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Active, not recruitingNCT07488975MASLDUpdated Aug 26, 2026

Developing Microbial Therapy for MASLD: From Mechanism to Clinical Validation

A Phase 1 interventional study of Pasteurized Akkermansia muciniphila LWHK0003_low dose and Pasteurized Akkermansia muciniphila LWHK0003_medium dose in Metabolic Dysfunction-Associated Steatotic Liver Disease, sponsored by Leeuwenhoek Laboratories Co. Ltd.. Active, not recruiting at 1 site in Taiwan. Open to participants aged 18 Years to 70 Years. Per ClinicalTrials.gov, last updated 2026-08-26.

Sponsored by Leeuwenhoek Laboratories Co. Ltd. · Phase 1, Interventional, and Treatment

Phase
Phase 1
Study type
Interventional
Enrollment
40
Allocation
Randomized
Ages
18 Years to 70 Years
Sex
All
01

Study summary

Metabolic dysfunction-associated steatotic liver disease (MASLD), redefined in 2020, is an improved diagnostic standard evolved from non-alcoholic fatty liver disease (NAFLD), emphasizing the correlation between hepatic steatosis and metabolic dysfunction. Compared to NAFLD, which relies on exclusion-based diagnosis, MASLD criteria enhance population homogeneity in studies and accommodate patients with coexisting liver diseases, thereby improving the efficiency and relevance of drug development. MASLD affects approximately one-quarter of the global population. If left untreated, it may progress to liver fibrosis, cirrhosis, or hepatocellular carcinoma. Given its high clinical burden and the current lack of FDA-approved therapies, effective treatments for MASLD are urgently needed.

Previous studies suggest that diet and gut microbiota play crucial roles in the pathogenesis of MASLD. Dietary composition influences microbial balance and intestinal barrier function. In dysbiosis, gut-derived harmful substances such as pathogen-associated molecular patterns (PAMPs) and microbiota-derived metabolites (MDMs) may translocate via a leaky gut to the liver through the portal vein, contributing to hepatic injury. These processes, often described as the gut-liver axis, remain incompletely understood.

Animal studies have shown that dietary components regulating gut microbiota may help alleviate MASLD. While clinical evidence remains limited, incorporating microbiota-modulating and immune-regulating food ingredients holds potential. Next-generation probiotics have demonstrated benefits in improving hepatic lipid metabolism and modulating gut microbiota, potentially slowing MASLD progression through gut-liver axis modulation.

Our previous research investigated a pasteurized Akkermansia muciniphila strain, NTUH_Amuc03 (pAKK_LWHK0003), which attenuated fatty liver progression in preclinical models. In mice subjected to a high-fat, high-fructose, high-cholesterol diet, pAKK_LWHK0003 administration resulted in reduced body weight, improved dyslipidemia, lowered NAFLD activity scores, and improved HOMA-IR. These findings support the potential of pAKK_LWHK0003 in slowing MASLD progression.

This study aims to evaluate further the clinical efficacy and safety of pAKK_LWHK0003 in individuals with MASLD.

Read the detailed description

The aim of this study was to evaluate the effects of administering indigenously derived inactivated Akkermansia muciniphila (pAKK_LWHK0003) on improving fatty liver in patients with metabolic dysfunction-associated steatotic liver disease (MASLD) and to assess its clinical safety.

02

Conditions studied

  • Metabolic Dysfunction-Associated Steatotic Liver Disease

Keywords

  • MASLD
  • MASH
03

In context

Lead sponsor

Leeuwenhoek Laboratories Co. Ltd. is the lead sponsor of 4 studies on the registry; 3 are open to participants now.

Counted across the registry records on this site, refreshed daily.

04

Who can participate

Ages eligible
18 Years to 70 Years
Sexes eligible
All
Accepts healthy volunteers
No

Inclusion criteria

  • Fibroscan,CAP ≧ 260db/m

Exclusion criteria

Exclusion Criteria:

A. Pregnant women or women who are breastfeeding. B. Use of probiotics and prebiotic-related products (including yogurt, yogurt, Yakult, etc.) within 14 days before the screening visit.

C. Patients who have used antibiotics (except skin lotions) or antifungal drugs within 30 days before the screening visit.

D. Use of glucagon-like peptide-1 receptor agonists (GLP1-RAs) within six months prior to the screening visit.

E. Use of drugs that may affect the evaluation index within 14 days before the screening visit, during the screening visit, or during the planned trial period, such as steroids, immunosuppressants, or anti-inflammatory drugs, or drugs containing ingredients for treating hepatitis or affecting fat metabolism, including HMG-CoA reductase inhibitors (statins), fibrates, silymarin, thiazolidinediones, metformin, cholestyramine, ezetimibe, orlistat, and sodium-glucose transporter type 2 inhibitors (SGLT2i). This restriction does not apply if the above-mentioned drugs have been used continuously for more than six months and the dosage is not changed during the trial.

F. Those who have had severe gastrointestinal infection diarrhea symptoms within 14 days before the screening visit (more than three watery stools in 24 hours).

G. Have the following medical history or laboratory abnormalities:

05

Study design

Phase
Phase 1
Primary purpose
Treatment
Allocation
Randomized
Intervention model
Parallel assignment
Masking
Triple (Participant, Care provider, Outcomes assessor)
Enrollment
40 participants (estimated)

Study arms

  • Experimental
    Pasteurized Akkermansia muciniphila LWHK0003 _low dose

    400 mg/capsule/day. Duration: 120 days

    Biological: Pasteurized Akkermansia muciniphila LWHK0003_low dose

  • Experimental
    Pasteurized Akkermansia muciniphila LWHK0003 _medium dose

    400 mg/capsule/day. Duration: 120 days

    Biological: Pasteurized Akkermansia muciniphila LWHK0003_medium dose

  • Experimental
    Pasteurized Akkermansia muciniphila LWHK0003 _high dose

    400 mg/capsule/day. Duration: 120 days

    Biological: Pasteurized Akkermansia muciniphila LWHK0003_high dose

  • Placebo comparator
    Placebo

    400 mg/capsule/day. Duration: 120 days

    Other: Placebo

Interventions

  • BiologicalPasteurized Akkermansia muciniphila LWHK0003_low dose

    400 mg/capsule/days. Duration: 120 days

  • BiologicalPasteurized Akkermansia muciniphila LWHK0003_medium dose

    400 mg/capsule/day. Duration: 120 days

  • BiologicalPasteurized Akkermansia muciniphila LWHK0003_high dose

    400 mg/capsule/day. Duration: 120 days

  • OtherPlacebo

    400 mg/capsule/day. Duration: 120 days

06

What researchers measure

Primary outcomes

  1. Liver steatosis, fibrosis, liver stiffness, and FIB-4 index

    To assess the statistical differences between baseline and Weeks 12 and 16 (Visit V5 and V6) after administration of placebo or different doses (10⁹, 10¹⁰, 10¹¹ CFU) of pAKK LWHK0003 capsules, in terms of liver fat content (steatosis), fibrosis, liver stiffness, and FIB-4 index as measured by FibroScan and MRI/MRE.

    Time frame: From enrollment to the end of treatment, up to 52 weeks

07

Study locations

1 site
  • National Taiwan University Hospital
    Taipei, Taiwan
08

Updates

Tracking since Sep 25, 2026
No changes since tracking began. The registry record was last updated on Aug 26, 2026, before this site started recording changes on Sep 25, 2026. Its history is on ClinicalTrials.gov ↗
09

Registry details

Key details

Study ID
NCT07488975
Lead sponsor
Leeuwenhoek Laboratories Co. Ltd.
Responsible party
Sponsor
First posted
Mar 23, 2026
Start date
Jan 22, 2025
Primary completion
Dec 31, 2026 (estimated)
Completion
Dec 31, 2026 (estimated)
Last update
Aug 26, 2026

Oversight

Data monitoring committee
No
FDA-regulated drug
No
FDA-regulated device
No
View the source record on ClinicalTrials.gov ↗

Not currently enrolling

This study is active, not recruiting, as verified in Aug 2026. You cannot join it, but the record below documents what was studied.

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