

* indicates research on normal cells as opposed to diseased cells
Total Research Paper Matches: 1

Pathway results for Effect on Cancer / Diseased Cells:


Redox & Oxidative Stress(tgid=1)

ROS↑, 1,  

Mitochondria & Bioenergetics(tgid=3)

MMP↓, 1,  

Core Metabolism/Glycolysis(tgid=4)

LDH↑, 1,  

Cell Death(tgid=5)

BAX↑, 1,   Bcl-2↓, 1,   Casp3↑, 1,   Casp9↑, 1,   Cyt‑c↑, 1,  

Transcription & Epigenetics(tgid=7)

tumCV↓, 1,  

Cell Cycle & Senescence(tgid=11)

TumCCA↑, 1,  

Migration(tgid=13)

TumCP↓, 1,  

Drug Metabolism & Resistance(tgid=21)

Dose↝, 1,  

Clinical Biomarkers(tgid=22)

LDH↑, 1,  
Total Targets: 13

Pathway results for Effect on Normal Cells:


Total Targets: 0

Scientific Paper Hit Count for: LDH, Lactate Dehydrogenase
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#:461  Target#:906  State#:%  Dir#:%
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