itraconazole Cancer Research Results

itraC, itraconazole: Click to Expand ⟱
Features:

Itraconazole — a synthetic, highly lipophilic triazole antifungal drug with substantial drug-repurposing interest in oncology. Standard abbreviations include ITZ and ITRA; Sporanox is a major brand name. Its approved pharmacologic function is inhibition of fungal lanosterol 14α-demethylase, disrupting ergosterol synthesis. Its anticancer activity is mechanistically distinct and appears to be multitargeted, involving direct inhibition of NPC1-dependent lysosomal cholesterol export, VDAC1-dependent metabolic signaling, mTOR suppression, inhibition of VEGFR2 maturation/angiogenesis, and inhibition of Hedgehog signaling through SMO. Itraconazole remains an approved antifungal rather than an approved anticancer drug.

Primary mechanisms (ranked):

  1. ↓ NPC1-mediated lysosomal cholesterol export, causing endolysosomal cholesterol accumulation and downstream disruption of growth and angiogenic signaling.
  2. ↓ Hedgehog signaling through inhibition of SMO trafficking/activation and downstream GLI signaling, particularly relevant to Hedgehog-dependent tumors such as basal cell carcinoma.
  3. ↓ Angiogenesis through impaired VEGFR2 glycosylation, trafficking and signaling, with reduced endothelial proliferation.
  4. ↓ mTORC1 signaling through complementary NPC1/cholesterol-trafficking and VDAC1/AMPK mechanisms.
  5. ↓ VDAC1-dependent mitochondrial metabolite transport, producing an increased AMP:ATP ratio, ↑ AMPK and ↓ mTOR signaling in endothelial models.
  6. ↓ P-glycoprotein/BCRP transporter activity and MDR-associated drug efflux, potentially contributing to chemosensitization; this is also a clinically important source of pharmacokinetic drug interactions.
  7. ↓ Glycolysis through the CEBPB–ENO1 axis in colorectal-cancer models, with decreases in glycolytic enzymes, glucose utilization, ECAR and tumor growth; this appears tumor- and model-dependent rather than a universal itraconazole mechanism.
  8. ↑ Autophagy and growth arrest in selected tumor models, frequently downstream of impaired cholesterol trafficking and AKT/mTOR signaling.
  9. ↑ Apoptosis and cell-cycle arrest in responsive tumor models as downstream phenotypes rather than primary direct molecular targets.

Bioavailability / PK relevance: Itraconazole has nonlinear, formulation-dependent pharmacokinetics and very low aqueous solubility. Conventional capsule absolute oral bioavailability is approximately 55%, is maximal immediately after a full meal, and decreases with reduced gastric acidity or acid-suppressive therapy. Capsule and oral-solution formulations are not pharmacokinetically interchangeable; systemic exposure is generally greater with oral solution at the same dose. After repeated capsule dosing, reported steady-state Cmax values are approximately 0.5, 1.1 and 2.0 µg/mL after 100 mg once daily, 200 mg once daily and 200 mg twice daily, respectively. Itraconazole is approximately 99.8% plasma-protein bound, extensively tissue distributed, metabolized predominantly through CYP3A4, and has an active hydroxy-itraconazole metabolite. Strong CYP3A4, P-glycoprotein and BCRP inhibition produces a major drug–drug interaction burden.

In-vitro vs systemic exposure relevance: Several experimentally important anticancer effects occur around the low-micromolar range, which overlaps total plasma concentrations achievable with high-dose clinical regimens, but free circulating itraconazole is far lower because protein binding approaches 99.8%. Tissue accumulation can exceed plasma concentrations, while exposure varies markedly among patients and formulations. Consequently, mechanistic plausibility is relatively strong for NPC1, VDAC1/mTOR and endothelial targets, but translation of individual in-vitro concentration-response findings should not be assumed without pharmacokinetic confirmation.

Clinical evidence status: Approved antifungal; oncology repurposing remains investigational. Human anticancer evidence includes phase II studies in basal cell carcinoma and prostate cancer, window-of-opportunity studies in NSCLC, and small combination studies in several malignancies. A recent randomized double-blind placebo-controlled study in 60 patients with advanced epithelial ovarian cancer reported improved response and progression-free outcomes when itraconazole was added to paclitaxel/carboplatin, but this remains a small single-institution study and does not establish an approved oncology indication. A recent perioperative phase II BCC study also showed a modest reduction in tumor diameter together with decreased CD105-associated angiogenesis. Important translational limitations include substantial interpatient PK variability, CYP3A4-mediated oncology drug interactions, a boxed warning concerning congestive heart failure/negative inotropy, and rare serious hepatotoxicity.



Itraconazole Mechanistic Pathway Map

Rank Pathway / Axis Cancer Cells Normal Cells TSF Primary Effect Notes / Interpretation
1 NPC1 and lysosomal cholesterol trafficking ↓ NPC1 activity
↑ lysosomal cholesterol
↓ NPC1 activity
↑ lysosomal cholesterol
R/G Disrupts cholesterol export and growth signaling Direct itraconazole binding to NPC1 is structurally and functionally supported. This mechanism can contribute to ↓ mTOR signaling and altered membrane-associated signaling. It is not intrinsically cancer-selective.
2 Hedgehog SMO GLI signaling ↓ SMO
↓ GLI1
↓ Hedgehog signaling
↓ (context-dependent) R/G Reduced Hedgehog-dependent proliferation One of the strongest tumor-directed repurposing mechanisms. Most relevant where Hedgehog signaling is oncogenic, particularly basal cell carcinoma. Clinical pharmacodynamic suppression has been demonstrated.
3 VEGFR2 maturation and angiogenesis ↓ vascular support ↓ VEGFR2 glycosylation
↓ VEGFR2 trafficking
↓ endothelial proliferation
R/G Anti-angiogenic activity Itraconazole impairs VEGFR2 N-glycosylation and surface trafficking in endothelial cells. This is primarily an effect on tumor-supporting vasculature rather than direct killing of malignant cells.
4 VDAC1 AMPK mTOR axis ↑ AMPK
↓ mTOR (model-dependent)
↓ VDAC1 function
↑ AMP:ATP
↑ AMPK
↓ mTOR
P/R Energetic stress and suppression of anabolic signaling VDAC1 is a direct itraconazole target in endothelial models. AMPK activation can occur within minutes and precedes mTOR inhibition.
5 mTORC1 growth signaling ↓ (model-dependent) ↓ (endothelium) R/G Reduced protein synthesis, proliferation and angiogenic signaling Mechanistically convergent downstream effect of both NPC1-mediated cholesterol sequestration and VDAC1-mediated AMPK activation.
6 P-glycoprotein and multidrug resistance ↓ P-gp activity
↓ drug efflux
↓ P-gp activity P/R Chemosensitization and altered drug disposition Itraconazole inhibits P-glycoprotein and can increase intracellular exposure to P-gp substrates. Therapeutically interesting for resistant tumors but clinically hazardous because the same transporter and CYP3A4 inhibition can markedly alter concomitant anticancer-drug exposure.
7 CEBPB ENO1 glycolysis axis ↓ CEBPB
↓ ENO1
↓ glycolysis
↓ ECAR
Not established G Reduced glycolytic metabolism and tumor growth Demonstrated recently in colorectal-cancer models. ENO1, LDHA, PKM2 and GAPDH-related metabolic changes were reported, but this should currently be treated as tumor-specific rather than a universal itraconazole mechanism.
8 Autophagy and lysosomal stress ↑ autophagy (model-dependent) ↑ (stress-dependent) G Autophagic growth suppression or cell death Frequently follows cholesterol-trafficking and AKT/mTOR disruption. Biological outcome varies by tumor type and can be cytostatic or cytotoxic.
9 Cell cycle and apoptosis ↑ arrest
↑ apoptosis (model-dependent)
↔ / ↑ (high exposure) G Reduced proliferation and programmed cell death Downstream phenotype reported in multiple tumor systems rather than a single direct molecular target.
10 Clinical Translation Constraint ↓ usable therapeutic window ↓ tolerability margin G PK variability, DDIs and toxicity constrain oncology use Capsule absorption depends strongly on food and gastric acidity; exposure is formulation-dependent and variable. Itraconazole and hydroxy-itraconazole are potent CYP3A4 inhibitors and itraconazole inhibits P-gp/BCRP. Major concerns include numerous anticancer-drug interactions, negative inotropy/CHF risk and rare serious hepatotoxicity.

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



Scientific Papers found: Click to Expand⟱
8011- itraC,    Anti-proliferation of breast cancer cells with itraconazole: Hedgehog pathway inhibition induces apoptosis and autophagic cell death
- vitro+vivo, BC, MCF7 - vitro+vivo, BC, SkBr3
MMP↓, Bcl-2↓, Casp3↑, TumAuto↑, LC3II↑, p62↓, HH↓, Shh↓, Gli1↓, Apoptosis↑, TumVol↓, eff↑, TumCCA↑,
7996- itraC,    Itraconazole in the Treatment of Aberrantly Active Hedgehog and/or PI3K Recurrent Ovarian Cancer
- Trial, Ovarian, NA
HH↓, PI3K↓, toxicity↝, eff∅, CA125∅, other↝,
7997- itraC,    Anti-fungal drug itraconazole exerts anti-cancer effects in oral squamous cell carcinoma via suppressing Hedgehog pathway
- vitro+vivo, SCC, NA
TumCP↓, TumCCA↑, Apoptosis↑, TumCI↓, TumCMig?, TumCG↓, Ki-67↓, HH?,
7998- itraC,    Itraconazole targets cell cycle heterogeneity in colorectal cancer
- vitro+vivo, CRC, NA
Wnt↓, TumCCA↑, TumCG↓, HH↓,
7999- itraC,    Itraconazole-Induced Inhibition on Human Esophageal Cancer Cell Growth Requires AMPK Activation
- vitro+vivo, ESCC, NA
AMPK↑, EGFR↓, PDGFRA↓, PDGFRB↓, Akt↓, TumCG↓,
8000- itraC,    The anti-cancer effects of itraconazole in epithelial ovarian cancer
- NA, Ovarian, NA
ChemoSen↑, HH↓, mTOR↓, angioG↓, VEGFR2/KDR/Flk1↓,
8001- itraC,    Repurposing itraconazole as an anticancer agent
- Review, Var, NA
*AntiFungal↑, AntiCan↑, P-gp/ABCB1↓, HH↓, mTOR↓, Wnt↓, β-catenin/ZEB1↓, angioG↓, LymphAG↓, ChemoSen↑, OS↑, Gli1↓, Ki-67↓, CSCs↓,
8009- itraC,    Itraconazole exerts its anti-melanoma effect by suppressing Hedgehog, Wnt, and PI3K/mTOR signaling pathways
- vitro+vivo, Melanoma, SK-MEL-28 - vitro+vivo, Melanoma, A375
OS↑, TumCP↓, Ki-67↓, TumCP↓, Gli1↓, GLI2↓, Wnt↓, β-catenin/ZEB1↓, cycD1/CCND1↓, AXIN1↑, GLI3↑, AXIN1↑, HH↓, PI3K↓, Akt↓, *toxicity↓,
8010- itraC,    Itraconazole induces apoptosis and cell cycle arrest via inhibiting Hedgehog signaling in gastric cancer cells
- vitro+vivo, GC, MKN45
TumCP↓, ChemoSen↑, TumCCA↑, Apoptosis↑, Gli1↓, TumCG↓, HH↓, Smo∅,
7995- itraC,    Repurposing itraconazole in clinical dermato-oncology beyond conventional antifungal use: a review
- Review, Var, NA
*AntiFungal↑, Shh↓, Smo↓,
8012- itraC,    Effects and mechanism of itraconazole on prostate cancer PC-3 cell apoptosis
- in-vitro, Pca, PC3
Apoptosis↑, BAX↑, cl‑Casp3↑, Bcl-2↓, p‑Akt↓, mTORC1↓, i-Cer↑,
8013- itraC,    High-dose itraconazole as a non-castrating therapy for a patient with biochemically-recurrent prostate cancer
- Case Report, Pca, NA
*AntiFungal↑, antiNeop↑, HH↓, Dose↝, OS↑, testos∅, Dose↝, PSA↓, other↝, other↝, HH↓,
8014- itraC,    Itraconazole inhibits angiogenesis and tumor growth in non-small cell lung cancer
- vitro+vivo, NSCLC, NA
TumCP↓, TumCMig↓, ChemoSen↑, angioG↓, Hif1a↑,
8015- itraC,    Itraconazole, a commonly used antifungal that inhibits Hedgehog pathway activity and cancer growth
- vitro+vivo, BCC, NA
HH↓, Dose↝, CYP51/14LDM↓, Gli1↓,
8016- itraC,    Impact of combination chemotherapy with itraconazole on survival for patients with recurrent or persistent ovarian clear cell carcinoma
- Human, Ovarian, NA
P-gp/ABCB1↓, angioG↓, HH↓, OS↑, Dose↝,
8017- itraC,    Itraconazole Inhibits Intracellular Cholesterol Trafficking and Decreases Phosphatidylserine Level in Cervical Cancer Cells
- in-vitro, Cerv, CaSki
other↝, PI3K↓,
8018- itraC,  Chemo,    Impact of combination chemotherapy with itraconazole on survival of patients with refractory ovarian cancer
- Trial, Ovarian, NA
PFS↑, OS↑, other↝,
8019- itraC,    Itraconazole Inhibits AKT/mTOR Signaling and Proliferation in Endometrial Cancer Cells
- in-vitro, Endo, AN3CA - in-vitro, Endo, HEC-1A - in-vitro, Endo, HEC-50B - in-vitro, Endo, SNG-II
*AntiFungal↑, TumCP↓, mTOR↓, LC3II↑, TumAuto↑, Akt↓,
7987- itraC,    Repurposing itraconazole as a treatment for advanced prostate cancer: a noncomparative randomized phase II trial in men with metastatic castration-resistant prostate cancer
- Trial, Pca, NA
angioG↓, HH↓, Dose↝, PSA↓, CTC↓, other↝, toxicity↝,
2178- itraC,    Itraconazole inhibits tumor growth via CEBPB-mediated glycolysis in colorectal cancer
- in-vivo, CRC, HCT116
TumCG↓, Glycolysis↓, CEBPB?, ENO1↓, LDHA↓, PKM2↓, GAPDH↓, ECAR↓, OCR↓,
2179- itraC,    Repurposing itraconazole for the treatment of cancer
- Review, Var, NA
HH↓, angioG↓, TumCCA↑, MDR1↓, P-gp/ABCB1↓, mTOR↓, VEGF↓, Smo↓, Gli1↓, OS↑, PSA↓,
2180- itraC,    Repurposing Drugs in Oncology (ReDO)—itraconazole as an anti-cancer agent
- Review, Var, NA
Dose↝, toxicity↝, BioAv↑, Half-Life↝, BioAv↑, Dose↝, HH↓, TumAuto↑, Akt↓, mTOR↓, angioG↓, MDR1↓, TumCP↓, eff↑,
7982- itraC,    Simultaneous Targeting of NPC1 and VDAC1 by Itraconazole Leads to Synergistic Inhibition of mTOR Signaling and Angiogenesis
- in-vitro, Nor, HUVECs - in-vitro, Lung, A549 - in-vitro, Cerv, HeLa - in-vitro, Nor, HEK293
angioG↓, mTOR↓, NPC1L1↓, AMPK↑, VDAC1↓,
7983- itraC,    Antifungal drug itraconazole targets VDAC1 to modulate the AMPK/mTOR signaling axis in endothelial cells
- in-vitro, Nor, HUVECs
angioG↓, VDAC1↓, mt-ATP↓, AMPK↑, mTOR↓, TumCP↓,
7984- itraC,    The antifungal drug itraconazole inhibits vascular endothelial growth factor receptor 2 (VEGFR2) glycosylation, trafficking, and signaling in endothelial cells
VEGFR2/KDR/Flk1↓, angioG↓, toxicity↓, mTOR↓,
7985- itraC,    Itraconazole suppresses the growth of glioblastoma through induction of autophagy: involvement of abnormal cholesterol trafficking
- vitro+vivo, GBM, U87MG - vitro+vivo, GBM, C6
TumCP↓, TumAuto↑, SCP2↓, AKT1↓, mTOR↓, other↝,
7986- itraC,    Open-label, exploratory phase II trial of oral itraconazole for the treatment of basal cell carcinoma
- Trial, BCC, NA
Dose↝, TumCP↓, HH↓, TumVol↓, SD↑,
2177- itraC,    Itraconazole improves survival outcomes in patients with colon cancer by inducing autophagic cell death and inhibiting transketolase expression
- Study, Colon, NA - in-vitro, CRC, COLO205 - in-vitro, CRC, HCT116
OS↑, tumCV↓, Casp3↑, TumCCA↑, HH↓, TumAuto↑, LC3B↑, p62↑, TKT↓,
7988- itraC,    Itraconazole as a Noncastrating Treatment for Biochemically Recurrent Prostate Cancer: A Phase 2 Study
- Trial, Pca, NA
PSA↓, toxicity↝, testos∅, toxicity↝,
7989- itraC,    Concentration-dependent Early Antivascular and Antitumor Effects of Itraconazole in Non-Small Cell Lung Cancer
- Trial, NSCLC, NA
Dose↝, TumVol↓, angioG↓, IL1β↓, GM-CSF↓, HH∅, BioAv↝, other↝,
7990- itraC,    A Novel Approach to Reducing Chemoresistance in Advanced Ovarian Cancer: The Effect of Itraconazole-A Single-Institution Randomized Placebo-Controlled Trial
- Trial, Ovarian, NA
Dose↝, DCR↑, PFS↑, CA125↓, P-gp/ABCB1↓, VEGFR2/KDR/Flk1↑, toxicity↓, QoL↑, toxicity↝,
7991- itraC,    A Phase II Trial of Perioperative Oral Itraconazole for the Management of Low-Risk Basal Cell Carcinoma
- Trial, BCC, NA
Smo↓, Dose↓, TumVol↓, Endoglin↓, angioG↓, toxicity↝, GLI3↓, toxicity↓,
7992- itraC,    Cellular pharmacokinetic aspects of reversal effect of itraconazole on P-glycoprotein-mediated resistance of anticancer drugs
P-gp/ABCB1↓, BioEnh↑,
7993- itraC,    Preclinical evaluation of itraconazole in docetaxel-resistant prostate cancer xenograft models
- in-vivo, Pca, NA
TumCG∅, TumMeta↓, Ki-67↓, Gli1↓, HH↓,
7994- itraC,    From fungus fighter to cancer slayer: itraconazole as a multifaceted candidate for drug-resistant prostate cancer
- Review, Pca, NA
HH↓, Gli1↓, TumCP↓, TumCI↓, eff↑,

Showing Research Papers: 1 to 35 of 35

* indicates research on normal cells as opposed to diseased cells
Total Research Paper Matches: 35

Pathway results for Effect on Cancer / Diseased Cells:


NA, unassigned(tgid=0)

i-Cer↑, 1,   CYP51/14LDM↓, 1,   DCR↑, 1,   PFS↑, 2,   SCP2↓, 1,  

Redox & Oxidative Stress(tgid=1)

TKT↓, 1,   VDAC1↓, 2,  

Mitochondria & Bioenergetics(tgid=3)

mt-ATP↓, 1,   MMP↓, 1,   OCR↓, 1,  

Core Metabolism/Glycolysis(tgid=4)

AKT1↓, 1,   AMPK↑, 3,   ECAR↓, 1,   ENO1↓, 1,   GAPDH↓, 1,   Glycolysis↓, 1,   LDHA↓, 1,   NPC1L1↓, 1,   PKM2↓, 1,  

Cell Death(tgid=5)

Akt↓, 4,   p‑Akt↓, 1,   Apoptosis↑, 4,   BAX↑, 1,   Bcl-2↓, 2,   Casp3↑, 2,   cl‑Casp3↑, 1,  

Transcription & Epigenetics(tgid=7)

other↝, 8,   SD↑, 1,   tumCV↓, 1,  

Autophagy & Lysosomes(tgid=9)

LC3B↑, 1,   LC3II↑, 2,   p62↓, 1,   p62↑, 1,   TumAuto↑, 5,  

Cell Cycle & Senescence(tgid=11)

cycD1/CCND1↓, 1,   TumCCA↑, 6,  

Proliferation, Differentiation & Cell State(tgid=12)

AXIN1↑, 2,   CEBPB?, 1,   CSCs↓, 1,   Gli1↓, 8,   HH?, 1,   HH↓, 18,   HH∅, 1,   mTOR↓, 9,   mTORC1↓, 1,   PDGFRA↓, 1,   PDGFRB↓, 1,   PI3K↓, 3,   Shh↓, 2,   Smo↓, 3,   Smo∅, 1,   TumCG↓, 5,   TumCG∅, 1,   Wnt↓, 3,  

Migration(tgid=13)

GLI2↓, 1,   GLI3↓, 1,   GLI3↑, 1,   Ki-67↓, 4,   TumCI↓, 2,   TumCMig?, 1,   TumCMig↓, 1,   TumCP↓, 11,   TumMeta↓, 1,   β-catenin/ZEB1↓, 2,  

Angiogenesis & Vasculature(tgid=14)

angioG↓, 12,   EGFR↓, 1,   Endoglin↓, 1,   Hif1a↑, 1,   LymphAG↓, 1,   VEGF↓, 1,   VEGFR2/KDR/Flk1↓, 2,   VEGFR2/KDR/Flk1↑, 1,  

Barriers & Transport(tgid=15)

P-gp/ABCB1↓, 5,  

Immune & Inflammatory Signaling(tgid=16)

GM-CSF↓, 1,   IL1β↓, 1,   PSA↓, 4,  

Hormonal & Nuclear Receptors(tgid=20)

testos∅, 2,  

Drug Metabolism & Resistance(tgid=21)

BioAv↑, 2,   BioAv↝, 1,   BioEnh↑, 1,   ChemoSen↑, 4,   Dose↓, 1,   Dose↝, 10,   eff↑, 3,   eff∅, 1,   Half-Life↝, 1,   MDR1↓, 2,  

Clinical Biomarkers(tgid=22)

CA125↓, 1,   CA125∅, 1,   CTC↓, 1,   EGFR↓, 1,   Ki-67↓, 4,   PSA↓, 4,  

Functional Outcomes(tgid=23)

AntiCan↑, 1,   antiNeop↑, 1,   OS↑, 7,   QoL↑, 1,   toxicity↓, 3,   toxicity↝, 7,   TumVol↓, 4,  
Total Targets: 100

Pathway results for Effect on Normal Cells:


Functional Outcomes(tgid=23)

toxicity↓, 1,  

Infection & Microbiome(tgid=24)

AntiFungal↑, 4,  
Total Targets: 2

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#:312  Target#:%  State#:%  Dir#:%
wNotes=0 sortOrder:rid,rpid

 

Home Page