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High-Protein Diet for Improving Alcoholic Fatty Liver Disease

Efficacy and Safety of a High-Protein Diet Versus a Standard Diet in Patients With Alcoholic Fatty Liver Disease: A Randomized Controlled Trial

Status
Not yet recruiting
Phases
Phase 1Phase 2
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT07632222
Acronym
HP-AFLD-RCT
Enrollment
74
Registered
2026-06-08
Start date
2026-07-01
Completion date
2027-12-31
Last updated
2026-06-29

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Alcohol-associated Fatty Liver Disease

Keywords

alcohol-associated fatty liver disease(AFLD), high protein, MRI-PDFF, RCT

Brief summary

Alcohol-associated liver disease (ALD) is a major cause of mortality from malignant liver diseases, accounting for 47.9% of cirrhosis-related deaths and 30% of liver cancer-related deaths annually. In China, both alcohol consumption and the prevalence of ALD (approximately 5.15%) are on the rise, making ALD an increasingly significant health concern for the population. Alcohol-associated fatty liver disease (AFLD), as the initial and most reversible stage of ALD, is primarily characterized by excessive hepatic lipid deposition, mild liver injury accompanied by mild inflammation. It can progressively develop into alcoholic hepatitis, and in some patients, advance to liver fibrosis, cirrhosis, and even hepatocellular carcinoma. Currently, there is a lack of effective clinical treatments for AFLD. Although alcohol abstinence remains the optimal choice for reversing AFLD, it is often difficult for individuals with alcohol dependence to maintain. A high-protein diet generally refers to a dietary pattern where protein accounts for more than 20% of total energy intake. A protein contribution of 30% is a common ratio in research investigating high-protein dietary interventions for metabolic diseases. Population-based intervention studies have demonstrated that a high-protein diet at this ratio significantly reduces hepatic fat content. For instance, a study published in Gastroenterology (2017) reported that a 6-week isocaloric high-protein diet (macronutrient distribution: 30% protein, 40% carbohydrates, 30% fat) significantly improved hepatic lipid deposition in patients with non-alcoholic fatty liver disease (NAFLD) and type 2 diabetes mellitus (T2DM). Research in Diabetologia (2019) showed that a 6-week isocaloric high-protein diet (30% protein, 30% carbohydrates, 40% fat) significantly reduced hepatic fat content in patients with T2DM. Additionally, a study in Liver International (2020) indicated that a 3-week energy-restricted high-protein diet (30% protein, 35%-45% carbohydrates, 25%-30% fat) significantly decreased hepatic fat content in NAFLD patients. Importantly, none of the aforementioned studies reported adverse events associated with the high-protein dietary interventions. Furthermore, a population-based intervention study published in Annals of Internal Medicine revealed that a low-carbohydrate, high-fat diet was more effective than a high-carbohydrate, low-fat diet in reducing hepatic fat content over a 6-month period in patients with NAFLD and T2DM. These findings suggest that increasing the percentage of energy from protein by reducing carbohydrate intake may yield superior improvements. Based on the macronutrient distributions from the referenced population interventions, and considering that a 30% fat energy contribution closely aligns with the typical dietary fat intake of the Chinese AFLD population, we established the macronutrient distribution for the high-protein diet group as 30% protein, 40% carbohydrates, and 30% fat. This study intends to conduct a randomized controlled trial to investigate the effects of increasing the percentage of energy from protein under an isocaloric dietary pattern on liver function, hepatic fat content, and glucose-lipid metabolism in individuals with AFLD. The aim is to elucidate the mechanisms underlying its beneficial effects on AFLD, thereby providing population-based evidence and strategies for health promotion in this patient group.

Interventions

DIETARY_SUPPLEMENThigh protein diet

high protein diet

DIETARY_SUPPLEMENTcontrol diet

control diet

DIETARY_SUPPLEMENTperilla peptide dietary group

perilla peptide dietary group

Sponsors

Li Lab,MD
Lead SponsorOTHER_GOV
Harbin Medical University
CollaboratorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
TREATMENT
Masking
QUADRUPLE (Subject, Caregiver, Investigator, Outcomes Assessor)

Intervention model description

Intervention Group: high protein diet Intervention Group: perilla peptide dietary group Control Group: control diet

Eligibility

Sex/Gender
ALL
Age
30 Years to 65 Years
Healthy volunteers
No

Inclusion criteria

1. Aged between 30 and 65 years old. 2. Able to understand the study and voluntarily sign the informed consent form. 3. Meet the clinical diagnostic criteria for alcohol-associated fatty liver disease (AFLD): a history of alcohol consumption for ≥5 years, with an average daily ethanol intake of ≥20 g/d; clinically diagnosed with fatty liver (indicated by abdominal ultrasound or a liver MRI proton density fat fraction \[MRI-PDFF\] ≥5.2%).

Exclusion criteria

1. Average daily ethanol intake \>80 g/d. 2. Presence of other hepatobiliary diseases, such as autoimmune liver disease, viral hepatitis, liver fibrosis, or cirrhosis. 3. Presence of severe cardiovascular or cerebrovascular diseases, or renal insufficiency. 4. Patients with tumors or other severe systemic diseases. 5. Patients with gastrointestinal disorders, or those with known protein allergy or intolerance. 6. Long-term use of medications known to cause hepatic steatosis or steatohepatitis (e.g., amiodarone or tamoxifen), nutritional supplements, or probiotics. 7. Total daily energy intake (excluding energy from alcohol) \<1900 kcal or ≥2900 kcal. 8. Participation in another interventional study within the past year, or scheduled to receive non-study treatments during the trial period.

Design outcomes

Primary

MeasureTime frameDescription
Magnetic Resonance Imaging proton density fat fraction in hepatic steatosisBaseline, up to 60 days of the studyMagnetic Resonance Imaging (MRI) technology utilizes magnetic fields and radiofrequency pulses to conduct non-invasive examinations of tissues. When measuring liver fat content, MRI employs water-fat separation techniques to quantify the proton density of water molecules and fat molecules (PDFF) within the liver, thereby providing a quantitative analysis of fat content.

Secondary

MeasureTime frameDescription
Liver functionBaseline, up to 60 days of the studyAlanine aminotransferase (ALT, U/L), aspartate aminotransferase (AST, U/L), γ-glutamyltransferase (γ-GT, U/L), alkaline phosphatase (ALP, U/L), total bilirubin (TBIL, μmol/L), direct bilirubin (DBIL, μmol/L), indirect bilirubin (IBIL, μmol/L), alcohol dehydrogenase (ADH, U/L), aldehyde dehydrogenase (ALDH, U/L).
Glucose metabolismBaseline, up to 60 days of the studyHemoglobin A1c (HbA1c, %), Fasting blood glucose (FBG, mmol/L)
Lipid metabolismBaseline, up to 60 days of the studySerum triglycerides (TG, mmol/L), total cholesterol (TC, mmol/L), low-density lipoprotein cholesterol (LDL-C, mmol/L), high-density lipoprotein cholesterol (HDL-C, mmol/L), apolipoprotein A-I (ApoA-I, g/L), apolipoprotein B (Apo B, g/L).

Contacts

CONTACTQingling Huang, Dr.
hqingling0306@163.com+8615267148306
CONTACTKaixin Pan
18966486859@163.com+8613568620076
STUDY_CHAIRSongtao Li

Zhejiang Chinese Medical University

STUDY_CHAIRRennan Ren

Harbin Medical University

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Jun 30, 2026