Extra Virgin Olive Oil: Molecular Mechanisms, Bioavailability Challenges, and Therapeutic Perspectives
Abstract
1. Introduction
2. Materials and Methods
3. Bioavailability
4. Antioxidant Potential
5. Anticancer Perspectives
5.1. Breast Cancer
5.1.1. Human and Dietary Evidence
5.1.2. Preclinical Evidence
5.1.3. In Vivo and Translational Interpretation
5.2. Prostate Cancer
5.2.1. Human and Dietary Evidence
5.2.2. Preclinical Evidence
5.2.3. In Vivo and Translational Interpretation
5.3. Colon Cancer
5.3.1. Human and Dietary Evidence
5.3.2. Preclinical Evidence
5.3.3. In Vivo and Translational Interpretation
5.4. Pancreatic Cancer
5.4.1. Human and Dietary Evidence
5.4.2. Preclinical Evidence
5.4.3. In Vivo and Translational Interpretation
5.5. Bone Cancer
5.5.1. Human and Dietary Evidence
5.5.2. Preclinical Evidence
5.5.3. In Vivo and Translational Interpretation
5.6. Oral Cancer
5.6.1. Human and Dietary Evidence
5.6.2. Preclinical Evidence
5.6.3. In Vivo and Translational Interpretation
5.7. Liver Cancer
5.7.1. Human and Dietary Evidence
5.7.2. Preclinical Evidence
5.8. Gastric Cancer
5.8.1. Human and Dietary Evidence
5.8.2. Preclinical Evidence
5.8.3. In Vivo and Translational Interpretation
5.9. Blood Cancer
5.9.1. Human and Dietary Evidence
5.9.2. Preclinical Evidence
5.9.3. In Vivo and Translational Interpretation
5.10. Brain Cancer
5.10.1. Human and Dietary Evidence
5.10.2. Preclinical Evidence
5.10.3. In Vivo and Translational Interpretation
5.11. Other Cancers
6. Human Clinical and Translational Evidence
7. Nanotechnology and Delivery Strategies
8. Limitations and Future Perspectives
9. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| BBB | Blood–brain barrier |
| CDKs | Cyclin-dependent kinases |
| CLL | Chronic lymphocytic leukemia |
| CML | Chronic myeloid leukemia |
| CRC | Colorectal cancer |
| EMT | epithelial–mesenchymal transition |
| EVOO | Extra virgin olive oil |
| GBM | Glioblastoma |
| HCC | Hepatocellular carcinoma |
| HT | Hydroxytyrosol |
| Oleu-Nio | Oleuropein-loaded niosomes |
| PDAC | pancreatic ductal adenocarcinoma |
| TMZ | Temozolomide |
| TNBC | Triple-negative breast cancer |
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| Cancer Type | Model | EVOO Constituent or Preparation | Dose | Molecular Targets | Outcomes | Evidence Level | References |
|---|---|---|---|---|---|---|---|
| Breast | MDA-MB-231, MCF-7, TNBC and HER2-positive breast-cancer cells | Oleocanthal and oleuropein | NR | HGF/Met, PI3K/AKT/mTOR, MAPK/ERK, NF-κB, cyclin D1, p21, caspase-8, caspase-3 and PARP | Cell-cycle arrest; reduced proliferation, migration and invasion; increased apoptosis | In vitro | [37,38,39] |
| Breast | MMTV-PyVT transgenic mouse model | Oleocanthal | 7.5 mg/kg/day orally for 32 days | Tumor-initiation and growth-related pathways | Approximately 70% suppression of tumor initiation and progression | Animal | [40] |
| Breast | MDA-MB-231 xenograft model | Oleocanthal | 5 mg/kg | p-cMet, Ki-67, CD31, vimentin, β-catenin, HER2 and E-cadherin | Reduced tumor growth, proliferation, invasion, EMT and angiogenesis | Animal | [41,42] |
| Breast | BT-474 HER2-positive tumor model | Oleocanthal | Daily administration; dose NR | HER2- and estrogen-dependent growth pathways | Reduced estrogen-driven tumor growth and locoregional recurrence after surgery | Animal | [43] |
| Breast | MDA-MB-231 xenograft treated with doxorubicin | Oleuropein plus doxorubicin | NR | NF-κB, cyclin D1, Bcl-2 and surviving | Increased apoptosis and enhanced activity of doxorubicin | Animal | [44] |
| Breast | PREDIMED secondary analysis; 4152 women without previous breast cancer | Mediterranean diet supplemented with EVOO | Exact EVOO dose NR in the manuscript; intake also analyzed per 5% of total energy | Molecular targets not measured | Lower breast-cancer incidence estimate compared with the control diet; cancer was a secondary outcome with few events | Human-interventional secondary analysis | [45] |
| Prostate | LNCaP and DU145 | Oleuropein | 100–500 µM | AKT phosphorylation | Reduced proliferation through AKT dephosphorylation | In vitro | [46] |
| Prostate | 22Rv1, LNCaP, PC-3, and C4-2 | HT | IC50 values approximately 9–41 µM | Caspase-3, caspase-9, PARP, cyclins D1/E, CDK2/4, Bax, Bcl-2 and Bcl-xL | G1-phase arrest, intrinsic apoptosis and selective toxicity toward malignant cells | In vitro | [9,47,48] |
| Prostate | PC-3 and 22Rv1 | HT and analogs | NR | Migration- and stemness-related signaling | Reduced PC-3 migration and prostatosphere formation in 22Rv1 cells | In vitro | [49] |
| Colorectal | HT-29 and other colorectal-cancer cells | HT | NR | CDK1, cyclin B1, caspase-3, Bax, EGFR and PI3K/AKT | G2/M-phase arrest, apoptosis and reduced proliferation | In vitro | [50,51,52,53] |
| Colorectal | HT-29 | Oleuropein | NR | HIF 1α, p53, NF-κB, AKT, COX-2 and Wnt/β-catenin | Reduced proliferation, DNA fragmentation and mitochondrial apoptosis | In vitro | [54,55,56,57] |
| Colorectal | COLO-320DM | Oleocanthal | IC50 approximately 9.8 µM | Proliferation- and survival-related signaling | Strong inhibition of colorectal-cancer cell proliferation | In vitro | [58] |
| Colorectal | Mouse colorectal-tumor xenograft and recurrence models | Food-grade oleocanthal or high-phenolic EVOO | NR | Tumor-growth and recurrence-related pathways | More than 70% reduction in tumor burden and more than 85% inhibition of relapse | Animal | [59] |
| Pancreatic | MIA PaCa-2; 72 h | Oleuropein | IC50 approximately 150 µM | c-Jun, c-Fos and caspase-3 | Reduced viability, G2/M-phase arrest and apoptosis | In vitro | [46] |
| Pancreatic | MIA PaCa-2; 72 h | HT | IC50 approximately 75 µM | c-Jun, c-Fos and caspase-3 | Reduced viability, G2/M-phase arrest and apoptosis | In vitro | [46] |
| Pancreatic | PANC-1; 24–72 h | HT | 10–320 µM; apoptosis observed at ≥19 µM | Caspase-9, Bax, MMP-2 and MMP-9 | Dose- and time-dependent loss of viability, increased apoptosis and reduced invasion-associated markers | In vitro | [60] |
| Pancreatic | Panc02; 48 h | HT | 50–200 µM | Phospho-STAT3 and cyclin D1 | Reduced proliferation and increased apoptosis | In vitro | [60] |
| Pancreatic | Three-dimensional PDAC stromal co-culture | Oleocanthal | 20 µM | Lysosomal membrane permeabilization, cathepsins, αSMA-positive CAFs, hyaluronan, IL-6/STAT3 and COX-2/mPGES-1 | Direct PDAC-cell death; approximately 50% reduction in activated fibroblasts and 70% degradation of the hyaluronan matrix | In vitro-3D co-culture | [42] |
| Pancreatic | Mouse pancreatic ductal adenocarcinoma model treated with anti-CD47 | HT plus anti-CD47 | NR | Myeloid-derived suppressor cells, M1 macrophages and immune-microenvironment signaling | Enhanced antitumor activity of anti-CD47 immunotherapy | Animal | [60] |
| Pancreatic | Transgenic pancreatic neuroendocrine-tumor model | Oleocanthal | NR | Tumor-growth and survival pathways | Suppressed tumorigenesis and prolonged survival | Animal | [61,62] |
| Bone | MG-63 human osteosarcoma cells | Oleuropein alone or combined with adriamycin | IC50 = ~22 µg/mL | G0/G1 cell-cycle regulation and cell-death-related responses | Reduced proliferation and greater cytotoxic activity when combined with Adriamycin | In vitro | [63,64] |
| Bone | Osteosarcoma models treated with adriamycin | Oleuropein plus adriamycin | NR | Apoptotic and autophagic pathways | Synergistic increase in tumor-cell cytotoxicity | Preclinical/animal | [55,63] |
| Oral | KB oral-cancer and HNO-97 tongue-cancer cells | HT and oleuropein | NR | Cyclins, CDKs, Bax, Bcl-2, caspases, NF-κB, COX-2, PI3K/AKT and MAPK | G0/G1-phase arrest, apoptosis and reduced migration and wound closure | In vitro | [65,66,67,68] |
| Oral | Experimental tongue-lesion model | Olive-derived phenolic preparation | NR | Inflammatory and apoptosis-related pathways | Reduced gross and histological tongue lesions | Animal | [69] |
| Oral/head and neck | Meta-analysis and observational dietary studies | Mediterranean dietary pattern containing olive oil | Dietary exposure; dose varied | Molecular targets not directly measured | Higher Mediterranean-diet adherence was associated with lower odds of oral, head and neck cancers | Human-observational | [70,71,72] |
| Liver | Italian case–control, pooled and meta-analytic studies of HCC | Olive oil, EVOO or Mediterranean dietary pattern | Approximately 20 g/day in some case–control analyses; other studies used intake categories | Molecular targets not directly measured; proposed oxidative-stress, inflammation and lipid-metabolism pathways | Higher intake was associated with lower relative HCC-risk estimates in some studies; findings were inconsistent across populations | Human-observational | [73,74] |
| Gastric | Gastric adenocarcinoma cells | Oleuropein, HT, oleocanthal or phenolic-enriched extracts | Oleuropein 50–500 µM; other doses NR | ROS, p53, Bax, Bcl-2, caspases, PI3K/AKT/mTOR, NF-κB, Wnt/β catenin, EGFR and c-Met | Reduced viability, cell-cycle arrest and mitochondrial apoptosis | In vitro | [54,75,76,77,78] |
| Gastric | AGS gastric-cancer cells | Methanolic Greek table olive extract | NR | ICAM-1, IL-8, inflammatory and apoptotic signaling | Reduced proliferation and inflammation and increased apoptosis | In vitro | [79] |
| Gastric | Helicobacter pylori strains, including resistant strains | EVOO or olive oil phenolic preparations | Minimum inhibitory concentration approximately 230 µg/mL | Bacterial adhesion and infection-induced epithelial DNA damage | Anti-H. pylori activity and reduced adhesion and epithelial injury | In vitro | [80,81] |
| Gastric | Helicobacter pylori-infected mouse model | Dietary EVOO supplementation | NR | Gastric inflammation and mucosal-injury pathways | Reduced ulcer indices and gastric mucosal lesions and improved histological appearance | Animal | [80,81] |
| Gastric/gastrointestinal | Italian observational cohort | EVOO intake | Intake categories; exact dose NR | Molecular targets not measured | Higher EVOO intake was associated with lower gastrointestinal cancer-mortality estimates | Human-observational | [74] |
| Blood leukemia | HL-60 acute promyelocytic leukemia cells | EVOO phenolic extract or HT | NR | CDK6, p21, p27, cytochrome c and caspase-3 | G0/G1-phase arrest, reduced proliferation and apoptosis | In vitro | [82,83] |
| Blood CML | K562 chronic myeloid leukemia cells | Oleuropein | IC50 approximately 244 µM at 72 h | Redox homeostasis, p21, p27 and cyclins | Time- and dose-dependent reduction in viability and cell-cycle arrest | In vitro | [84] |
| Blood leukemia/lymphoma | Jurkat, CEM, Raji and K562 cells | Oleocanthal | Approximately 5–30 µM | Mitochondrial membrane potential, ROS, caspase-3/8/9, AKT and ERK1/2 | Reduced proliferation and selective apoptosis with lower toxicity toward non-malignant cells | In vitro | [85] |
| Blood multiple myeloma | Multiple myeloma cells treated with a proteasome inhibitor | Oleacein | NR | Caspase-8, Sp1 and HDAC1/2/3/4/6 | Histone hyperacetylation and increased sensitivity to proteasome-inhibitor therapy | In vitro | [86] |
| Blood CLL | Untreated Rai stage 0–II CLL patients | Chemically characterized high-oleocanthal/high-oleacein EVOO | 40 mL/day for 3 months; subsequent study, 40 mL/day for 6 months in 22 patients | Cleaved cytokeratin-18, Apo1-Fas, p21, survivin and cyclin D | Reduced white-blood-cell and lymphocyte counts and modulation of apoptotic and cell-cycle biomarkers; no established effect on progression or survival | Human-pilot intervention | [87] |
| Brain glioblastoma | GBM and glioma stem-like cells | Olive leaf extract, oleuropein, HT, rutin and tyrosol | NR | CD133, OCT4, Let-7d, E-cadherin, N-cadherin, Twist, Snail and Zeb1 | Reduced viability, stemness, colony formation, migration and EMT; enhanced temozolomide activity | In vitro | [88,89,90,91,92,93] |
| Brain metastasis | 4T1 mammary carcinoma cells | Oleuropein-loaded pH-sensitive niosomes | IC50 approximately 92.7 µg/mL | Formulation-dependent cellular delivery and viability pathways | Greater cytotoxicity than free oleuropein | In vitro | [94] |
| Brain metastasis | Rat 4T1 brain metastasis model | Oleuropein-loaded pH-sensitive niosomes | 25 mg/kg intravenously; 10 administrations | Brain delivery and tumor-growth pathways | Median survival greater than 45 days versus approximately 34.5 days with free oleuropein and 16.5 days in untreated controls | Animal | [94] |
| Cervical | HeLa | Olive extract | 50 µg/mL | p21/CDKN1A and caspase-3 | Reduced proliferation and colony formation and increased apoptosis | In vitro | [95] |
| Cervical | HeLa; 48–72 h | Oleuropein | Approximately 10–100 µM | Bcl-2, Mcl-1, Bid, Fas, TNFRSF10B, p53 and pro-apoptotic microRNAs | Reduced viability through apoptosis | In vitro | [96] |
| Cervical | HeLa, SiHa, and HCS-2 | Different EVOO preparations | NR | HPV E6/E7, p16, p63, involucrin and miR-331 | Reduced viability and HPV-oncogene expression and increased differentiation markers | In vitro | [97] |
| Cervical | HeLa xenograft in nude mice | High-fat diet containing olive oil | 45% of energy from fat | EGR1 and oleic-acid-responsive proliferative signaling | Increased tumor growth and tumor weight relative to the control diet | Animal | [98] |
| Cervical | HeLa and xenograft model | Oleic acid | NR | CD36, Src and ERK | Increased proliferation, migration, invasion, tumor growth and metastasis | In vitro and animal | [99] |
| Endometrial | Endometrial-cancer cells and an in vivo model | Oleic acid | NR | PTEN and AKT/mTOR | G1 arrest, apoptosis, reduced proliferation and invasion and approximately 52% reduction in tumor size | In vitro and animal | [100] |
| Ovarian | HEY | Oleuropein | NR | Fe2+, ROS and cell-cycle pathways | Dose-dependent reduction in viability and apoptosis at higher concentrations | In vitro | [68] |
| Melanoma | Human melanoma cell lines | HT | NR | ROS, γH2AX, p53, AKT, caspase-3 and PARP | Dose-dependent apoptosis and inhibition of colony formation | In vitro | [47] |
| Melanoma | Human melanoma cell lines | Oleocanthal | IC50 in the low-µM range | ERK1/2, AKT and Bcl-2 | Selective cytotoxicity and apoptosis | In vitro | [101] |
| Skin squamous-cell carcinoma | Human non-melanoma SCC cell models | Oleocanthal and oleacein | NR | Phospho-ERK, phospho-AKT and B-Raf | Reduced viability, motility and colony/spheroid formation and increased apoptosis | In vitro | [102] |
| Thyroid | TPC-1 and FB-2 thyroid-cell models | HT | NR | p21, cyclin D1, ROS and mitochondrial-apoptosis pathways | Reduced viability, cell-cycle arrest and apoptosis | In vitro | [103] |
| Multiple cancer outcomes | Moli-sani prospective cohort; 22,892 adults | Total olive oil | >3 tablespoons/day versus ≤1.5 tablespoons/day | Molecular targets not directly measured; inflammatory, metabolic, cardiovascular and renal biomarkers were explored as possible mediators | Higher intake was associated with lower cancer-mortality estimates; residual confounding and reverse causality cannot be excluded | Human-observational | [104] |
| Phenolic Compound | Model and Dose | Mechanisms | References |
|---|---|---|---|
| Oleuropein | MIA PaCa-2 cells (72 h) | Reduced viability (IC50 = 150 μM), G2/M phase arrest, increased c-Jun/Fos, caspase-3 mediated apoptosis | [46] |
| Hydroxytyrosol | MIA PaCa-2 cells (72 h) | Reduced viability (IC50 ≈ 75 μM), G2/M phase arrest, increased c-Jun/Fos, caspase-3-mediated apoptosis | |
| PANC-1 (24–72 h, 10–320 µM) | Dose- and time-dependent reduction in viability, apoptosis at concentrations ≥ 19 μM, increased caspase-9/Bax expression and decreased MMP-2/9 RNA levels | ||
| Panc02 (48 h, 50–200 μM) | Decreased proliferation, increased apoptosis, reduced phospho-STAT3 and Cyclin D1 | ||
| Oleocanthal | Three-dimensional pancreatic ductal adenocarcinoma stromal co-culture (20 µM) | Approximately 50% reduction in α-SMA+ CAFs, approximately 70% degradation of the hyaluronan matrix, and increased CD8+ T-cell density | [42] |
| PNET: dosage in transgenic murine models | Significant suppression of pancreatic neuroendocrine tumor proliferation, extended survival |
| Extract | Cell Lines | Concentration | Findings | Mechanisms | Refs. |
|---|---|---|---|---|---|
| Oleocanthal | Jurkat (T-ALL), CEM (T-ALL), Raji (Burkitt), and K-562 (CML) | 5–30 μM (approx.) | Decreased proliferation across all tested cell lines (except lung cells) and significant apoptosis. | Caspase-dependent and -independent apoptosis, increased reactive oxygen species, mitochondrial depolarization. | [85] |
| Oleacein | JJN3, U266, and OPM2 multiple myeloma cells | ~10–40 μM | Decreased viability, increased apoptosis, and increased sensitivity to carfilzomib | Caspase-8-associated Sp1 downregulation, reduced HDAC1/2/3/4/6 expression, and increased histone acetylation | [86] |
| Oleuropein | K-562 (CML) | IC50 ≈ 244 μM at 72 h | Reduced viability, elevated apoptosis, and possibly synergy with carfilzomib. | Pro-oxidant effect: ↑ ROS, ↓ antioxidant defenses, possible DNA damage (8-OHdG ↑). | [84] |
| Model System | Exposure Category | Compounds and Dosage | Main Findings | Mechanistic Targets | References |
|---|---|---|---|---|---|
| HeLa | Phenolic extract | Olive extract (50 μg/mL) | Decreased proliferation and colony formation, increased caspase-3 activity | Increase of p21 (CDKN1A) (marker of apoptosis) | [95] |
| HeLa | Isolated phenolic | Oleuropein (~10–100 μM for 48–72 h) | Decreased viability through apoptosis, increased pro-apoptotic microRNAs and genes | Decreased levels of Bcl-2 and Mcl-1, increased levels of Bid, Fas, TNFRSF10B, and p53 | [96] |
| HeLa | Phenolic extract | OLE (phenol-rich) | Decreased viability, cell cycle arrest, activation of apoptosis | Decreased Cyclin D1, increased p21, decreased NF-κB/EMT | [122] |
| HeLa/SiHa/HCS-2 (in vitro) | Whole-oil dietary intervention | Extra-virgin olive oils | Decreased viability and ROS, decreased HPV E6/E7, p16, p63, increased differentiation marker (IVL) | Downregulation of E6/E7 oncogenes, increased expression of tumor-suppressive miR-331 | [97] |
| HeLa | Phenolic extract | Olive leaf polyphenols (nanocarrier) and NDV (LaSota), OLE 100 μM (oleuropein equiv) and NDV MOI 0.4 | Synergistic cytotoxicity (increased cell death), cell cycle arrest | Induced apoptosis, increased OLE absorption by nanocarriers and viral oncolysis | [139] |
| Women with external anogenital warts | Combination | OLE and curcumin (topical 10%) administered three times daily (for a maximum of twelve weeks) | Reduction in the number of warts (from day 5, p = 0.027), reduction in healing time (14.7 vs. 34.3 days, p = 0.001) | Expedited lesion regression (HPV eradication) | [140] |
| HeLa xenografts in nude mice | Whole-oil dietary intervention | High-fat diet containing olive oil; 45% of energy from fat | Increased tumor growth and weight relative to the control diet | Increased EGR1 and other proliferation-related signals | [98] |
| Endometrial-cancer cells and an in vivo model | Isolated fatty acid | OA | G1-phase arrest, increased apoptosis, reduced proliferation and invasion, and approximately 52% reduction in tumor size | Increased PTEN and reduced AKT/mTOR signaling | [100] |
| Ovarian HEY cells | Isolated phenolic | Oleuropein (olive leaf polyphenol) | Pro-oxidant at elevated dosage: increased Fe2+, elevated ROS, cell-cycle inhibition | Dose-dependent decrease in viability, high doses trigger apoptosis. | [68] |
| HeLa cervical cancer cells and xenograft model | Isolated fatty acid | OA | Increased proliferation, migration, invasion, tumor growth, and metastasis | CD36-mediated fatty-acid uptake and activation of Src/ERK signaling | [99] |
| In vitro human melanoma cell lines | Isolated phenolic | HT | Increased ROS generation, elevated DNA damage (γH2AX) and p53, decreased Akt signaling induces caspase-3/PARP-mediated apoptosis | Dosage-dependent apoptosis in melanoma cells, resulting in the cessation of colony formation | [101] |
| In vitro human melanoma cell lines | Isolated phenolic | Oleocanthal | Decreased phosphorylation of ERK1/2 and Akt, reduced levels of Bcl-2, which inhibits cellular apoptosis, likely impedes the MAPK and PI3K signaling pathways | Selective cytotoxicity against melanoma (IC50 in low μM) accompanied by apoptosis induction | [101] |
| Skin squamous cell carcinoma in humans (in vitro; non-melanoma varieties) | Isolated phenolic | Oleocanthal, oleacein | Reduce Phospho-ERK and phospho-Akt, diminish B-Raf expression (inhibits MAPK/Akt signaling) | Impaired SCC cell viability, motility, and colony/spheroid formation, increased apoptosis. | [102] |
| The TPC-1 and FB-2 human peritoneal and fibroblast cell lines (in vitro) | Isolated phenolic | HT | Cell cycle arrest, intrinsic mitochondrial apoptosis, and p21/Cyclin D1, stress caused by pro-oxidants (H2O2/ROS) | Decreased cell viability, increased apoptosis | [103] |
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Maaz, M.; Sultan, M.T.; Noman, A.M.; Weiskirchen, R.; ElGhareeb, W.R.; Mubarak, B.I.A.S.; Rezk, A.A.; Ibrahim, M.E.E.-D. Extra Virgin Olive Oil: Molecular Mechanisms, Bioavailability Challenges, and Therapeutic Perspectives. Nutrients 2026, 18, 2416. https://doi.org/10.3390/nu18152416
Maaz M, Sultan MT, Noman AM, Weiskirchen R, ElGhareeb WR, Mubarak BIAS, Rezk AA, Ibrahim MEE-D. Extra Virgin Olive Oil: Molecular Mechanisms, Bioavailability Challenges, and Therapeutic Perspectives. Nutrients. 2026; 18(15):2416. https://doi.org/10.3390/nu18152416
Chicago/Turabian StyleMaaz, Muhammad, Muhammad Tauseef Sultan, Ahmad Mujtaba Noman, Ralf Weiskirchen, Waleed Rizk ElGhareeb, Bodour Ibrahim Al Shik Mubarak, Adel A. Rezk, and Marwa Ezz El-Din Ibrahim. 2026. "Extra Virgin Olive Oil: Molecular Mechanisms, Bioavailability Challenges, and Therapeutic Perspectives" Nutrients 18, no. 15: 2416. https://doi.org/10.3390/nu18152416
APA StyleMaaz, M., Sultan, M. T., Noman, A. M., Weiskirchen, R., ElGhareeb, W. R., Mubarak, B. I. A. S., Rezk, A. A., & Ibrahim, M. E. E.-D. (2026). Extra Virgin Olive Oil: Molecular Mechanisms, Bioavailability Challenges, and Therapeutic Perspectives. Nutrients, 18(15), 2416. https://doi.org/10.3390/nu18152416

