| Literature DB >> 31070528 |
Hong Yang Zhang1, Hong Ling Wang1, Guo Yue Zhong1, Ji Xiao Zhu1.
Abstract
CONTEXT: Liver disease is a common threat to human health, caused by a variety of factors that damage the liver. Recent studies have shown that active ingredients (for example: flavonoids, saponins, acids, phenols, and alkaloids) from Traditional Chinese Medicine (TCM) can have hepatoprotective benefits, which represents an attractive source of drug discovery for treating liver injury.Entities:
Keywords: Herb; drug discovery; hepatic; liver damage
Mesh:
Substances:
Year: 2018 PMID: 31070528 PMCID: PMC6282438 DOI: 10.1080/13880209.2018.1517185
Source DB: PubMed Journal: Pharm Biol ISSN: 1388-0209 Impact factor: 3.503
Comparison of various types of liver injury. (A summary and comparison of all kind of major models experimental models of liver injury, including type, model, key index, molecular mechanism, advantages, and disadvantages.)
| Type | Model | Key index | Molecular mechanism | Advantages | Disadvantages |
|---|---|---|---|---|---|
| CCl4 | 40%–50% CCl4 vegetable oil solution | ALT, AST, TNF-α, TLR, TGF-β, IL, | 1. Inflammation | 1. Good repeatability | 1. High mortality |
| ALT, AST、 | 1. Inflammation | 1. Does not affect other organs | Expensive | ||
| ANIT | ANIT olive oil solution | ALT, AST, SOD, GSH, IL, | 1. Inflammation | 1. Simple and easy | Expensive |
| DMN | 1% DMN solution | ALT, AST, TNF-α, TLR, TGF-β, | 1. Inflammation | 1. A good model for studying hepatic fibrosis | 1. More toxic |
| TAA | TAA | ALT, AST, | 1. Metabolic disorder | 1. Low mortality | Expensive |
| ConA | ConA solution | ALT, AST, TNF-α, IL, NF-κB, NLRP3 | 1. Inflammation | 1. Simple operation | There is no viral replication and sustained injury to the liver parenchyma |
| BCG/LPS | BCG/LPS normal saline solution | ALT, AST, NO, TNF-α, TGF-β, IL, NF-κB | 1. Sensitization | 1. Short molding time | Pre-sensitized with BCG |
| ALT, AST, NO, TNF-α, TGF-β, IL, NF-κB | 1. Metabolic block | It is a good model for endotoxin-induced liver injury | Pre-sensitized with | ||
| Alcoholic | White spirit | ALT, AST, SOD, TNF-α, IL, GSH, | 1. Inflammation | Stable and reliable | 1. Long molding time |
| APAP | APAP | ALT, AST, | 1. Inflammation | Very sensitive to mice | Insensitive to rats |
| INH/RIF | INH/RIF | ALT, AST, GSH, | 1. Inflammation | Stable | Expensive |
A summary of the effect of traditional Chinese medicine on liver injury. (This is an overview of liver injury treated by Chinese medicine by the end of May 2018, including the name of herb or compound, parts or solvent, liver injury model, mechanism of action, and reference.)
| Name of herb or compound | Parts or Solvent | Liver injury model | Experiment | Mechanism of action | Reference |
|---|---|---|---|---|---|
| Aqueous extract | vivo | Inhibited inflammatory reaction, apoptosis and promoted liver tissue regeneration in the acute liver failure rats. | Luo J et al. 2016. Aqueous extract from | ||
| Aqueous extract | CCl4 | vivo | Scavenge free radicals, decrease the level of TGF-β1 and block TGF-β/Smad signaling pathway. | Tian X et al. 2011. Effects and Mechanisms of | |
| Aqueous extract | ConA | vivo | Significantly protect the Con A-induced acute liver injury in mice via inhibition of ROS and JNK pathway. | Wu SJ et al. 2017. The hepatoprotective effect of | |
| Methanol extract | LPS | vivo | Utilize the NF-κB and MAPKs pathways and the regulation of SOD activity to attenuate LPS-induced nonspecific pulmonary inflammation | Huang GJ et. 2014. Methanol extract of | |
| Antrosterol | CCl4 | vivo | Inhibited lipid peroxidation, enhance the activities of antioxidant enzymes, decreases the TNF-α level, NO and iNOS, and COX-2 expressions. | Huang G et al. 2012. Protective effect of antrosterol from | |
| Methanol extract and aqueous extract | APAP | vivo | Increased levels of AST and ALT | Lin C et al. 2000. Antioxidant and hepatoprotective effects of | |
| Aqueous extract | APAP and CCl4 | vivo | Decrease the GSH, MDA, and CYP450 | Lin SC et al. 2000. Hepatoprotective effects of | |
| Aqueous extract | CCl4 | vivo | Successfully lower serum ALT and AST activities, restore the GSH level, ameliorate or restore GPx and CAT activities as well. | Yang C C et al. 2012. Potential antioxidant properties and hepatoprotective effects of an aqueous extract formula derived from three Chinese medicinal herbs against CCl4-induced liver injury in rats. International Immunopharmacology. | |
| Chlorogenic acid | APAP | vitro (L-02 cells) | Reversed the decreased cell viability; reduced serum levels of ALT/AST; prevented liver oxidative stress injury. | Chun P et al. 2015. Chlorogenic acid prevents acetaminophen-induced liver injury: the involvement of CYP450 metabolic enzymes and some antioxidant signals. J Zhejiang Univ Sci B. | |
| n-butanol extract | CCl4 | vivo | Transcript levels of genes encoding antioxidant enzymes such as GPO1, GPO3 and SOD1 were elevated. | Lee SH et al. 2008. Antioxidant and Hepatoprotective Activities of | |
| Esculentoside A | CCl4 and D-GalN/LPS | vivo | Attenuated CCl4 and D-GalN/LPS-induced acute liver injury in mice and its protective effects might be involved in inhibiting inflammatory response and oxidative stress. | Zhang F et al. 2014. The protective effect of esculentoside an on experimental acute liver injury in mice. PLoS ONE. | |
| Esculin | LPS | vivo | Diminished the protein expression of NF-κB p65 in liver, which resulted in lower levels of inflammatory mediators. | Li W et al. 2016. Esculin attenuates endotoxin shock induced by lipopolysaccharide in mouse and NO production in vitro through inhibition of NF-κB activation. Eur J Pharmacol. | |
| Essential oil | D-GalN/LPS | vivo | Decreased oxidative stress and inhibiting cytokines. | Li W et al. 2016. The Chemical Constituents and the Hepato-protective Effect of the Essential Oil of | |
| Gallic acid | CCl4 | vivo | Protective effect of these substances on cell membranes. | Kanai S et al. Mechanism of the protective effects of sumac gall extract and gallic acid on the progression of CCl4-induced acute liver injury in rats. The American Journal of Chinese Medicine. | |
| Gentiopicroside | ANIT | vivo | Change bile acids metabolism which highlights its importance in mitigating cholestasis, resulting in the marked decrease of intracellular bile acid pool back toward basal levels. | Tang X et al. 2016. Target profiling analyses of bile acids in the evaluation of hepatoprotective effect of gentiopicroside on ANIT-induced cholestatic liver injury in mice. J Ethnopharmacol. | |
| Glycyrrhiza uralensis Fisch. | CCl4 | vivo | Decrease of NOS and NO levels, and reduction of the production of free radicals | Chen D et al. 2016. Study on Protective Effect of Glycyrrhiza uralensis | |
| Glycyrrhiza uralensis Fisch. | CCl4 | vivo | Decreased in serum ALT and AST | Gao XY et al. 2011. Preparation of total licorice saponin and research on its hepatoprotective effect. Pharmacology and Clinics of Chinese Materia Medica. | |
| Homoplantaginin | BCG/LPS | vitro (HL-7702 cells) | Decreased in serum ALT and AST, decreased the levels of TNF-α and IL-1, elevated the levels of GSH, GSH-Px and SOD. | Qu XJ et al. 2009. Protective effects of | |
| Aqueous extract | ANIT and CCl4 | vivo | Had an obvious effect on the decreasing of AST, ALT and T-BIL levels in serum. | Wang N et al. 2008. Hepatoprotective effect of | |
| Isofuranodiene | D-GalN/LPS | vivo | Significantly inhibited D-GalN/LPS-induced mRNA expression of IL-1β, IL-6, and iNOS in liver tissues. | Chen XP et al. 2015. Isofuranodiene protect D-galactosamin/lipopolysacchride induced liver injury in rat | |
| Kaerophyllin | TAA | vivo | Suppressed hepatic inflammation and inhibiting HSC activation, possibly through upregulation of PPAR-γ expression. | Lee T et al. 2012. Protective effects of kaerophyllin against liver fibrogenesis in rats. European Journal of Clinical Investigation. | |
| Kukoamine B | LPS | vivo | Inhibited inflammation in septic mice by reducing the concentrations of plasma LPS, decreased leukocyte sequestration and interfering with NF-κB activation, suppressed the pro-adhesive phenotype of endothelial cells. | Qin W et al. 2015. A novel role of kukoamine B: Inhibition of the inflammatory response in the livers of lipopolysaccharide-induced septic mice via its unique property of combining with lipopolysaccharide. Exp Ther Med. | |
| total flavonoids | CCl4 | vivo | Inhibited the expression of TGF-β1 and increased the expression of PPAR-γ. | Huang C et al. 2010. Potential protective effects of a traditional Chinese herb, | |
| Aqueous extract | CCl4 | vivo | Inhibited the acute elevation of serum transaminases. | Lin SC et al. 1994. Hepatoprotective effects of Taiwan folk medicine: | |
| Magnolol | ConA | Vitro (Th17 Cells) | Inhibited Th17 cell differentiation; suppressed IL-17A generation. | Zhang H et al. 2017. Magnolol Attenuates Concanavalin A-induced Hepatic Fibrosis, Inhibits CD4+ T Helper 17 (Th17) Cell Differentiation and Suppresses Hepatic Stellate Cell Activation: Blockade of Smad3/Smad4 Signalling. Basic & Clinical Pharmacology & Toxicology. | |
| Matrine | CCl4 | vivo | Prevented monocyte infiltration into the injured livers and inhibition of MCP-1 production and activity. | Shi D. et al. 2013. Matrine Inhibits Infiltration of the Inflammatory Monocyte Subset in Injured Mouse Liver through Inhibition of Monocyte Chemoattractant Protein-1. Evidence-based Complementary and Alternative Medicine. | |
| total phenolics | D-Gal-N | vivo | Improve the survival of acute liver failure model significantly and prevent the elevation of the serum enzymatic markers and nonenzymatic markers levels significantly. | Guo A et al. 2016. The protective effect of total phenolics from | |
| Oridonin | D-Gal-N/LPS | vivo | Attenuated D-GalN/LPS-induced apoptosis in hepatocytes by reducing pro-apoptotic signals. | Deng Y et. 2017. Oridonin ameliorates lipopolysaccharide/D-galactosamine-induced acute liver injury in mice via inhibition of apoptosis. Am J Transl Res. | |
| Aqueous extract | CCl4 | vivo | Prevent CCl4-induced liver injury in mice via regulating the Nrf2 and NFκB pathways. | Huo X et al. 2017. Hepatoprotective Effect of Aqueous Extract from the Seeds of | |
| Osthole | APAP | vivo | Inhibited the metabolic activation of APAP and enhanced its clearance through an antioxidation mechanism. | Cai Y et al. 2018. Osthole prevents acetaminophen-induced liver injury in mice. Acta Pharmacol Sin. | |
| 70% aqueous ethanol | BCG/LPS | vivo | Reduced nitric oxide production and suppressed Kupffer cell activity and pro-inflammatory mediator and cytokines production. | Sun W et al. 2008. Protective effect of extract from | |
| Aqueous extract | CCl4 | vivo | Induced oxidative stress in rats | Karadeniz A et al. 2009. Protective effect of | |
| Aqueous extract | CCl4 | vivo | Ameliorated CCl4-induced oxidative stress via activating Nrf2 signaling pathway. | Wang M et al. 2017. Hepatoprotective properties of | |
| Aqueous extract | Alcoholic | vivo | Suppressed CYP2E1-mediated oxidative stress and enhancing the oxidant defense systems via the activation of Nrf2/HO-1 pathway. | Cao Y et al. 2015. Protective effects of | |
| Periplocoside A | ConA | vivo | Inhibited of NKT-derived inflammatory cytokine productions. | Wan J et al. 2008. Periplocoside A, a pregnane glycoside from | |
| LPS | vivo | Suppressed the production of the proinflammatory mediators in serum, and attenuate liver injury. | Lia Y. 2014. Pogostone suppresses proinflammatory mediator production and protects against endotoxic shock in mice. Journal of Ethnopharmacology. | ||
| CCl4 | vivo | Reduce the activities of ALT, AST, ALP and the contents of DBIL, TBIL in serum of rats. | Han CY et al. 2018. Study on extraction of | ||
| puerarin | Alcoholic and CCl4 | vivo | Mediates hepatoprotection by the inhibition of inflammatory response and downregulation of the TNFα/NFκB pathway | Zhu P L et al. 2015, Effects of combined dietary supplementation with fenofibrate and Schisandrae Fructus pulp on lipid and glucose levels and liver function in normal and hypercholesterolemic mice. Drug Design, Development and Therapy | |
| puerarin | D-Gal-N/LPS | vivo | Increase autophagy and suppress of apoptosis | Li L et al. 2018. Protective role of puerarin on LPS/D-Gal induced acute liver injury via restoring autophagy. Am J Transl Res. | |
| Methanol extract | DMN | vivo | Reverse the pathogenic progression of the disease, decrease the hydroxyproline content and increases the expression of HGF messenger RNA in liver tissue | Huang C et al. 2007. Chinese herb | |
| total extract; 90% ethanol | CCl4 | vivo | Liver toxicity of High dose, liver preservation of low dose. | Wang JB et al. 2011. Hepatotoxicity or Hepatoprotection? Pattern Recognition for the Paradoxical Effect of the Chinese Herb | |
| Aqueous extract | CCl4 | vivo | Protective effect of these substances on cell membranes. | Kanai S et al. Mechanism of the protective effects of sumac gall extract and gallic acid on the progression of CCl4-induced acute liver injury in rats. The American Journal of Chinese Medicine. | |
| Saikosaponin-d | DMN | vivo | Reduced collagen I deposition in the liver and ALT level in the serum; decreased the content of TGF-1 in the liver. | Fan J et al. 2007. Saikosaponin-d attenuates the development of liver fibrosis by preventing hepatocyte injury. Biochemistry and Cell Biology. | |
| Saikosaponin-d | CCl4 | vivo | Alleviated hepatocyte injury from oxidative stress. | Fan J et al. 2007. Saikosaponin-d attenuates the development of liver fibrosis by preventing hepatocyte injury. Biochemistry and Cell Biology. | |
| Saikosaponin-d | APAP | vivo | Down-regulating NF-κB- and STAT3-mediated inflammatory signaling. | Aiming L et al. 2014. Saikosaponin d protects against acetaminophen-induced hepatotoxicity by inhibiting NF-κB and STAT3 signaling. Chemico-Biological Interactions. | |
| Polysaccharide | BCG/LPS | vivo | Effectively improved the liver index, spleen index and thymus index; reduced the serum levels of ALT, AST and NO; restored liver homogenate contents of TNF-α and IL-1β. | Song YH et al. 2008. Protection of a polysaccharide from | |
| Aqueous extract | CCl4 | vivo | Reduced levels of transforming growth factor-beta1, procollagens I and III and tissue inhibitor of metalloproteinase-1 transcripts and an increased level of matrix metalloproteinase-13 transcript. | Wasser S et al. 1998. | |
| Salvianolic acid-A | CCl4 | vivo | Have protective effects against liver injury and fibrosis in rats. | Hu Y Y et al. 2000. Protective actions of salvianolic acid A on hepatocyte injured by peroxidation in vitro. World Journal of Gastroenterology. | |
| Aqueous extract | CCl4 | vivo and clinical | Induced liver cytochrome P-450 and promote certain anabolic metabolism such as serum protein biosynthesis and glycogenesis. | Liu GT. 1989. Pharmacological actions and clinical use of fructus schizandrae. Chin Med J (Engl). | |
| Schisandrin B | vivo | Proteins 27 and 70 were involved in the protective effect. | Gao Z et al. 2016. Heat shock proteins 27 and 70 contribute to the protection of Schisandrin B against d-galactosamine-induced liver injury in mice. Canadian Journal of Physiology and Pharmacology. | ||
| Scutellarin | Con A | vivo | Inhibited the NF-kappaB-TNF-α-iNOS transduction pathway. | Zheng H et al. 2007. The protective action of scutellarin against immunological liver injury induced by concanavalin A and its effect on pro-inflammatory cytokines in mice. Journal of Pharmacy and Pharmacology. | |
| Aqueous extract | CCl4 | vivo | Inhibited pathological angiogenesis and hepatic fibrogenesis may be through affecting the angiogenesis-associated VEGF and its upstream and downstream signaling pathways. | Xi S et al. 2016. The Effects of Taoren-Honghua Herb Pair on Pathological Microvessel and Angiogenesis-Associated Signaling Pathway in Mice Model of CCl4-Induced Chronic Liver Disease. Evidence-Based Complementary and Alternative Medicine. | |
| Shikonin | vivo | Inhibited TLR4 signaling pathway | Lin MX et al. 2017. Shikonin protects against D-Galactosamine and lipopolysaccharide-induced acute hepatic injury by inhibiting TLR4 signaling pathway. Oncotarget. | ||
| Silymarin | CCl4 | vivo | Reduce ALT elevation in animals exposed to CCl4. | Li Y et al. 2003. Traditional Chinese Medicine Prevents Inflammation in CCI4-Related Liver Injury in Mice. American Journal of Chinese Medicine. | |
| Sparstolonin B | LPS | vivo | Suppressed LPS-induced increase of TNF-α and IL-6 in serum and livers. | Liang QL et al. 2015. Protective effects of Sparstolonin B, a selective TLR2, and TLR4 antagonist, on mouse endotoxin shock. Cytokine. | |
| Aqueous extract | CCl4 | vivo | Safely and effectively prevents and reverses hepatic fibrosis through activating HSC apoptosis in rats | Josette S Y et. 2009. | |
| Tannins | CCl4 | vivo | The mechanism for this prevention might be due mainly to the protective effect of these substances on cell membranes. | Kanai S et al. 1998. Mechanism of the protective effects of sumac gall extract and gallic acid on the progression of CCl4-induced acute liver injury in rats. The American Journal of Chinese Medicine. | |
| Thaliporphine | LPS | vivo | Suppressed TNF-α, NO, and O2- production. | Chiao C et al. 2005. Thaliporphine increases survival rate and attenuates multiple organ injury in LPS-induced endotoxaemia. Naunyn Schmiedeberg's Archives of Pharmacology. | |
| Tetrandrine | ConA | vivo | Suppressed the production of various inflammatory mediators in the liver through inhibited of NF-κB activation. | Feng D et al. 2008. Tetrandrine protects mice from concanavalin A-induced hepatitis through inhibiting NF-κB activation. Immunology Letters. | |
| Aqueous extract | CCl4, APAP, D-Gal-N | vivo and clinical | Improve the general damage condition and suppress enzyme leakage from cellular membranes. | Lin SC et al. 1994. Hepatoprotective effects of Taiwan folk medicine: |