Ramadan Fasting in Metabolic Dysfunction-Associated Steatotic Liver Disease: Linking the Gut–Mitophagy–Circadian Axis to Endothelial Dysfunction and Hepatic Outcomes
Abstract
1. Introduction
2. Methods
3. Metabolic Dysfunction-Associated Steatotic Liver Disease
4. Pathogenesis of MASLD
4.1. Pathophysiology of Endothelial Dysfunction
4.2. Mechanisms of Endothelial Dysfunction in MASLD
5. Oxidative Stress
6. Inflammation
7. Alteration in Lipoprotein Metabolism
8. Endothelial Dysfunction and Complications of MASLD
8.1. Endothelial Dysfunction and Liver Cirrhosis
8.2. Endothelial Dysfunction and Hepatocellular Carcinoma
8.3. Gut Microbiota and MASLD
8.4. Gut Microbiota and Endothelial Dysfunction
8.5. Gut Microbiota and Liver Cirrhosis
8.6. Gut Microbiota and Hepatocellular Carcinoma
8.7. Gut Microbiota and Mitophagy
8.8. Ramadan Fasting
8.9. Ramadan Fasting and MASLD
8.10. Ramadan Fasting and Endothelial Dysfunction
8.11. Ramadan Fasting and Liver Cirrhosis
8.12. Ramadan Fasting and Hepatocellular Carcinoma
8.13. Ramadan Fasting and Gut Microbiota
8.14. Ramadan Fasting and Oxidative Stress
8.15. Ramadan Fasting and Mitophagy
8.16. Ramadan Fasting and Circadian Rhythm
8.17. Study Limitations
9. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Study | Study Design | Population/ Sample Size | Diagnostic Criteria/Disease Definition | Fasting or Intervention | Duration/ Follow-Up | Main Endpoints | Principal Findings | Main Limitations | Evidence Category |
|---|---|---|---|---|---|---|---|---|---|
| Alasmari et al. (2024) [12] | Experimental animal study | Rats with experimentally induced NAFLD | Experimentally induced NAFLD | Ramadan fasting model | Ramadan-like fasting intervention; duration as reported in the original study | Body weight, lipid profile, ALT, AST and hepatic outcomes | Reduced body weight, cholesterol, triglycerides, LDL, ALT and AST; findings suggested hepatoprotective and metabolic effects | Animal model; findings cannot be directly extrapolated to humans or to patients with MASLD undertaking Ramadan fasting | Mechanistic/indirect |
| Mari et al. (2021) [79] | Retrospective case–control study | Patients with fatty liver disease; Ramadan-fasting and comparison groups | Fatty liver disease assessed according to the study’s clinical/imaging criteria | Ramadan fasting | Ramadan month; retrospective assessment | Body weight, insulin sensitivity, inflammatory markers and indicators of fatty liver/NASH severity | Ramadan fasting was associated with improvements in body weight, insulin sensitivity, inflammatory indicators and markers related to fatty liver disease severity | Retrospective design; potential confounding from diet, physical activity and other Ramadan-related lifestyle changes; limited ability to establish causality | Direct/clinical, but observational |
| Ebrahimi et al. (2020) [80] | Clinical observational study | Patients with NAFLD | NAFLD diagnosed according to study criteria | Ramadan fasting | Approximately one Ramadan month | Liver function tests, total cholesterol, atherogenic index of plasma and visceral adiposity index | Ramadan fasting was associated with improved liver function and reduced total cholesterol, with reductions in atherogenic and visceral adiposity indices | Observational design; limited sample size and follow-up; cannot establish long-term effects on fibrosis or clinical outcomes | Direct/clinical, but observational |
| Badran et al. (2022) [81] | Interventional/observational study of intermittent fasting | Patients with NAFLD | NAFLD diagnosed according to study criteria | Intermittent fasting; not specifically Ramadan fasting | Study intervention period as reported in the original publication | Laboratory, anthropometric and radiological parameters | Improvements were reported in anthropometric, biochemical and ultrasonographic parameters, particularly in selected patient subgroups | Not a Ramadan-specific intervention; therefore, findings should not be presented as direct evidence for Ramadan fasting; imaging does not establish improvement in fibrosis or long-term outcomes | Indirect/extrapolated |
| Aliasghari et al. (2017) [82] | Observational trial | Patients with NAFLD | NAFLD diagnosed according to study criteria | Ramadan fasting | One Ramadan month | Body composition, blood pressure, glucose metabolism, insulin and inflammatory markers | Improvements were reported in body measures, insulin-related parameters, fasting blood glucose and inflammatory markers | Observational design; possible dietary, sleep and activity-related confounding; limited information on long-term hepatic outcomes | Direct/clinical, but observational |
| Alam et al. (2019) [83] | Clinical observational study | Patients with lean NASH | Histologically assessed NASH | Weight-reduction intervention; not a Ramadan-fasting study | As reported in the original study | Histological activity and fibrosis | Weight reduction improved several aspects of histological activity in lean NASH | Not a Ramadan study and therefore cannot establish an effect of Ramadan fasting; indirect evidence only | Indirect/extrapolated |
| Ahmed & Ahmed (2024) [11] | Narrative review | Evidence concerning Ramadan fasting and MASLD | Review of MASLD-related literature | Ramadan fasting | Not applicable | Metabolic and hepatic risk factors | Proposed that Ramadan fasting may improve MASLD-related risk factors, particularly through weight loss and metabolic effects | Narrative review; conclusions depend on heterogeneous primary studies; does not provide independent clinical evidence | Secondary/contextual evidence |
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Ahmed, M.; Shantakumari, N.; Badi, S.; Ahmed, M.H. Ramadan Fasting in Metabolic Dysfunction-Associated Steatotic Liver Disease: Linking the Gut–Mitophagy–Circadian Axis to Endothelial Dysfunction and Hepatic Outcomes. J. Pers. Med. 2026, 16, 474. https://doi.org/10.3390/jpm16090474
Ahmed M, Shantakumari N, Badi S, Ahmed MH. Ramadan Fasting in Metabolic Dysfunction-Associated Steatotic Liver Disease: Linking the Gut–Mitophagy–Circadian Axis to Endothelial Dysfunction and Hepatic Outcomes. Journal of Personalized Medicine. 2026; 16(9):474. https://doi.org/10.3390/jpm16090474
Chicago/Turabian StyleAhmed, Musaab, Nisha Shantakumari, Safaa Badi, and Mohamed H. Ahmed. 2026. "Ramadan Fasting in Metabolic Dysfunction-Associated Steatotic Liver Disease: Linking the Gut–Mitophagy–Circadian Axis to Endothelial Dysfunction and Hepatic Outcomes" Journal of Personalized Medicine 16, no. 9: 474. https://doi.org/10.3390/jpm16090474
APA StyleAhmed, M., Shantakumari, N., Badi, S., & Ahmed, M. H. (2026). Ramadan Fasting in Metabolic Dysfunction-Associated Steatotic Liver Disease: Linking the Gut–Mitophagy–Circadian Axis to Endothelial Dysfunction and Hepatic Outcomes. Journal of Personalized Medicine, 16(9), 474. https://doi.org/10.3390/jpm16090474

