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Old and new classes of glucose-lowering agents as treatments for non-alcoholic fatty liver disease: A narrative review

Clinical and Molecular Hepatology 2022;28(4):725-738.
Published online: March 14, 2022

1Department of Gastroenterology, The Second Affiliated Hospital of Wenzhou Medical University, Wenzhou, China

2Department of Endocrinology, The Second Affiliated Hospital of Wenzhou Medical University, Wenzhou, China

3Section of Endocrinology, Diabetes and Metabolism, Department of Medicine, University and Azienda Ospedaliera Universitaria Integrata of Verona, Verona, Italy

4Southampton National Institute for Health Research Biomedical Research Centre, University Hospital Southampton, Southampton General Hospital, Southampton, UK

5NAFLD Research Center, Department of Hepatology, The First Affiliated Hospital of Wenzhou Medical University, Wenzhou, China

6Key Laboratory of Diagnosis and Treatment for The Development of Chronic Liver Disease in Zhejiang Province, Wenzhou, China

Corresponding author : Ming-Hua Zheng NAFLD Research Center, Department of Hepatology, The First Affiliated Hospital of Wenzhou Medical University, No. 2 Fuxue Lane, Wenzhou 325000, China Tel: +86-577-55579611, Fax: +86-577-55578522, E-mail: zhengmh@wmu.edu.cn

Editor: Won Kim, Seoul National University College of Medicine, Korea

• Received: January 15, 2022   • Revised: February 25, 2022   • Accepted: March 11, 2022

Copyright © 2022 by The Korean Association for the Study of the Liver

This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

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Old and new classes of glucose-lowering agents as treatments for non-alcoholic fatty liver disease: A narrative review
Clin Mol Hepatol. 2022;28(4):725-738.   Published online March 14, 2022
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Old and new classes of glucose-lowering agents as treatments for non-alcoholic fatty liver disease: A narrative review
Image Image Image
Figure 1. This schematic diagram illustrates the main mechanisms of diabetes-induced NAFLD. With type 2 diabetes there is usually insulin resistance, reduced pancreatic beta-cell insulin secretion and chronic hyperglycaemia. Adipose tissue lipolysis provides a source of FFA and saturated and monounsaturated fatty acids that are a powerful substrate and stimulus for hepatic DNL. Release of glycerol from lipolysis also provides a substrate for hepatic gluconeogenesis. With hepatic insulin resistance and high levels of glucagon, there is a further increase in gluconeogenesis and a relative decrease in insulin-mediated suppression of hepatic glucose production that further promote fatty liver. In this context, the progression of NAFLD to NASH and cirrhosis is mainly due to increased production of ROS, which leads to ER stress, release of proinflammatory cytokines, cell death and increased fibrogenesis by hepatic stellate cells. FPG, fasting plasma glucose; TG, triglycerides; FFA, free fatty acids; DNL, de novo lipogenesis; ROS, reactive oxygen species; TGF, transforming growth factor; IL, interleukin; TNF, tumor necrosis factor; ER, endoplasmic reticulum; NAFLD, non-alcoholic fatty liver disease; NASH, non-alcoholic steatohepatitis.
Figure 2. This schematic diagram illustrates the key cellular targets of different PPARs for the treatment of NASH and fibrosis whose modulation is intended mainly to reduce hepatic fat content, improve insulin resistance and glucose homeostasis, reduce low-grade inflammation, as well as improve mitochondrial function of hepatocytes and reduce fibrogenesis by hepatic stellate cells. FFA, free fatty acids; PPAR, peroxisome proliferator-activated receptor; FAO, fatty acid oxidation; FPG, fasting plasma glucose; ROS, reactive oxygen species; DNL, de novo lipogenesis; HSCs, hepatic stellate cells; ER, endoplasmic reticulum; NASH, non-alcoholic steatohepatitis.
Figure 3. his schematic diagram illustrates the targets of GLP-1RAs, DPP-4 inhibitors and SGLT-2 inhibitors for the treatment of NASH whose modulation is intended mainly to reduce hepatic fat content, improve insulin resistance and glucose homeostasis. GLP, glucagon-like peptide; GIP, glucose-dependent insulinotropic polypeptid; GLP-1RA, glucagon-like peptide-1 receptor agonist; DPP-4, dipeptidyl peptidase-4; FFA, free fatty acids; FPG, fasting plasma glucose; SGLT-2, sodium-glucose cotransporter-2; HSCs, hepatic stellate cells; ROS, reactive oxygen species; DNL, de novo lipogenesis; FAO, fatty acid oxidation; ER, endoplasmic reticulum; NASH, non-alcoholic steatohepatitis.
Old and new classes of glucose-lowering agents as treatments for non-alcoholic fatty liver disease: A narrative review
Drug target Drug Population Intervention use/dosage/patients Duration Hepatic outcomes & plasma lipids
Metabolic Outcomes Reference
Liver enzyme plasma lipids Resolution of NASH without worsening of fibrosis Improvement in fibrosis stage of ≥1 without worsening of NASH
Pan-PPAR agonist Lanifibranor 247 biopsy-proven NASH patients Oral: (A) 1,200 mg/day (n=83); (B) 800 mg/day (n=83); (C) placebo (n=81) 24 weeks ↓AST, ↓ALT, ↓γ-GT, ↓LDL, ↓TG, ↑HDL-C Yes (49% 1,200-mg lanifibranor vs. 22% placebo) Yes (48% 1,200-mg lanifibranor vs. 29% placebo) ↓FPG, ↓HOMAIR, ↓Fasting insulin [46]
Dual PPARα/δ agonist Elafibranor 276 biopsy-proven NASH patients (F0-F3 stages) Oral: (A) 80 mg/day (n=93); (B) 120 mg/day (n=91); (C) placebo (n=92) 52 weeks ↓ALT, ↓γ-GT, ↓ALP, ↓TC, ↓LDL-C, ↑HDL-C Yes (19% 120-mg elafibranor vs. 12% placebo) No ↓FPG, ↓HbA1c, ↓HOMA-IR,↑Scr [49]
Elafibranor (NCT02704403) 2,157 biopsy-proven NASH patients (NAS score ≥4) Oral: (A) 120 mg/day (n=717); (B) placebo (n=253) (970 patients recruited) 72 weeks -TC, -HDL, -LDL No No -HOMA-IR, -HbA1c [52]
PPAR-γ agonist Pioglitazone 101 biopsy-proven NASH patients with prediabetes or T2DM Oral: (A) 45 mg/day (n=50); (B) placebo (n=51) 18 months ↓AST, ↓ALT, ↓TG, ↑HDL-C Yes (51% 45-mg pioglitazone vs. 19% placebo) No ↑Weight gain, ↓FPG, ↓HbA1c [58]
GLP-1RA Semaglutide 320 biopsy-proven NASH patients (F1-F3 stages) Subcutaneous: (A) 0.1 mg/day (n=80); (B) 0.2 mg/day (n=78); (C) 0.4 mg/day (n=82); (D) placebo (n=80) 72 weeks ↓ALT, ↓AST Yes (59% 0.4-mg semaglutide vs. 17% placebo) No ↓Weight loss, ↓HbA1c [73]
Liraglutide 52 biopsy-proven NASH patients Subcutaneous: (A) 1.8 mg/day (n=26); (B) placebo (n=26) 48 weeks ↓AST, ↓γ-GT, ↑HDL-C Yes (39% 1.8-mg liraglutide vs. 9% placebo) No ↓Weight loss, ↓HbA1c, ↓FPG [75]
Drug target Drug name NCT number Phase Duration Population Primary outcome
Dual PPARα/γ agonist Saroglitazar NCT04193982 3 6 months Non-cirrhotic NAFLD/NASH Change in NAFLD fibrosis score
PPARγ agonist PXL065 NCT04321343 2 36 weeks Biopsy-proven NASH, NAS ≥4, and F1-3 stages Change in liver fat content (by MRI-PDFF)
PPARγ agonist Pioglitazone NCT04501406 2 72 weeks T2DM and biopsy-proven NASH cirrhosis Improvement in NAS score ≥2 points without worsening of fibrosis
GLP-1RA Semaglutide NCT03884075 2 30 weeks NAFLD assessed by MRI-PDFF ≥2 point improvement in NAS score; ≥25% reduction in liver fat content (by MRI-PDFF) and ≥25% reduction of serum ALT or normalization
Glucagon/GIP/GLP-1 agonist HM15211 NCT04505436 2 12 months Biopsy-proven NASH and F1-3 stages ≥30% relative reduction of liver fat content (by MRI-PDFF)
Dual GLP-1/GIP agonist Tirzepatide NCT04166773 2 52 weeks Biopsy-proven NASH and F2-3 stages Resolution of NASH with no worsening of fibrosis
SGLT2 inhibitor Dapagliflozin NCT03723252 3 52 weeks Biopsy-proven NASH Improvement in scored liver histological features
Table 1. Old and new glucose-lowering agents as potential treatments for adult patients with biopsy-proven NASH

NASH, non-alcoholic steatohepatitis; PPAR, peroxisome proliferator–activated receptor; ↓, decrease; AST, aspartate aminotransferase; ALT, alanine aminotransferase; γ-GT, gammaglutamyltransferase; LDL, low-density lipoprotein; TG, triglyceride; ↑, increase; HDL-C, high-density lipoprotein cholesterol; FPG, fasting plasma glucose; HOMA-IR, homeostasis model assessment of insulin resistance; ALP, alkaline phosphatase; TC, total cholesterol; LDL-C, low-density lipoprotein cholesterol; HbA1c, hemoglobin A1c; Scr, serum creatinine; NAS, NAFLD Activity Score; -, no change.

Table 2. Summary of ongoing principal phase 2 and 3 placebo-controlled randomized clinical trials testing the efficacy of newer glucose-lowering drugs in NAFLD or NASH

NAFLD, non-alcoholic fatty liver disease; NASH, non-alcoholic steatohepatitis; PPAR, peroxisome proliferator-activated receptor; NAS, NAFLD Activity Score; MRI-PDFF, magnetic resonance imaging-proton density fat fraction; T2DM, type 2 diabetes mellitus; GLP-1RA, glucagon-like peptide-1 receptor agonist; ALT, alanine aminotransferase; GIP, glucose-dependent insulinotropic polypeptide; GLP, glucagon-like peptide.