1.Si-Wu-Tang attenuates liver fibrosis via regulating lncRNA H19-dependent pathways involving cytoskeleton remodeling and ECM deposition.
Jiaorong QU ; Xiaoyong XUE ; Zhixing WANG ; Zhi MA ; Kexin JIA ; Fanghong LI ; Yinhao ZHANG ; Ruiyu WU ; Fei ZHOU ; Piwen ZHAO ; Xiaojiaoyang LI
Chinese Journal of Natural Medicines (English Ed.) 2024;22(1):31-46
		                        		
		                        			
		                        			Liver fibrosis is a dynamic wound-healing response characterized by the agglutination of the extracellular matrix (ECM). Si-Wu-Tang (SWT), a traditional Chinese medicine (TCM) formula, is known for treating gynecological diseases and liver fibrosis. Our previous studies demonstrated that long non-coding RNA H19 (H19) was markedly upregulated in fibrotic livers while its deficiency markedly reversed fibrogenesis. However, the mechanisms by which SWT influences H19 remain unclear. Thus, we established a bile duct ligation (BDL)-induced liver fibrosis model to evaluate the hepatoprotective effects of SWT on various cells in the liver. Our results showed that SWT markedly improved ECM deposition and bile duct reactions in the liver. Notably, SWT relieved liver fibrosis by regulating the transcription of genes involved in the cytoskeleton remodeling, primarily in hepatic stellate cells (HSCs), and influencing cytoskeleton-related angiogenesis and hepatocellular injury. This modulation collectively led to reduced ECM deposition. Through extensive bioinformatics analyses, we determined that H19 acted as a miRNA sponge and mainly inhibited miR-200, miR-211, and let7b, thereby regulating the above cellular regulatory pathways. Meanwhile, SWT reversed H19-related miRNAs and signaling pathways, diminishing ECM deposition and liver fibrosis. However, these protective effects of SWT were diminished with the overexpression of H19 in vivo. In conclusion, our study elucidates the underlying mechanisms of SWT from the perspective of H19-related signal networks and proposes a potential SWT-based therapeutic strategy for the treatment of liver fibrosis.
		                        		
		                        		
		                        		
		                        			Humans
		                        			;
		                        		
		                        			RNA, Long Noncoding/genetics*
		                        			;
		                        		
		                        			Liver Cirrhosis/genetics*
		                        			;
		                        		
		                        			Liver/metabolism*
		                        			;
		                        		
		                        			Hepatic Stellate Cells/pathology*
		                        			;
		                        		
		                        			MicroRNAs/metabolism*
		                        			;
		                        		
		                        			Extracellular Matrix/metabolism*
		                        			;
		                        		
		                        			Drugs, Chinese Herbal
		                        			
		                        		
		                        	
3.Inhibitory effect and molecular mechanism of sinomenine on human hepatocellular carcinoma HepG2 and SK-HEP-1 cells.
Ying-Ying TIAN ; Bei-Bei MA ; Xin-Yue ZHAO ; Chuang LIU ; Yi-Lin LI ; Shang-Yue YU ; Shi-Qiu TIAN ; Hai-Luan PEI ; Ying-Nan LYU ; Ze-Ping ZUO ; Zhi-Bin WANG
China Journal of Chinese Materia Medica 2023;48(17):4702-4710
		                        		
		                        			
		                        			This study aimed to investigate the effect and molecular mechanism of sinomenine on proliferation, apoptosis, metastasis, and combination with inhibitors in human hepatocellular carcinoma HepG2 cells and SK-HEP-1 cells. The effect of sinomenine on the growth ability of HepG2 and SK-HEP-1 cells were investigated by CCK-8 assay, colony formation assay, and BeyoClick~(TM) EdU-488 staining. The effect of sinomenine on DNA damage was detected by immunofluorescence assay, and the effect of sinomenine on apoptosis of human hepatocellular carcinoma cells was clarified by Hoechst 33258 staining and CellEvent~(TM) Cystein-3/7Green ReadyProbes~(TM) reagent assay. Cell invasion assay and 3D tumor cell spheroid invasion assay were performed to investigate the effect of sinomenine on the invasion ability of human hepatocellular carcinoma cells in vitro. The effect of sinomenine on the regulation of protein expression related to the protein kinase B(Akt)/mammalian target of rapamycin(mTOR)/signal transducer and activator of transcription 3(STAT3) signaling pathway in HepG2 and SK-HEP-1 cells was examined by Western blot. Molecular docking was used to evaluate the strength of affinity of sinomenine to the target cysteinyl aspartate specific proteinase-3(caspase-3) and STAT3, and combined with CCK-8 assay to detect the changes in cell viability after combination with STAT3 inhibitor JSI-124 in combination with CCK-8 assay. The results showed that sinomenine could significantly reduce the cell viability of human hepatocellular carcinoma cells in a concentration-and time-dependent manner, significantly inhibit the clonogenic ability of human hepatocellular carcinoma cells, and weaken the invasive ability of human hepatocellular carcinoma cells in vitro. In addition, sinomenine could up-regulate the cleaved level of poly ADP-ribose polymerase(PARP), a marker of apoptosis, and down-regulate the protein levels of p-Akt, p-mTOR, and p-STAT3 in human hepatocellular carcinoma cells. Molecular docking results showed that sinomenine had good affinity with the targets caspase-3 and STAT3, and the sensitivity of sinomenine to hepatocellular carcinoma cells was diminished after STAT3 was inhibited. Therefore, sinomenine can inhibit the proliferation and invasion of human hepatocellular carcinoma cells and induce apoptosis, and the mechanism may be attributed to the activation of caspase-3 signaling and inhibition of the Akt/mTOR/STAT3 pathway. This study can provide a new reference for the in-depth research and clinical application of sinomenine and is of great significance to further promote the scientific development and utilization of sinomenine.
		                        		
		                        		
		                        		
		                        			Humans
		                        			;
		                        		
		                        			Carcinoma, Hepatocellular/genetics*
		                        			;
		                        		
		                        			Proto-Oncogene Proteins c-akt/metabolism*
		                        			;
		                        		
		                        			Caspase 3/metabolism*
		                        			;
		                        		
		                        			Liver Neoplasms/genetics*
		                        			;
		                        		
		                        			Molecular Docking Simulation
		                        			;
		                        		
		                        			Sincalide/pharmacology*
		                        			;
		                        		
		                        			Cell Line, Tumor
		                        			;
		                        		
		                        			Cell Proliferation
		                        			;
		                        		
		                        			Hep G2 Cells
		                        			;
		                        		
		                        			TOR Serine-Threonine Kinases/metabolism*
		                        			;
		                        		
		                        			Apoptosis
		                        			
		                        		
		                        	
4.Zuogui Jiangtang Qinggan Formula improves glucolipid metabolism in type 2 diabetes mellitus complicated with non-alcoholic fatty liver disease by regulating FoxO1/MTP/APOB signaling pathway.
Yi-Xin XIANG ; Ya-Lan HUANG ; Min ZHOU ; Jun-Ju ZOU ; Xiu LIU ; Zi-Yu LIU ; Fan XIAO ; Rong YU ; Qin XIANG
China Journal of Chinese Materia Medica 2023;48(16):4438-4445
		                        		
		                        			
		                        			This study aimed to investigate the effect and mechanism of Zuogui Jiangtang Qinggan Formula(ZGJTQG) on the glucolipid metabolism of type 2 diabetes mellitus(T2DM) complicated with non-alcoholic fatty liver disease(NAFLD). NAFLD was induced by a high-fat diet(HFD) in MKR mice(T2DM mice), and a model of T2DM combined with NAFLD was established. Forty mice were randomly divided into a model group, a metformin group(0.067 g·kg~(-1)), and high-and low-dose ZGJTQG groups(29.64 and 14.82 g·kg~(-1)), with 10 mice in each group. Ten FVB mice of the same age were assigned to the normal group. Serum and liver tissue specimens were collected from mice except for those in the normal and model groups after four weeks of drug administration by gavage, and fasting blood glucose(FBG) and fasting insulin(FINS) levels were measured. The levels of total cholesterol(TC), triglyceride(TG), and low-density lipoprotein(LDL) were detected by the single reagent GPO-PAP method. Very low-density lipoprotein(VLDL) was detected by enzyme-linked immunosorbent assay(ELISA). Alanine aminotransferase(ALT) and aspartate ami-notransferase(AST) were determined by the Reitman-Frankel assay. The pathological changes in the liver were observed by hematoxylin-eosin(HE) staining and oil red O staining. Real-time fluorescence-based quantitative polymerase chain reaction(real-time PCR) and Western blot were adopted to detect the mRNA and protein expression of forkhead transcription factor O1(FoxO1), microsomal triglyceride transfer protein(MTP), and apolipoprotein B(APOB) in the liver. The results showed that high-dose ZGJTQG could signi-ficantly reduce the FBG and FINS levels(P<0.05, P<0.01), improve glucose tolerance and insulin resistance(P<0.05, P<0.01), alleviate the liver damage caused by HFD which was reflected in improving liver steatosis, and reduce the serum levels of TC, TG, LDL, VLDL, ALT, and AST(P<0.05, P<0.01) in T2DM mice combined with NAFLD. The findings also revealed that the mRNA and protein expression of FoxO1, MTP, and APOB in the liver was significantly down-regulated after the intervention of high-dose ZGJTQG(P<0.05, P<0.01). The above study showed that ZGJTQG could effectively improve glucolipid metabolism in T2DM combined with NAFLD, and the mechanism was closely related to the regulation of the FoxO1/MTP/APOB signaling pathway.
		                        		
		                        		
		                        		
		                        			Mice
		                        			;
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Non-alcoholic Fatty Liver Disease/metabolism*
		                        			;
		                        		
		                        			Diabetes Mellitus, Type 2/metabolism*
		                        			;
		                        		
		                        			Liver
		                        			;
		                        		
		                        			Lipoproteins, LDL/metabolism*
		                        			;
		                        		
		                        			Signal Transduction
		                        			;
		                        		
		                        			Diet, High-Fat/adverse effects*
		                        			;
		                        		
		                        			RNA, Messenger/metabolism*
		                        			
		                        		
		                        	
5.Morin induces autophagy and apoptosis in hepatocellular carcinoma cells through Akt/mTOR/STAT3 pathway.
Xin-Yue ZHAO ; Ying-Ying TIAN ; Chuang LIU ; Yi-Lin LI ; Ying-Nan LYU ; Shang-Yue YU ; Shi-Qiu TIAN ; Hai-Luan PEI ; Ze-Ping ZUO ; Zhi-Bin WANG
China Journal of Chinese Materia Medica 2023;48(16):4475-4482
		                        		
		                        			
		                        			This study investigated the effect and mechanism of morin in inducing autophagy and apoptosis in hepatocellular carcinoma cells through the protein kinase B(Akt)/mammalian target of rapamycin(mTOR)/signal transducer and activator of transcription protein 3(STAT3) pathway. Human hepatocellular carcinoma SK-HEP-1 cells were stimulated with different concentrations of morin(0, 50, 100, 125, 200, and 250 μmol·L~(-1)). The effect of morin on the viability of SK-HEP-1 cells was detected by Cell Counting Kit-8(CCK-8). The effect of morin on the proliferation and apoptosis of SK-HEP-1 cells was investigated using colony formation assay, flow cytometry, and BeyoClick~(TM) EdU-488 with different concentrations of morin(0, 125, and 250 μmol·L~(-1)). The changes in the autophagy level of cells treated with morin were examined by transmission electron microscopy and autophagy inhibitors. The impact of morin on the expression levels of proteins related to the Akt/mTOR/STAT3 pathway was verified by Western blot. Compared with the control group, the morin groups showed decreased viability of SK-HEP-1 cells in a time-and concentration-dependent manner, increased number of apoptotic cells, up-regulated expression level of apoptosis marker PARP, up-regulated phosphorylation level of apoptosis-regulating protein H2AX, decreased number of positive cells and the colony formation rate, an upward trend of expression levels of autophagy-related proteins LC3-Ⅱ, Atg5, and Atg7, and decreased phosphorylation levels of Akt, mTOR, and STAT3. These results suggest that morin can promote apoptosis, inhibit proliferation, and induce autophagy in hepatocellular carcinoma cells, and its mechanism of action may be related to the Akt/mTOR/STAT3 pathway.
		                        		
		                        		
		                        		
		                        			Humans
		                        			;
		                        		
		                        			Proto-Oncogene Proteins c-akt/metabolism*
		                        			;
		                        		
		                        			Carcinoma, Hepatocellular/pathology*
		                        			;
		                        		
		                        			Liver Neoplasms/pathology*
		                        			;
		                        		
		                        			TOR Serine-Threonine Kinases/metabolism*
		                        			;
		                        		
		                        			Apoptosis
		                        			;
		                        		
		                        			Autophagy
		                        			;
		                        		
		                        			Cell Proliferation
		                        			;
		                        		
		                        			Cell Line, Tumor
		                        			;
		                        		
		                        			STAT3 Transcription Factor/metabolism*
		                        			
		                        		
		                        	
6.Diosgenin alleviates NAFLD induced by a high-fat diet in rats via mTOR/SREBP-1c/HSP60/MCAD/SCAD signaling pathway.
Su-Wen CHEN ; Guo-Liang YIN ; Chao-Yuan SONG ; De-Cheng MENG ; Wen-Fei YU ; Xin ZHANG ; Ya-Nan FENG ; Peng-Peng LIANG ; Feng-Xia ZHANG
China Journal of Chinese Materia Medica 2023;48(19):5304-5314
		                        		
		                        			
		                        			This study aims to observe the effects of diosgenin on the expression of mammalian target of rapamycin(mTOR), sterol regulatory element-binding protein-1c(SREBP-1c), heat shock protein 60(HSP60), medium-chain acyl-CoA dehydrogenase(MCAD), and short-chain acyl-CoA dehydrogenase(SCAD) in the liver tissue of the rat model of non-alcoholic fatty liver disease(NAFLD) and explore the mechanism of diosgenin in alleviating NAFLD. Forty male SD rats were randomized into five groups: a control group, a model group, low-(150 mg·kg~(-1)·d~(-1)) and high-dose(300 mg·kg~(-1)·d~(-1)) diosgenin groups, and a simvastatin(4 mg·kg~(-1)·d~(-1)) group. The rats in the control group were fed with a normal diet, while those in the other four groups were fed with a high-fat diet. After feeding for 8 weeks, the body weight of rats in the high-fat diet groups increased significantly. After that, the rats were administrated with the corresponding dose of diosgenin or simvastatin by gavage every day for 8 weeks. The levels of triglyceride(TG), total cholesterol(TC), alanine transaminase(ALT), and aspartate transaminase(AST) in the serum were determined by the biochemical method. The levels of TG and TC in the liver were measured by the enzyme method. Oil-red O staining was employed to detect the lipid accumulation, and hematoxylin-eosin(HE) staining to detect the pathological changes in the liver tissue. The mRNA and protein levels of mTOR, SREBP-1c, HSP60, MCAD, and SCAD in the liver tissue of rats were determined by real-time fluorescence quantitative polymerase chain reaction(RT-qPCR) and Western blot, respectively. Compared with the control group, the model group showed increased body weight, food uptake, liver index, TG, TC, ALT, and AST levels in the serum, TG and TC levels in the liver, lipid deposition in the liver, obvious hepatic steatosis, up-regulated mRNA and protein expression levels of mTOR and SREBP-1c, and down-regulated mRNA and protein expression levels of HSP60, MCAD, and SCAD. Compared with the model group, the rats in each treatment group showed obviously decreased body weight, food uptake, liver index, TG, TC, ALT, and AST levels in the serum, TG and TC levels in the liver, lessened lipid deposition in the liver, ameliorated hepatic steatosis, down-regulated mRNA and protein le-vels of mTOR and SREBP-1c, and up-regulated mRNA and protein levels of HSP60, MCAD, and SCAD. The high-dose diosgenin outperformed the low-dose diosgenin and simvastatin. Diosgenin may prevent and treat NAFLD by inhibiting the expression of mTOR and SREBP-1c and promoting the expression of HSP60, MCAD, and SCAD to reduce lipid synthesis, improving mitochondrial function, and promoting fatty acid β oxidation in the liver.
		                        		
		                        		
		                        		
		                        			Rats
		                        			;
		                        		
		                        			Male
		                        			;
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Non-alcoholic Fatty Liver Disease/genetics*
		                        			;
		                        		
		                        			Sterol Regulatory Element Binding Protein 1/metabolism*
		                        			;
		                        		
		                        			Diet, High-Fat/adverse effects*
		                        			;
		                        		
		                        			Diosgenin/metabolism*
		                        			;
		                        		
		                        			Chaperonin 60/therapeutic use*
		                        			;
		                        		
		                        			Rats, Sprague-Dawley
		                        			;
		                        		
		                        			Liver
		                        			;
		                        		
		                        			Signal Transduction
		                        			;
		                        		
		                        			TOR Serine-Threonine Kinases/metabolism*
		                        			;
		                        		
		                        			Triglycerides
		                        			;
		                        		
		                        			RNA, Messenger/metabolism*
		                        			;
		                        		
		                        			Simvastatin/therapeutic use*
		                        			;
		                        		
		                        			Body Weight
		                        			;
		                        		
		                        			Lipid Metabolism
		                        			;
		                        		
		                        			Mammals/metabolism*
		                        			
		                        		
		                        	
7.Targeting TRMT5 suppresses hepatocellular carcinoma progression via inhibiting the HIF-1α pathways.
Qiong ZHAO ; Luwen ZHANG ; Qiufen HE ; Hui CHANG ; Zhiqiang WANG ; Hongcui CAO ; Ying ZHOU ; Ruolang PAN ; Ye CHEN
Journal of Zhejiang University. Science. B 2023;24(1):50-63
		                        		
		                        			
		                        			Accumulating evidence has confirmed the links between transfer RNA (tRNA) modifications and tumor progression. The present study is the first to explore the role of tRNA methyltransferase 5 (TRMT5), which catalyzes the m1G37 modification of mitochondrial tRNAs in hepatocellular carcinoma (HCC) progression. Here, based on bioinformatics and clinical analyses, we identified that TRMT5 expression was upregulated in HCC, which correlated with poor prognosis. Silencing TRMT5 attenuated HCC proliferation and metastasis both in vivo and in vitro, which may be partially explained by declined extracellular acidification rate (ECAR) and oxygen consumption rate (OCR). Mechanistically, we discovered that knockdown of TRMT5 inactivated the hypoxia-inducible factor-1 (HIF-1) signaling pathway by preventing HIF-1α stability through the enhancement of cellular oxygen content. Moreover, our data indicated that inhibition of TRMT5 sensitized HCC to doxorubicin by adjusting HIF-1α. In conclusion, our study revealed that targeting TRMT5 could inhibit HCC progression and increase the susceptibility of tumor cells to chemotherapy drugs. Thus, TRMT5 might be a carcinogenesis candidate gene that could serve as a potential target for HCC therapy.
		                        		
		                        		
		                        		
		                        			Humans
		                        			;
		                        		
		                        			Carcinoma, Hepatocellular/pathology*
		                        			;
		                        		
		                        			Cell Hypoxia
		                        			;
		                        		
		                        			Cell Line, Tumor
		                        			;
		                        		
		                        			Gene Expression Regulation, Neoplastic
		                        			;
		                        		
		                        			Hypoxia-Inducible Factor 1, alpha Subunit/metabolism*
		                        			;
		                        		
		                        			Liver Neoplasms/pathology*
		                        			;
		                        		
		                        			Signal Transduction/genetics*
		                        			;
		                        		
		                        			tRNA Methyltransferases/metabolism*
		                        			
		                        		
		                        	
8.Lyciumbarbarum polysaccharides ameliorate canine acute liver injury by reducing oxidative stress, protecting mitochondrial function, and regulating metabolic pathways.
Jianjia HUANG ; Yuman BAI ; Wenting XIE ; Rongmei WANG ; Wenyue QIU ; Shuilian ZHOU ; Zhaoxin TANG ; Jianzhao LIAO ; Rongsheng SU
Journal of Zhejiang University. Science. B 2023;24(2):157-171
		                        		
		                        			
		                        			The development of acute liver injury can result in liver cirrhosis, liver failure, and even liver cancer, yet there is currently no effective therapy for it. The purpose of this study was to investigate the protective effect and therapeutic mechanism of Lyciumbarbarum polysaccharides (LBPs) on acute liver injury induced by carbon tetrachloride (CCl4). To create a model of acute liver injury, experimental canines received an intraperitoneal injection of 1 mL/kg of CCl4 solution. The experimental canines in the therapy group were then fed LBPs (20 mg/kg). CCl4-induced liver structural damage, excessive fibrosis, and reduced mitochondrial density were all improved by LBPs, according to microstructure data. By suppressing Kelch-like epichlorohydrin (ECH)-associated protein 1 (Keap1), promoting the production of sequestosome 1 (SQSTM1)/p62, nuclear factor erythroid 2-related factor 2 (Nrf2), and phase II detoxification genes and proteins downstream of Nrf2, and restoring the activity of anti-oxidant enzymes like catalase (CAT), LBPs can restore and increase the antioxidant capacity of liver. To lessen mitochondrial damage, LBPs can also enhance mitochondrial respiration, raise tissue adenosine triphosphate (ATP) levels, and reactivate the respiratory chain complexes I‒V. According to serum metabolomics, the therapeutic impact of LBPs on acute liver damage is accomplished mostly by controlling the pathways to lipid metabolism. 9-Hydroxyoctadecadienoic acid (9-HODE), lysophosphatidylcholine (LysoPC/LPC), and phosphatidylethanolamine (PE) may be potential indicators of acute liver injury. This study confirmed that LBPs, an effective hepatoprotective drug, may cure acute liver injury by lowering oxidative stress, repairing mitochondrial damage, and regulating metabolic pathways.
		                        		
		                        		
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Dogs
		                        			;
		                        		
		                        			Antioxidants/metabolism*
		                        			;
		                        		
		                        			Carbon Tetrachloride
		                        			;
		                        		
		                        			Chemical and Drug Induced Liver Injury/drug therapy*
		                        			;
		                        		
		                        			Kelch-Like ECH-Associated Protein 1/metabolism*
		                        			;
		                        		
		                        			Liver
		                        			;
		                        		
		                        			Metabolic Networks and Pathways
		                        			;
		                        		
		                        			Mitochondria/metabolism*
		                        			;
		                        		
		                        			NF-E2-Related Factor 2/metabolism*
		                        			;
		                        		
		                        			Oxidative Stress
		                        			;
		                        		
		                        			Polysaccharides/pharmacology*
		                        			;
		                        		
		                        			Lycium/chemistry*
		                        			
		                        		
		                        	
9.Vitamin D receptor (VDR) mediates the quiescence of activated hepatic stellate cells (aHSCs) by regulating M2 macrophage exosomal smooth muscle cell-associated protein 5 (SMAP-5).
Xuwentai LIU ; Yue WU ; Yanyi LI ; Kaiming LI ; Siyuan HOU ; Ming DING ; Jingmin TAN ; Zijing ZHU ; Yingqi TANG ; Yuming LIU ; Qianhui SUN ; Cong WANG ; Can ZHANG
Journal of Zhejiang University. Science. B 2023;24(3):248-261
		                        		
		                        			
		                        			An effective therapeutic regimen for hepatic fibrosis requires a deep understanding of the pathogenesis mechanism. Hepatic fibrosis is characterized by activated hepatic stellate cells (aHSCs) with an excessive production of extracellular matrix. Although promoted activation of HSCs by M2 macrophages has been demonstrated, the molecular mechanism involved remains ambiguous. Herein, we propose that the vitamin D receptor (VDR) involved in macrophage polarization may regulate the communication between macrophages and HSCs by changing the functions of exosomes. We confirm that activating the VDR can inhibit the effect of M2 macrophages on HSC activation. The exosomes derived from M2 macrophages can promote HSC activation, while stimulating VDR alters the protein profiles and reverses their roles in M2 macrophage exosomes. Smooth muscle cell-associated protein 5 (SMAP-5) was found to be the key effector protein in promoting HSC activation by regulating autophagy flux. Building on these results, we show that a combined treatment of a VDR agonist and a macrophage-targeted exosomal secretion inhibitor achieves an excellent anti-hepatic fibrosis effect. In this study, we aim to elucidate the association between VDR and macrophages in HSC activation. The results contribute to our understanding of the pathogenesis mechanism of hepatic fibrosis, and provide potential therapeutic targets for its treatment.
		                        		
		                        		
		                        		
		                        			Humans
		                        			;
		                        		
		                        			Hepatic Stellate Cells/pathology*
		                        			;
		                        		
		                        			Receptors, Calcitriol
		                        			;
		                        		
		                        			Liver Cirrhosis/pathology*
		                        			;
		                        		
		                        			Macrophages/metabolism*
		                        			
		                        		
		                        	
10.Huangqi Decoction, a compound Chinese herbal medicine, inhibits the proliferation and activation of hepatic stellate cells by regulating the long noncoding RNA-C18orf26-1/microRNA-663a/transforming growth factor-β axis.
Ben-Sheng DONG ; Fu-Qun LIU ; Wen-Na YANG ; Xiao-Dong LI ; Miao-Juan SHI ; Mao-Rong LI ; Xiu-Li YAN ; Hui ZHANG
Journal of Integrative Medicine 2023;21(1):47-61
		                        		
		                        			OBJECTIVE:
		                        			Huangqi Decoction (HQD), a classical traditional Chinese medicine formula, has been used as a valid treatment for alleviating liver fibrosis; however, the underlying molecular mechanism is still unknown. Although our previous studies showed that microRNA-663a (miR-663a) suppresses the proliferation and activation of hepatic stellate cells (HSCs) and the transforming growth factor-β/small mothers against decapentaplegic (TGF-β/Smad) pathway, whether long noncoding RNAs (lncRNAs) are involved in HSC activation via the miR-663a/TGF-β/Smad signaling pathway has not yet reported. The present study aimed to investigate the roles of lncRNA lnc-C18orf26-1 in the activation of HSCs and the mechanism by which HQD inhibits hepatic fibrosis.
		                        		
		                        			METHODS:
		                        			The expression levels of lnc-C18orf26-1, miR-663a and related genes were measured by quantitative reverse transcription-polymerase chain reaction. HSCs were transfected with the miR-663a mimic or inhibitor and lnc-C18orf26-1 small interfering RNAs. The water-soluble tetrazolium salt-1 assay was used to assess the proliferation rate of HSCs. Changes in lncRNA expression were evaluated in miR-663a-overexpressing HSCs by using microarray to identify miR-663a-regulated lncRNAs. RNA hybrid was used to predict the potential miR-663a binding sites on lncRNAs. Luciferase reporter assays further confirmed the interaction between miR-663a and the lncRNA. The expression levels of collagen α-2(I) chain (COL1A2), α-smooth muscle actin (α-SMA) and TGF-β/Smad signaling pathway-related proteins were determined using Western blotting.
		                        		
		                        			RESULTS:
		                        			Lnc-C18orf26-1 was upregulated in TGF-β1-activated HSCs and competitively bound to miR-663a. Knockdown of lnc-C18orf26-1 inhibited HSC proliferation and activation, downregulated TGF-β1-stimulated α-SMA and COL1A2 expression, and inhibited the TGF-β1/Smad signaling pathway. HQD suppressed the proliferation and activation of HSCs. HQD increased miR-663a expression and decreased lnc-C18orf26-1 expression in HSCs. Further studies showed that HQD inhibited the expression of COL1A2, α-SMA, TGF-β1, TGF-β type I receptor (TGF-βRI) and phosphorylated Smad2 (p-Smad2) in HSCs, and these effects were reversed by miR-663a inhibitor treatment.
		                        		
		                        			CONCLUSION
		                        			Our study identified lnc-C18orf26-1 and miR-663a as promising therapeutic targets for hepatic fibrosis. HQD inhibits HSC proliferation and activation at least partially by regulating the lnc-C18orf26-1/miR-663a/TGF-β1/TGF-βRI/p-Smad2 axis.
		                        		
		                        		
		                        		
		                        			Humans
		                        			;
		                        		
		                        			Transforming Growth Factor beta/pharmacology*
		                        			;
		                        		
		                        			Transforming Growth Factor beta1/metabolism*
		                        			;
		                        		
		                        			RNA, Long Noncoding/pharmacology*
		                        			;
		                        		
		                        			Drugs, Chinese Herbal/pharmacology*
		                        			;
		                        		
		                        			MicroRNAs/genetics*
		                        			;
		                        		
		                        			Hepatic Stellate Cells/pathology*
		                        			;
		                        		
		                        			Liver Cirrhosis/metabolism*
		                        			;
		                        		
		                        			Cell Proliferation
		                        			;
		                        		
		                        			Transforming Growth Factors/pharmacology*
		                        			
		                        		
		                        	
            
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