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Published in: Chinese Medicine 1/2022

Open Access 01-12-2022 | Research

Traditional Chinese medicine Lingguizhugan decoction ameliorate HFD-induced hepatic-lipid deposition in mice by inhibiting STING-mediated inflammation in macrophages

Authors: Lin Cao, Erjin Xu, Rendong Zheng, Zhili Zhangchen, Rongling Zhong, Fei Huang, Juan Ye, Hongping Sun, Yaofu Fan, Shaofeng Xie, Yu Chen, Yijiao Xu, Jing Cao, Wen Cao, Chao Liu

Published in: Chinese Medicine | Issue 1/2022

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Abstract

Background

Stimulator of IFN genes (STING) is highly expressed in the livers of non-alcoholic fatty liver disease (NAFLD) patients and high fat diet (HFD) induced NAFLD mice model. The STING signaling-mediated inflammation has been shown to play a critical role in metabolic disorders. Lingguizhugan decoction (LGZG), a Traditional Chinese herbal decoction, has been applied to treat metabolic disorders for many years. However, whether LGZG can alleviate the progression of NAFLD through inhibiting inflammation remains unclear. This study was to determine the role of STING-mediated inflammation in the HFD-induced hepatic-lipid deposition treated with LGZG.

Methods

The anti-inflammatory and anti-steatotic effects of LGZG in vivo were detected by H&E staining, immunofluorescence and immuno-chemistry. Mice bone-marrow-derived macrophages (BMDMs) and primary liver macrophages were treated with STING-specific agonist (DMXAA), LGZG and its critical components respectively. The treated culture supernatant of BMDMs and primary liver macrophages from each group was co-cultured with palmitic acid-treated mouse primary hepatocytes or mouse liver cell line AML-12 respectively to detect whether the activation of STING-mediated pathway is involved in the anti-steatotic effect of LGZG. The hepatocyte lipid deposition in vivo and in vitro were detected by oil red staining. Mitochondrial DNA release of mouse liver extracts were detected by real time PCR. The expression of proteins and inflammatory cytokines related to STING-TBK1-NF-κB pathway was detected by western blotting and ELISA.

Results

LGZG significantly ameliorated HFD induced hepatic steatosis, oxidative stress, hepatic mitochondrial damage and mitochondrial DNA release, which was correlated with reduction of the expression level of STING as well as the infiltration of STING-positive macrophages in the livers of HFD fed mice. The critical components of LGZG directly inhibited the activation of STING-TBK1-NF-κB pathway in liver macrophages induced by DMXAA, LPS, thereby reducing the release of IFNβ and TNFα. Co-incubating the culture supernatant of LGZG treated liver macrophages and PA-stimulated hepatocytes significantly inhibited the PA-induced lipid deposition.

Conclusion

This study demonstrates that LGZG can ameliorate HFD-induced hepatic-lipid deposition through inhibiting STING-TBK1-NF-κB pathway in liver macrophages, which provides novel insight for elucidating the molecular mechanism of LGZG alleviating HFD induced hepatic steatosis.
Literature
1.
go back to reference Huang TD, Behary J, Zekry A. Non-alcoholic fatty liver disease: a review of epidemiology, risk factors, diagnosis and management. Intern Med J. 2020;50(9):1038–47.CrossRef Huang TD, Behary J, Zekry A. Non-alcoholic fatty liver disease: a review of epidemiology, risk factors, diagnosis and management. Intern Med J. 2020;50(9):1038–47.CrossRef
2.
go back to reference Cotter TG, Rinella M. Nonalcoholic fatty liver disease 2020: the state of the disease. Gastroenterology. 2020;158(7):1851–64.CrossRef Cotter TG, Rinella M. Nonalcoholic fatty liver disease 2020: the state of the disease. Gastroenterology. 2020;158(7):1851–64.CrossRef
3.
go back to reference Gehrke N, Schattenberg JM. metabolic inflammation-a role for hepatic inflammatory pathways as drivers of comorbidities in nonalcoholic fatty liver disease? Gastroenterology. 2020;158(7):1929–47.CrossRef Gehrke N, Schattenberg JM. metabolic inflammation-a role for hepatic inflammatory pathways as drivers of comorbidities in nonalcoholic fatty liver disease? Gastroenterology. 2020;158(7):1929–47.CrossRef
4.
go back to reference Matulewicz N, Karczewska-Kupczewska M. Insulin resistance and chronic inflammation. Postepy Hig Med Dosw. 2016;70:1245–58. Matulewicz N, Karczewska-Kupczewska M. Insulin resistance and chronic inflammation. Postepy Hig Med Dosw. 2016;70:1245–58.
5.
go back to reference Shimobayashi M, Albert V, Woelnerhanssen B, Frei IC, Weissenberger D, Meyer-Gerspach AC, et al. Insulin resistance causes inflammation in adipose tissue. J Clin Investig. 2018;128(4):1538–50.CrossRef Shimobayashi M, Albert V, Woelnerhanssen B, Frei IC, Weissenberger D, Meyer-Gerspach AC, et al. Insulin resistance causes inflammation in adipose tissue. J Clin Investig. 2018;128(4):1538–50.CrossRef
6.
go back to reference He L, Liu X, Wang L, Yang Z. Thiazolidinediones for nonalcoholic steatohepatitis: a meta-analysis of randomized clinical trials. Medicine. 2016;95(42):e4947.CrossRef He L, Liu X, Wang L, Yang Z. Thiazolidinediones for nonalcoholic steatohepatitis: a meta-analysis of randomized clinical trials. Medicine. 2016;95(42):e4947.CrossRef
7.
go back to reference Chu JW, Abbasi F, Lamendola C, McLaughlin T, Reaven GM, Tsao PS. Effect of rosiglitazone treatment on circulating vascular and inflammatory markers in insulin-resistant subjects. Diab Vasc Dis Res. 2005;2(1):37–41.CrossRef Chu JW, Abbasi F, Lamendola C, McLaughlin T, Reaven GM, Tsao PS. Effect of rosiglitazone treatment on circulating vascular and inflammatory markers in insulin-resistant subjects. Diab Vasc Dis Res. 2005;2(1):37–41.CrossRef
8.
go back to reference Lan W, Wang Z, Liu J, Liu H. Methionyl-methionine exerts anti-inflammatory effects through the JAK2-STAT5-NF-κB and MAPK signaling pathways in bovine mammary epithelial cells. J Agric Food Chem. 2020;68(47):13742–50.CrossRef Lan W, Wang Z, Liu J, Liu H. Methionyl-methionine exerts anti-inflammatory effects through the JAK2-STAT5-NF-κB and MAPK signaling pathways in bovine mammary epithelial cells. J Agric Food Chem. 2020;68(47):13742–50.CrossRef
9.
go back to reference Barber GN. STING: infection, inflammation and cancer. Nat Rev Immunol. 2015;15(12):760–70.CrossRef Barber GN. STING: infection, inflammation and cancer. Nat Rev Immunol. 2015;15(12):760–70.CrossRef
10.
go back to reference Zhang X, Wu J, Liu Q, Li X, Li S, Chen J, et al. mtDNA-STING pathway promotes necroptosis-dependent enterocyte injury in intestinal ischemia reperfusion. Cell Death Dis. 2020;11(12):1050.CrossRef Zhang X, Wu J, Liu Q, Li X, Li S, Chen J, et al. mtDNA-STING pathway promotes necroptosis-dependent enterocyte injury in intestinal ischemia reperfusion. Cell Death Dis. 2020;11(12):1050.CrossRef
11.
go back to reference Hu HQ, Qiao JT, Liu FQ, Wang JB, Sha S, He Q, et al. The STING-IRF3 pathway is involved in lipotoxic injury of pancreatic β cells in type 2 diabetes. Mol Cell Endocrinol. 2020;518:110890.CrossRef Hu HQ, Qiao JT, Liu FQ, Wang JB, Sha S, He Q, et al. The STING-IRF3 pathway is involved in lipotoxic injury of pancreatic β cells in type 2 diabetes. Mol Cell Endocrinol. 2020;518:110890.CrossRef
12.
go back to reference Bai J, Liu F. The cGAS-cGAMP-STING pathway: a molecular link between immunity and metabolism. Diabetes. 2019;68(6):1099–108.CrossRef Bai J, Liu F. The cGAS-cGAMP-STING pathway: a molecular link between immunity and metabolism. Diabetes. 2019;68(6):1099–108.CrossRef
13.
go back to reference Luo X, Li H, Ma L, Zhou J, Guo X, Woo S-L, et al. Expression of STING is increased in liver tissues from patients with NAFLD and promotes macrophage-mediated hepatic inflammation and fibrosis in mice. Gastroenterology. 2018;155(6):1971–84.CrossRef Luo X, Li H, Ma L, Zhou J, Guo X, Woo S-L, et al. Expression of STING is increased in liver tissues from patients with NAFLD and promotes macrophage-mediated hepatic inflammation and fibrosis in mice. Gastroenterology. 2018;155(6):1971–84.CrossRef
14.
go back to reference Yu Y, Liu Y, An W, Song J, Zhang Y, Zhao X. STING-mediated inflammation in Kupffer cells contributes to progression of nonalcoholic steatohepatitis. J Clin Investig. 2019;129(2):546–55.CrossRef Yu Y, Liu Y, An W, Song J, Zhang Y, Zhao X. STING-mediated inflammation in Kupffer cells contributes to progression of nonalcoholic steatohepatitis. J Clin Investig. 2019;129(2):546–55.CrossRef
15.
go back to reference Xu J, Wang R, You S, Zhang L, Zheng P, Ji G, et al. Traditional Chinese medicine Lingguizhugan decoction treating non-alcoholic fatty liver disease with spleen-yang deficiency pattern: Study protocol for a multicenter randomized controlled trial. Trials. 2020;21(1):512.CrossRef Xu J, Wang R, You S, Zhang L, Zheng P, Ji G, et al. Traditional Chinese medicine Lingguizhugan decoction treating non-alcoholic fatty liver disease with spleen-yang deficiency pattern: Study protocol for a multicenter randomized controlled trial. Trials. 2020;21(1):512.CrossRef
16.
go back to reference Zhu M, Hao S, Liu T, Yang L, Zheng P, Zhang L, et al. Lingguizhugan decoction improves non-alcoholic fatty liver disease by altering insulin resistance and lipid metabolism related genes: a whole trancriptome study by RNA-Seq. Oncotarget. 2017;8(47):82621–31.CrossRef Zhu M, Hao S, Liu T, Yang L, Zheng P, Zhang L, et al. Lingguizhugan decoction improves non-alcoholic fatty liver disease by altering insulin resistance and lipid metabolism related genes: a whole trancriptome study by RNA-Seq. Oncotarget. 2017;8(47):82621–31.CrossRef
17.
go back to reference Yang L, Lin W, Nugent CA, Hao S, Song H, Liu T, et al. Lingguizhugan decoction protects against high-fat-diet-induced nonalcoholic fatty liver disease by alleviating oxidative stress and activating cholesterol secretion. Int J Genomics. 2017;2017(9):1–12.CrossRef Yang L, Lin W, Nugent CA, Hao S, Song H, Liu T, et al. Lingguizhugan decoction protects against high-fat-diet-induced nonalcoholic fatty liver disease by alleviating oxidative stress and activating cholesterol secretion. Int J Genomics. 2017;2017(9):1–12.CrossRef
18.
go back to reference Liu T, Yang LL, Zou L, Li DF, Wen HZ, Zheng PY, et al. Chinese medicine formula Lingguizhugan decoction improves beta-oxidation and metabolism of fatty acid in high-fat-diet-induced rat model of fatty liver disease. Evid Based Complement Altern Med. 2013;2013:429738. Liu T, Yang LL, Zou L, Li DF, Wen HZ, Zheng PY, et al. Chinese medicine formula Lingguizhugan decoction improves beta-oxidation and metabolism of fatty acid in high-fat-diet-induced rat model of fatty liver disease. Evid Based Complement Altern Med. 2013;2013:429738.
19.
go back to reference Xi F, Sang F, Zhou C, Ling Y. Protective effects of Lingguizhugan decoction on amyloid-beta peptide (25–35)-induced cell injury: anti-inflammatory effects. Neural Regen Res. 2012;7(36):2867–73.PubMedPubMedCentral Xi F, Sang F, Zhou C, Ling Y. Protective effects of Lingguizhugan decoction on amyloid-beta peptide (25–35)-induced cell injury: anti-inflammatory effects. Neural Regen Res. 2012;7(36):2867–73.PubMedPubMedCentral
20.
go back to reference Hua D, Yang J, Meng Q, Ling Y, Wei Q, Wang Z, et al. Soufeng sanjie formula alleviates collagen-induced arthritis in mice by inhibiting Th17 cell differentiation. Chin Med. 2021;16(1):39.CrossRef Hua D, Yang J, Meng Q, Ling Y, Wei Q, Wang Z, et al. Soufeng sanjie formula alleviates collagen-induced arthritis in mice by inhibiting Th17 cell differentiation. Chin Med. 2021;16(1):39.CrossRef
21.
go back to reference Bai J, Cervantes C, Liu J, He S, Zhou H, Zhang B, et al. DsbA-L prevents obesity-induced inflammation and insulin resistance by suppressing the mtDNA release-activated cGAS-cGAMP-STING pathway. Proc Natl Acad Sci USA. 2017;114(46):12196–201.CrossRef Bai J, Cervantes C, Liu J, He S, Zhou H, Zhang B, et al. DsbA-L prevents obesity-induced inflammation and insulin resistance by suppressing the mtDNA release-activated cGAS-cGAMP-STING pathway. Proc Natl Acad Sci USA. 2017;114(46):12196–201.CrossRef
22.
go back to reference Xu H, Li H, Woo SL, Kim SM, Shende VR, Neuendorff N, et al. Myeloid cell-specific disruption of Period1 and Period2 exacerbates diet-induced inflammation and insulin resistance. J Biol Chem. 2014;289(23):16374–88.CrossRef Xu H, Li H, Woo SL, Kim SM, Shende VR, Neuendorff N, et al. Myeloid cell-specific disruption of Period1 and Period2 exacerbates diet-induced inflammation and insulin resistance. J Biol Chem. 2014;289(23):16374–88.CrossRef
23.
go back to reference Charni-Natan M, Goldstein I. Protocol for primary mouse hepatocyte isolation. STAR protocols. 2020;1(2):100086.CrossRef Charni-Natan M, Goldstein I. Protocol for primary mouse hepatocyte isolation. STAR protocols. 2020;1(2):100086.CrossRef
24.
go back to reference Barbosa ML, de Meneses AM, de Aguiar RPS, de Castro e Sousa JM, de Carvalho Melo Cavalcante AA, Maluf SW. Oxidative stress, antioxidant defense and depressive disorders: a systematic review of biochemical and molecular markers. Neurol Psychiatry Brain Res. 2020;36:65–72.CrossRef Barbosa ML, de Meneses AM, de Aguiar RPS, de Castro e Sousa JM, de Carvalho Melo Cavalcante AA, Maluf SW. Oxidative stress, antioxidant defense and depressive disorders: a systematic review of biochemical and molecular markers. Neurol Psychiatry Brain Res. 2020;36:65–72.CrossRef
25.
go back to reference Rose S, Melnyk S, Pavliv O, Bai S, Nick TG, Frye RE, et al. Evidence of oxidative damage and inflammation associated with low glutathione redox status in the autism brain. Transl Psychiatry. 2012;2(7):e134.CrossRef Rose S, Melnyk S, Pavliv O, Bai S, Nick TG, Frye RE, et al. Evidence of oxidative damage and inflammation associated with low glutathione redox status in the autism brain. Transl Psychiatry. 2012;2(7):e134.CrossRef
26.
go back to reference Maher JJ. Macrophages steal STING from the infectious disease playbook to promote nonalcoholic fatty liver disease. Gastroenterology. 2018;155(6):1687–8.CrossRef Maher JJ. Macrophages steal STING from the infectious disease playbook to promote nonalcoholic fatty liver disease. Gastroenterology. 2018;155(6):1687–8.CrossRef
27.
go back to reference Wang X, Rao H, Zhao J, Wee A, Li X, Fei R, et al. STING expression in monocyte-derived macrophages is associated with the progression of liver inflammation and fibrosis in patients with nonalcoholic fatty liver disease. Lab Invest. 2020;100(4):542–52.CrossRef Wang X, Rao H, Zhao J, Wee A, Li X, Fei R, et al. STING expression in monocyte-derived macrophages is associated with the progression of liver inflammation and fibrosis in patients with nonalcoholic fatty liver disease. Lab Invest. 2020;100(4):542–52.CrossRef
28.
go back to reference Ahn J, Barber GN. STING signaling and host defense against microbial infection. Exp Mol Med. 2019;51(12):1–10.CrossRef Ahn J, Barber GN. STING signaling and host defense against microbial infection. Exp Mol Med. 2019;51(12):1–10.CrossRef
29.
go back to reference Downey CM, Aghaei M, Schwendener RA, Jirik FR. DMXAA causes tumor site-specific vascular disruption in murine non-small cell lung cancer, and like the endogenous non-canonical cyclic dinucleotide STING agonist, 2’3’-cGAMP, induces M2 macrophage repolarization. PloS ONE. 2014;9(6):e99988.CrossRef Downey CM, Aghaei M, Schwendener RA, Jirik FR. DMXAA causes tumor site-specific vascular disruption in murine non-small cell lung cancer, and like the endogenous non-canonical cyclic dinucleotide STING agonist, 2’3’-cGAMP, induces M2 macrophage repolarization. PloS ONE. 2014;9(6):e99988.CrossRef
30.
go back to reference Sun J-p, Shi L, Wang F, Qin J, Ke B. Modified Linggui Zhugan Decoction (加味苓桂术甘汤) Ameliorates Glycolipid Metabolism and Inflammation via PI3K-Akt/mTOR-S6K1/AMPK-PGC-1 α Signaling Pathways in Obese Type 2 Diabetic Rats. Chinese Journal of Integrative Medicine. 2020. Epub ahead of print. Sun J-p, Shi L, Wang F, Qin J, Ke B. Modified Linggui Zhugan Decoction (加味苓桂术甘汤) Ameliorates Glycolipid Metabolism and Inflammation via PI3K-Akt/mTOR-S6K1/AMPK-PGC-1 α Signaling Pathways in Obese Type 2 Diabetic Rats. Chinese Journal of Integrative Medicine. 2020. Epub ahead of print.
31.
go back to reference Tosello-Trampont AC, Landes SG, Nguyen V, Novobrantseva TI, Hahn YS. Kuppfer cells trigger nonalcoholic steatohepatitis development in diet-induced mouse model through tumor necrosis factor-α production. J Biol Chem. 2012;287(48):40161–72.CrossRef Tosello-Trampont AC, Landes SG, Nguyen V, Novobrantseva TI, Hahn YS. Kuppfer cells trigger nonalcoholic steatohepatitis development in diet-induced mouse model through tumor necrosis factor-α production. J Biol Chem. 2012;287(48):40161–72.CrossRef
32.
go back to reference Guo L, Ma R, Sun H, Raza A, Tang J, Li Z. Anti-inflammatory activities and related mechanism of polysaccharides isolated from Sargentodoxa cuneata. Chem Biodivers. 2018;15(11):e1800343.CrossRef Guo L, Ma R, Sun H, Raza A, Tang J, Li Z. Anti-inflammatory activities and related mechanism of polysaccharides isolated from Sargentodoxa cuneata. Chem Biodivers. 2018;15(11):e1800343.CrossRef
33.
go back to reference Peng Y, Zhuang J, Ying G, Zeng H, Zhou H, Cao Y, et al. Stimulator of IFN genes mediates neuroinflammatory injury by suppressing AMPK signal in experimental subarachnoid hemorrhage. J Neuroinflamm. 2020;17(1):165.CrossRef Peng Y, Zhuang J, Ying G, Zeng H, Zhou H, Cao Y, et al. Stimulator of IFN genes mediates neuroinflammatory injury by suppressing AMPK signal in experimental subarachnoid hemorrhage. J Neuroinflamm. 2020;17(1):165.CrossRef
34.
go back to reference Mao Y, Luo W, Zhang L, Wu W, Yuan L, Xu H, et al. STING-IRF3 triggers endothelial inflammation in response to free fatty acid-induced mitochondrial damage in diet-induced obesity. Arterioscler Thromb Vasc Biol. 2017;37(5):920–9.CrossRef Mao Y, Luo W, Zhang L, Wu W, Yuan L, Xu H, et al. STING-IRF3 triggers endothelial inflammation in response to free fatty acid-induced mitochondrial damage in diet-induced obesity. Arterioscler Thromb Vasc Biol. 2017;37(5):920–9.CrossRef
Metadata
Title
Traditional Chinese medicine Lingguizhugan decoction ameliorate HFD-induced hepatic-lipid deposition in mice by inhibiting STING-mediated inflammation in macrophages
Authors
Lin Cao
Erjin Xu
Rendong Zheng
Zhili Zhangchen
Rongling Zhong
Fei Huang
Juan Ye
Hongping Sun
Yaofu Fan
Shaofeng Xie
Yu Chen
Yijiao Xu
Jing Cao
Wen Cao
Chao Liu
Publication date
01-12-2022
Publisher
BioMed Central
Published in
Chinese Medicine / Issue 1/2022
Electronic ISSN: 1749-8546
DOI
https://doi.org/10.1186/s13020-021-00559-3

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