Gut Microbiota and Nonalcoholic Fatty Liver Disease: Insights on Mechanisms and Therapy
Abstract
:1. Introduction
2. Roles of the Gut Microbiota in NAFLD Development
3. Gut Microbiota-Targeted Therapies in NAFLD
3.1. Gut Microbiota-Targeted Therapy with Probiotics
3.2. Gut Microbiota-Targeted Therapy with Prebiotic
3.3. Gut Microbiota-Targeted Therapy with Synbiotic
3.4. Gut Microbiota-Targeted Therapies with Other Approaches
4. Conclusions and Perspectives
Acknowledgments
Author Contributions
Conflicts of Interest
Appendix A
- The main source of material was pubmed, and the search keywords used were as follows: “gut microbiota”, “gut flora”, “nonalcoholic fatty liver disease(NAFLD)”, “nonalcoholic steatohepatitis(NASH)”, “steatosis”,“probiotic”, “prebiotic”, “antibiotic”, “herbal medicince”;
- Selected papers have no language restrictions;
- Most of the papers selected were published during the past 10 years;
- References of some identified papers were further searched for related papers to cover this topic as completely as possible.
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Interventions | Main Effects | Experimental Models | Ref. | |
---|---|---|---|---|
Probiotic | Lactobacillus (LcS) | Suppressing NASH development | MCD diet-induced NASH in mice | [64] |
Improving insulin resistance and glucose intolerance | Diet-induced obesity (DIO) mice. | [65] | ||
Protecting against the onset of fructose-induced NAFLD | Fructose-induced NAFLD in mice | [66] | ||
L. paracasei | Attenuating hepatic steatosis | (High fat +10% fructose diet)-induced NASH in mice | [70] | |
L. plantarum A7 | Lowering serum lipids, TC, and TG levels | High-cholesterol diet-fed rats | [73] | |
L. plantarum MA2 | Lowering serum TC, TG and low-density lipoprotein cholesterol | Cholesterol-enriched diet-fed rats | [74] | |
L. plantarum NCU116 | Improving liver function, oxidative stress and lipid metabolism | HFD-induced NAFLD in rats | [75] | |
Lactobacillus rhamnosus GG (LGG) | Protecting mice from NAFLD attenuated liver inflammation and steatosis | High-fructose diet induced NAFLD in mice | [76] | |
Improving NAFLD | HFD-induced NAFLD in rats | [82] | ||
Improving in alanine aminotransferase levels | 20 obesity-related liver abnormalities in children | [105] | ||
L. johnsonii BS15 | Effective in preventing NAFLD | HFD-induced NAFLD in mice | [78] | |
L. reuteri GMNL-263 | Ameliorating hepatic steatosis | High-fructose diet-fed rats | [79] | |
L. gasseri BNR17 | Inhibiting increases in body and adipocyte tissue weight | High-sucrose diet-induced obese mice. | [80] | |
3 Lactobacillus strains | Reducing serum TC, TG, and low-density lipoprotein cholesterol | HFD-fed rats | [114] | |
L. acidophilus NCFM | Inflammatory markers and the systemic inflammatory response were unaffected | 45 males with T2D | [111] | |
L. acidophilus | No changes in serum lipids | 80 patients with elevated cholesterols | [113] | |
Bifidobacterium (Bif) | Ameliorating visceral fat accumulation and insulin sensitivity | HFD-fed rats | [84] | |
Attenuating hepatic fat accumulation | HFD-induced NAFLD in rats | [86] | ||
Reducing body and fat weights, blood serum levels (TC, HDL-C, LDL-C, TG, AST, ALT, and lipase levels) | HFD-induced obesity in rats | [115] | ||
B. pseudocatenulatum CECT 7765 | Reducing serum cholesterol, TG, and insulin resistance | HFD-fed mice | [85] | |
Bacteroides uniformis CECT 7771 | Reducing body weight gain, liver steatosis and cholesterol and TG concentrations | HFD-induced obesity mice | [116] | |
Probiotic | VSL#3 | Limiting oxidative and inflammatory liver damage | HFD-fed young rats | [92] |
Reducing hepatic total fatty acid content and ALT levels. | HFD-induced NAFLD in mice | [93] | ||
Improvements in steatosis and insulin resistance | HFD-fed mice | [94] | ||
Modulating liver fibrosis, without protecting from inflammation and steatosis in NASH. | MCD diet-induced NASH in mice. | [95] | ||
Improving the degree of liver disease in children | 44 Obese children with NAFLD | [104] | ||
Improving plasma levels of lipid peroxidation markers: MDA(malondialdehyde), 4-HNE( 4-hydroxynonenal). | 22 patients with NAFLD + 20 patients with AC (alcoholic liver cirrhosis ) | [117] | ||
Experiencing a significant increase in liver fat; no significant differences in any of the blood assays or clinical parameters | 4 patients with NAFLD | [110] | ||
Probiotic mixtures | Improving NAFLD | HFD-induced NAFLD in rats | [96] | |
Delaying the progression of NAFLD via LPS/TLR4 signaling | HSHF diet-induced NAFLD in rats | [97] | ||
Improving NAFLD pathogenesis and steatosis | High fat and sucrose diet (HFSD)-induced NAFLD in rats | [118] | ||
Influencing protein expression and decreasing steatohepatitis | MCD diet-induced NASH in rats | [99] | ||
Reducing obesity-related biomarkers and modulating the microbial community | Obese mice | [100] | ||
Modulating gut microbiota and up-regulated genes related to fatty acid oxidation in both the liver and adipose tissue | HFD-induced obese mice | [98] | ||
Improving liver aminotransferases levels | 30 patients with NAFLD | [106] | ||
Decreasing levels of ALT and AST and improving pediatric NAFLD | 64 obese children with NAFLD | [119] | ||
Reducing insulin, insulin resistance, TNF-a, and IL-6 | 42 patients with NAFLD | [107] | ||
No significant changes in (LDL)-cholesterol, (HDL)-cholesterol, TG, TC TG/LDL and LDL/HDL ratios | 60 patients with T2DM | [112] | ||
Great reductions in serum AST level and liver fat | 20 patients with NASH | [120] | ||
MIYAIRI 588 | Improving NAFLD and decreasing accumulation of lipid droplets | HFD-induced NAFLD in rats | [102] | |
Improving hepatic lipid deposition and decreasing the triglyceride content, insulin resistance, serum endotoxin levels, and hepatic inflammatory indexes. | Choline-deficient/ l-amino acid-defined (CDAA)-diet-induced NAFLD in rats | [103] | ||
Probiotics and metformin | Improvements in liver aminotransferases, cholesterol, and TG | 64 patients with NASH | [108] | |
Probiotics and statins | Lowering cholesterol and products of metabolism of intestinal microflora | Patients with NAFLD | [109] | |
Probiotic | Probiotic yogurt | Improving hepatic enzymes, serum TC, and low-density lipoprotein cholesterol levels | 72 patients with NAFLD | [121] |
Improvements in total cholesterol and LDL-C concentrations | 60 people with type 2 diabetes and low-density lipoprotein cholesterol | [122] |
Interventions | Main Effects | Experimental Models | Ref. | |
---|---|---|---|---|
Prebiotic | Oligofructose (OFS) | Lowering LPS and cytokine levels, and decreasing the hepatic expression of inflammatory and oxidative stress markers | Obese and diabetic mice | [128] |
Decreasing serum ALT, AST and insulin level | Patients with NASH | [127] | ||
Fructooligosaccharides (FOS) | Restoring normal gastrointestinal microflora and intestinal epithelial barrier function, and decreasing steatohepatitis | MCD diet-induced NASH in mice. | [129] | |
Reducing hepatic TG and TC level, modulating hepatic steatosis | N-3PUFA (polyunsaturated fatty acid)-depleted diet-fed mice | [130] | ||
Lactulose | Ameliorating the hepatic inflammation and decreasing serum levels of ALT and AST | HFD-induced NASH in rats | [133] | |
Chitin–glucan (CG) | Decreasing weight gain, fat mass development, glucose intolerance, and hepatic TG accumulation | HFD-induced obese mice | [134] | |
Isomalto-oligosaccharides (IMOs) | Preventing weight gain, adiposity, and improving insulin resistance. | HFD-induced NAFLD in mice | [135] | |
Galacto-oligosaccharides and fructo-oligosaccharides (9:1) | Increasing abundance and proportion of bifidobacteria | Formula-fed infants (FF) | [141] | |
Inulin-type fructans( ITF) prebiotics (inulin + oligofructose) | Changing the gut microbiota composition and host metabolism | 30 obese women | [142] |
Interventions | Main Effects | Experimental Models | Ref. | |
---|---|---|---|---|
Synbiotic | L. paracasei B21060 + arabinogalactan + FOS | Lessening NAFLD progression, preserving gut barrier integrity and reducing the severity of liver injury and IR | HFD-induced NAFLD in rats | [146] |
Seven probiotics + OFS | Improving NAFLD and decreasing levels of ALT and AST | 52 patients with NAFLD | [150] | |
B. longum + FOS | Reductions in TNF-a, serum AST levels, serum endotoxins, steatosis, and the NASH activity index | 66 patients with NASH | [151] | |
Dietary fiber + L. reuteri | Improving NAFLD and reducing serum levels of most of the inflammatory mediators | 50 lean patients with NAFLD | [152] | |
Seven probiotics + FOS | Protecting against NAFLD progression and improving steatosis | 80 NAFLD patients | [153] |
Interventions | Main Effects | Experimental Models | Ref. | |
---|---|---|---|---|
Antibiotic | Cidomycin | Lowering serum levels of ALT, AST and TNF-α and alleviating the severity of NASH | Rats with NASH | [158] |
Vancomycin + Neomycin + Metronidazole + Ampicillin | Adjusting gut microecology and alleviating the lesions of NAFLD | HFD-induced NAFLD in rats | [175] | |
Rifaximin | Improving NAFLD and reducing endotoxin and IL-10 levels | 42 patients with NAFLD | [159] | |
Herbal medicine or natural active ingredient | 2,3,5,4′-tetrahydroxy-stilbene-2-O-β-d-glucoside (TSG) | Reversing NAFLD and reducing FFA accumulation, and increasing the protein expression of ZO-1 and occludin | HFD-induced NAFLD in rats | [169] |
Resveratrol | Reducing blood glucose and lipid levels, and lowering both body and visceral adipose weights | HFD-fed mice | [171] | |
Qushi Huayu Fang | Reducing body weight, TG and free fatty acids, alleviating hepatic steatosis | HFD-induced NAFLD in rats | [172] | |
Enhancing the hepatic anti-oxidative mechanism, decreasing hepatic lipid synthesis, and promoting the regulatory T cell inducing microbiota in the gut | HFD-induced NAFLD in rats | [173] | ||
Daesiho-tang (DSHT) | Ameliorating body weight gain, body fat, decreasing TC and TG | HFD-fed obese mice | [174] | |
Gegen Qinlian Decoction (GQD) | Alleviating T2D, increasing the amounts of beneficial bacteria | 187 patients with type 2 diabetes (T2D) | [176] |
© 2017 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
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Ma, J.; Zhou, Q.; Li, H. Gut Microbiota and Nonalcoholic Fatty Liver Disease: Insights on Mechanisms and Therapy. Nutrients 2017, 9, 1124. https://doi.org/10.3390/nu9101124
Ma J, Zhou Q, Li H. Gut Microbiota and Nonalcoholic Fatty Liver Disease: Insights on Mechanisms and Therapy. Nutrients. 2017; 9(10):1124. https://doi.org/10.3390/nu9101124
Chicago/Turabian StyleMa, Junli, Qihang Zhou, and Houkai Li. 2017. "Gut Microbiota and Nonalcoholic Fatty Liver Disease: Insights on Mechanisms and Therapy" Nutrients 9, no. 10: 1124. https://doi.org/10.3390/nu9101124