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Erschienen in: Inflammation 5/2017

19.05.2017 | ORIGINAL ARTICLE

Salidroside Attenuates LPS-Induced Acute Lung Injury in Rats

verfasst von: Liu Jingyan, Guo Yujuan, Yang Yiming, Zhu Lingpeng, Yan Tianhua, Miao Mingxing

Erschienen in: Inflammation | Ausgabe 5/2017

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Abstract

The purpose of the present study was to investigate the effects of salidroside (Sal) on lung injury in lipopolysaccharide (LPS)-induced endotoxemic in vitro and in vivo. SD rats were randomly divided into five groups: control group, LPS group (15 mg kg−1), LPS plus dexamethasone (2 mg kg−1), and LPS plus Sal groups with different Sal doses (20 mg kg−1, 40 mg kg−1). Wet-to-dry weight (W/D) ratio was performed. Hematoxylin–eosin (HE) staining of lung was performed. Lung level of myeloperoxidase (MPO) was measured. Serum levels of the activities of the anti-oxidant superoxide dismutase (SOD), glutathione peroxidase (GSH-px), glutathione (GSH), tumor necrosis factor-α (TNF-α), interleukin-6 (IL-6), and interleukin-1β (IL-1β) were measured. Caveolin-1 and TLR/NF-κB pathway proteins were detected by Western blot. In vitro, we evaluated the protective effect of Sal on A549 cell line induced by LPS. The activities of the antioxidant SOD, CAT, GSH and GPX, TNF-α, IL-6, and IL-1β in cellular supernatant were measured. Caveolin-1 and TLR/NF-κB pathway was examined by Western blot. As a result, Sal significantly attenuated the above indices. In addition, Sal exerts pronounced protective effects in rats subjected to LPS possibly through inhibiting the caveolin-1 and TLR/NF-κB pathway in vivo. Our results indicated that Sal could be a potential therapeutic agent for the treatment of lung injury disease.
Literatur
1.
Zurück zum Zitat Aggarwal, N.R., L.S. King, and F.R. D'Alessio. 2014. Diverse macrophage populations mediate acute lung inflammation and resolution. American Journal of Physiology. Lung Cellular and Molecular Physiology 306 (8): L709–L725.CrossRefPubMedPubMedCentral Aggarwal, N.R., L.S. King, and F.R. D'Alessio. 2014. Diverse macrophage populations mediate acute lung inflammation and resolution. American Journal of Physiology. Lung Cellular and Molecular Physiology 306 (8): L709–L725.CrossRefPubMedPubMedCentral
2.
Zurück zum Zitat Ware, L.B., and M.A. Matthay. 2000. The acute respiratory distress syndrome. The New England Journal of Medicine 342 (18): 1334–1349.CrossRefPubMed Ware, L.B., and M.A. Matthay. 2000. The acute respiratory distress syndrome. The New England Journal of Medicine 342 (18): 1334–1349.CrossRefPubMed
3.
Zurück zum Zitat Zemans, R.L., S.P. Colgan, and G.P. Downey. 2009. Transepithelial migration of neutrophils: mechanisms and implications for acute lung injury. American Journal of Respiratory Cell and Molecular Biology 40: 519–535.CrossRefPubMed Zemans, R.L., S.P. Colgan, and G.P. Downey. 2009. Transepithelial migration of neutrophils: mechanisms and implications for acute lung injury. American Journal of Respiratory Cell and Molecular Biology 40: 519–535.CrossRefPubMed
4.
Zurück zum Zitat Newman, J.W., C. Morisseau, and B.D. Hammock. 2005. Epoxide hydrolases: Their roles and interactions with lipid metabolism. Progress in Lipid Research 44: 1–51.CrossRefPubMed Newman, J.W., C. Morisseau, and B.D. Hammock. 2005. Epoxide hydrolases: Their roles and interactions with lipid metabolism. Progress in Lipid Research 44: 1–51.CrossRefPubMed
5.
Zurück zum Zitat Ludwig, A., Nguyen, T.H., Leong, D., Ravi, L.I., Huan, T.B., Sandin, S., Sugrue, R.J. 2017. Caveolae provide a specialized membrane environment for respiratory syncytial virus assembly. J Cell Sci (in press). Ludwig, A., Nguyen, T.H., Leong, D., Ravi, L.I., Huan, T.B., Sandin, S., Sugrue, R.J. 2017. Caveolae provide a specialized membrane environment for respiratory syncytial virus assembly. J Cell Sci (in press).
6.
Zurück zum Zitat Busija, A.R., Patel, H.H., Insel, P.A. 2017. Hugh Davson distinguished lectureship article caveolins and cavins in the trafficking, maturation, and degradation of caveolae: implications for cell physiology. Am J Physiol Cell Physiol. 25:ajpcell.00355.2016. Busija, A.R., Patel, H.H., Insel, P.A. 2017. Hugh Davson distinguished lectureship article caveolins and cavins in the trafficking, maturation, and degradation of caveolae: implications for cell physiology. Am J Physiol Cell Physiol. 25:ajpcell.00355.2016.
7.
Zurück zum Zitat Charles, S., V. Raj, J. Arokiaraj, and K. Mala. 2017. Caveolin1/protein arginine methyltransferase1/sirtuin1 axis as a potential target against endothelial dysfunction. Pharmacological Research 119: 1–11.CrossRefPubMed Charles, S., V. Raj, J. Arokiaraj, and K. Mala. 2017. Caveolin1/protein arginine methyltransferase1/sirtuin1 axis as a potential target against endothelial dysfunction. Pharmacological Research 119: 1–11.CrossRefPubMed
8.
Zurück zum Zitat Chen, T., L. Xiao, L. Zhu, S. Ma, T. Yan, and H. Ji. 2015. Anti-asthmatic effects of ginsenoside Rb1 in a mouse model of allergic asthma through relegating Th1/Th2. Inflammation 38: 1814–1822.CrossRefPubMed Chen, T., L. Xiao, L. Zhu, S. Ma, T. Yan, and H. Ji. 2015. Anti-asthmatic effects of ginsenoside Rb1 in a mouse model of allergic asthma through relegating Th1/Th2. Inflammation 38: 1814–1822.CrossRefPubMed
9.
Zurück zum Zitat Chen, T., J. Gao, P. Xiang, Y. Chen, J. Ji, P. Xie, H. Wu, W. Xiao, Y. Wei, S. Wang, L. Lan, H. Ji, and T. Yan. 2015. Protective effect of platycodin D on liver injury in alloxan-induced diabetic mice via regulation of Treg/Th17 balance. International Immunopharmacology 26: 338–348.CrossRefPubMed Chen, T., J. Gao, P. Xiang, Y. Chen, J. Ji, P. Xie, H. Wu, W. Xiao, Y. Wei, S. Wang, L. Lan, H. Ji, and T. Yan. 2015. Protective effect of platycodin D on liver injury in alloxan-induced diabetic mice via regulation of Treg/Th17 balance. International Immunopharmacology 26: 338–348.CrossRefPubMed
10.
Zurück zum Zitat Boucherie, S., C. Decaens, J.M. Verbavatz, B. Grosse, M. Erard, F. Merola, et al. 2013. Cadmium disorganises the scaffolding of gap and tight junction proteins in the hepatic cell line WIF B9. Biology of the Cell 105 (12): 561–575.CrossRefPubMed Boucherie, S., C. Decaens, J.M. Verbavatz, B. Grosse, M. Erard, F. Merola, et al. 2013. Cadmium disorganises the scaffolding of gap and tight junction proteins in the hepatic cell line WIF B9. Biology of the Cell 105 (12): 561–575.CrossRefPubMed
11.
Zurück zum Zitat Zhu, Y., Y.P. Shi, D. Wu, Y.J. Ji, X. Wang, H.L. Chen, et al. 2011. Salidroside protects against hydrogen peroxide-induced injury in cardiac H9c2 cells via PI3K-Akt dependent pathway. DNA and Cell Biology 30 (10): 809–819.CrossRefPubMed Zhu, Y., Y.P. Shi, D. Wu, Y.J. Ji, X. Wang, H.L. Chen, et al. 2011. Salidroside protects against hydrogen peroxide-induced injury in cardiac H9c2 cells via PI3K-Akt dependent pathway. DNA and Cell Biology 30 (10): 809–819.CrossRefPubMed
12.
Zurück zum Zitat Tan, C.B., M. Gao, W.R. Xu, X.Y. Yang, X.M. Zhu, and G.H. Du. 2009. Protective effects of salidroside on endothelial cell apoptosis induced by cobalt chloride. Biological & Pharmaceutical Bulletin 32 (8): 1359–1363.CrossRef Tan, C.B., M. Gao, W.R. Xu, X.Y. Yang, X.M. Zhu, and G.H. Du. 2009. Protective effects of salidroside on endothelial cell apoptosis induced by cobalt chloride. Biological & Pharmaceutical Bulletin 32 (8): 1359–1363.CrossRef
13.
Zurück zum Zitat Mao, G.X., H.B. Deng, L.G. Yuan, D.D. Li, Y.Y. Li, and Z. Wang. 2010. Protective role of salidroside against aging in a mouse model induced by D-galactose. DNA and Cell Biology 23 (2): 161–166. Mao, G.X., H.B. Deng, L.G. Yuan, D.D. Li, Y.Y. Li, and Z. Wang. 2010. Protective role of salidroside against aging in a mouse model induced by D-galactose. DNA and Cell Biology 23 (2): 161–166.
14.
Zurück zum Zitat Hu, X., S. Lin, D. Yu, S. Qiu, X. Zhang, and R. Mei. 2010. A preliminary study: the anti-proliferation effect of salidroside on different human cancer cell lines. Cell Biology and Toxicology 26 (6): 499–507.CrossRefPubMed Hu, X., S. Lin, D. Yu, S. Qiu, X. Zhang, and R. Mei. 2010. A preliminary study: the anti-proliferation effect of salidroside on different human cancer cell lines. Cell Biology and Toxicology 26 (6): 499–507.CrossRefPubMed
15.
Zurück zum Zitat Wang, J., J.Z. Li, A.X. Lu, K.F. Zhang, and B.J. Li. 2014. Anticancer effect of salidroside on A549 lung cancer cells through inhibition of oxidative stress and phospho-p38 expression. Oncology Letters 7 (4): 1159–1164.PubMedPubMedCentral Wang, J., J.Z. Li, A.X. Lu, K.F. Zhang, and B.J. Li. 2014. Anticancer effect of salidroside on A549 lung cancer cells through inhibition of oxidative stress and phospho-p38 expression. Oncology Letters 7 (4): 1159–1164.PubMedPubMedCentral
16.
Zurück zum Zitat Zhu, L., T. Wei, X. Chang, H. He, J. Gao, Z. Wen, and T. Yan. 2015. Effects of Salidroside on myocardial injury in vivo in vitro via regulation of Nox/NF-kappaB/AP1 pathway. Inflammation 38: 1589–1598.CrossRefPubMed Zhu, L., T. Wei, X. Chang, H. He, J. Gao, Z. Wen, and T. Yan. 2015. Effects of Salidroside on myocardial injury in vivo in vitro via regulation of Nox/NF-kappaB/AP1 pathway. Inflammation 38: 1589–1598.CrossRefPubMed
17.
Zurück zum Zitat Zhong, S., Y.C. Nie, Z.Y. Gan, X.D. Liu, Z.F. Fang, B.N. Zhong, J. Tian, C.Q. Huang, K.F. Lai, and N.S. Zhong. 2015. Effects of Schisandra chinensis extracts on cough and pulmonary inflammation in a cough hypersensitivity guinea pig model induced by cigarette smoke exposure. Journal of Ethnopharmacology 165: 73–82.CrossRefPubMed Zhong, S., Y.C. Nie, Z.Y. Gan, X.D. Liu, Z.F. Fang, B.N. Zhong, J. Tian, C.Q. Huang, K.F. Lai, and N.S. Zhong. 2015. Effects of Schisandra chinensis extracts on cough and pulmonary inflammation in a cough hypersensitivity guinea pig model induced by cigarette smoke exposure. Journal of Ethnopharmacology 165: 73–82.CrossRefPubMed
18.
Zurück zum Zitat Wang, X.L., X. Wang, L.L. Xiong, Y. Zhu, H.L. Chen, J.X. Chen, X.X. Wang, R.L. Li, Z.Y. Guo, P. Li, and W. Jiang. 2013. Salidroside improves doxorubicin-induced cardiac dysfunction by suppression of excessive oxidative stress and cardiomyocyte apoptosis. Journal of Cardiovascular Pharmacology. 62: 512–523.CrossRefPubMed Wang, X.L., X. Wang, L.L. Xiong, Y. Zhu, H.L. Chen, J.X. Chen, X.X. Wang, R.L. Li, Z.Y. Guo, P. Li, and W. Jiang. 2013. Salidroside improves doxorubicin-induced cardiac dysfunction by suppression of excessive oxidative stress and cardiomyocyte apoptosis. Journal of Cardiovascular Pharmacology. 62: 512–523.CrossRefPubMed
19.
Zurück zum Zitat Zhao, X., L. Jin, N. Shen, B. Xu, W. Zhang, H. Zhu, and Z. Luo. 2013. Salidroside inhibits endogenous hydrogen peroxide induced cytotoxicity of endothelial cells. Biological & Pharmaceutical Bulletin. 36: 1773–1778.CrossRef Zhao, X., L. Jin, N. Shen, B. Xu, W. Zhang, H. Zhu, and Z. Luo. 2013. Salidroside inhibits endogenous hydrogen peroxide induced cytotoxicity of endothelial cells. Biological & Pharmaceutical Bulletin. 36: 1773–1778.CrossRef
20.
Zurück zum Zitat Zhang, K., J. Liu, X. You, P. Kong, Y. Song, L. Cao, S. Yang, W. Wang, Q. Fu, and Z. Ma. 2016. P2X7 as a new target for chrysophanol to treat lipopolysaccharide-induced depression in mice. Neuroscience Letters 613: 60–65.CrossRefPubMed Zhang, K., J. Liu, X. You, P. Kong, Y. Song, L. Cao, S. Yang, W. Wang, Q. Fu, and Z. Ma. 2016. P2X7 as a new target for chrysophanol to treat lipopolysaccharide-induced depression in mice. Neuroscience Letters 613: 60–65.CrossRefPubMed
21.
Zurück zum Zitat Chen, T., Q. Guo, H. Wang, H. Zhang, C. Wang, P. Zhang, S. Meng, Y. Li, H. Ji, and T. Yan. 2015. Effects of esculetin on lipopolysaccharide (LPS)-induced acute lung injury via regulation of RhoA/rho kinase/NF-small ka, cyrillicB pathways in vivo and in vitro. Free Radical Research 49: 1459–1468.CrossRefPubMed Chen, T., Q. Guo, H. Wang, H. Zhang, C. Wang, P. Zhang, S. Meng, Y. Li, H. Ji, and T. Yan. 2015. Effects of esculetin on lipopolysaccharide (LPS)-induced acute lung injury via regulation of RhoA/rho kinase/NF-small ka, cyrillicB pathways in vivo and in vitro. Free Radical Research 49: 1459–1468.CrossRefPubMed
22.
Zurück zum Zitat Lyu, Y., X. Jiang, and W. Dai. 2015. The roles of a novel inflammatory neopterin in subjects with coronary atherosclerotic heart disease. International Immunopharmacology 24: 169–172.CrossRefPubMed Lyu, Y., X. Jiang, and W. Dai. 2015. The roles of a novel inflammatory neopterin in subjects with coronary atherosclerotic heart disease. International Immunopharmacology 24: 169–172.CrossRefPubMed
23.
Zurück zum Zitat Liu, L., P. Wang, C. Liang, D. He, Y. Yu, and X. Liu. 2013. Distinct effects of Nampt inhibition on mild and severe models of lipopolysaccharide-induced myocardial impairment. International Immunopharmacology 17: 342–349.CrossRefPubMed Liu, L., P. Wang, C. Liang, D. He, Y. Yu, and X. Liu. 2013. Distinct effects of Nampt inhibition on mild and severe models of lipopolysaccharide-induced myocardial impairment. International Immunopharmacology 17: 342–349.CrossRefPubMed
24.
Zurück zum Zitat Jiang, Q., M. Yi, Q. Guo, C. Wang, H. Wang, S. Meng, C. Liu, Y. Fu, H. Ji, and T. Chen. 2015. Protective effects of polydatin on lipopolysaccharide-induced acute lung injury through TLR4-MyD88-NF-kappaB pathway. International Immunopharmacology 29: 370–376.CrossRefPubMed Jiang, Q., M. Yi, Q. Guo, C. Wang, H. Wang, S. Meng, C. Liu, Y. Fu, H. Ji, and T. Chen. 2015. Protective effects of polydatin on lipopolysaccharide-induced acute lung injury through TLR4-MyD88-NF-kappaB pathway. International Immunopharmacology 29: 370–376.CrossRefPubMed
25.
Zurück zum Zitat Chang, X., H. He, L. Zhu, J. Gao, T. Wei, Z. Ma, and T. Yan. 2015. Protective effect of apigenin on Freund's complete adjuvant-induced arthritis in rats via inhibiting P2X7/NF-kappaB pathway. Chemico-biological Interactions. 236: 41–46.CrossRefPubMed Chang, X., H. He, L. Zhu, J. Gao, T. Wei, Z. Ma, and T. Yan. 2015. Protective effect of apigenin on Freund's complete adjuvant-induced arthritis in rats via inhibiting P2X7/NF-kappaB pathway. Chemico-biological Interactions. 236: 41–46.CrossRefPubMed
26.
Zurück zum Zitat Zhu, L., T. Wei, J. Gao, X. Chang, H. He, F. Luo, R. Zhou, C. Ma, Y. Liu, and T. Yan. 2015. The cardioprotective effect of salidroside against myocardial ischemia reperfusion injury in rats by inhibiting apoptosis and inflammation. Apoptosis: an International Journal on Programmed Cell Death. 20: 1433–1443.CrossRef Zhu, L., T. Wei, J. Gao, X. Chang, H. He, F. Luo, R. Zhou, C. Ma, Y. Liu, and T. Yan. 2015. The cardioprotective effect of salidroside against myocardial ischemia reperfusion injury in rats by inhibiting apoptosis and inflammation. Apoptosis: an International Journal on Programmed Cell Death. 20: 1433–1443.CrossRef
27.
Zurück zum Zitat Jing, W., M. Chunhua, and W. Shumin. 2015. Effects of acteoside on lipopolysaccharide-induced inflammation in acute lung injury via regulation of NF-kappaB pathway in vivo and in vitro. Toxicology and Applied Pharmacology. 285: 128–135.CrossRefPubMed Jing, W., M. Chunhua, and W. Shumin. 2015. Effects of acteoside on lipopolysaccharide-induced inflammation in acute lung injury via regulation of NF-kappaB pathway in vivo and in vitro. Toxicology and Applied Pharmacology. 285: 128–135.CrossRefPubMed
28.
Zurück zum Zitat Hu, Q., B. Wei, L. Wei, K. Hua, X. Yu, H. Li, and H. Ji. 2015. Sodium tanshinone IIA sulfonate ameliorates ischemia-induced myocardial inflammation and lipid accumulation in beagle dogs through NLRP3 inflammasome. International Journal of Cardiology. Hu, Q., B. Wei, L. Wei, K. Hua, X. Yu, H. Li, and H. Ji. 2015. Sodium tanshinone IIA sulfonate ameliorates ischemia-induced myocardial inflammation and lipid accumulation in beagle dogs through NLRP3 inflammasome. International Journal of Cardiology.
29.
Zurück zum Zitat Chen. T., Wang, R., Jiang, W., Wang, H., Xu, A., Lu, G., Ren, Y., Xu, Y., Song, Y., Yong, S., Ji, H., Ma, Z. 2015. Protective effect of astragaloside IV against paraquat-induced lung injury in mice by suppressing rho signaling. Inflammation. Chen. T., Wang, R., Jiang, W., Wang, H., Xu, A., Lu, G., Ren, Y., Xu, Y., Song, Y., Yong, S., Ji, H., Ma, Z. 2015. Protective effect of astragaloside IV against paraquat-induced lung injury in mice by suppressing rho signaling. Inflammation.
30.
Zurück zum Zitat Akgullu, C., M.A. Huyut, M. Boyacioglu, O. Gules, U. Eryilmaz, T. Hekim, E. Dogan, C. Zencir, and H. Gungor. 2015. Nebivolol to attenuate the effects of hyper-homocysteinaemia in rats. Atherosclerosis 240: 33–39.CrossRefPubMed Akgullu, C., M.A. Huyut, M. Boyacioglu, O. Gules, U. Eryilmaz, T. Hekim, E. Dogan, C. Zencir, and H. Gungor. 2015. Nebivolol to attenuate the effects of hyper-homocysteinaemia in rats. Atherosclerosis 240: 33–39.CrossRefPubMed
31.
Zurück zum Zitat You, R., W. Long, Z. Lai, L. Sha, K. Wu, X. Yu, Y. Lai, H. Ji, Z. Huang, and Y. Zhang. 2013. Discovery of a potential anti-inflammatory agent: 3-oxo-29-noroleana-1,9(11),12-trien-2,20-dicarbonitrile. Journal of Medicinal Chemistry. 56: 1984–1995.CrossRefPubMed You, R., W. Long, Z. Lai, L. Sha, K. Wu, X. Yu, Y. Lai, H. Ji, Z. Huang, and Y. Zhang. 2013. Discovery of a potential anti-inflammatory agent: 3-oxo-29-noroleana-1,9(11),12-trien-2,20-dicarbonitrile. Journal of Medicinal Chemistry. 56: 1984–1995.CrossRefPubMed
32.
Zurück zum Zitat Lou, T., W. Jiang, D. Xu, T. Chen, and Y. Fu. 2015. Inhibitory effects of Polydatin on lipopolysaccharide-stimulated RAW 264.7 cells. Inflammation 38: 1213–1220.CrossRefPubMed Lou, T., W. Jiang, D. Xu, T. Chen, and Y. Fu. 2015. Inhibitory effects of Polydatin on lipopolysaccharide-stimulated RAW 264.7 cells. Inflammation 38: 1213–1220.CrossRefPubMed
Metadaten
Titel
Salidroside Attenuates LPS-Induced Acute Lung Injury in Rats
verfasst von
Liu Jingyan
Guo Yujuan
Yang Yiming
Zhu Lingpeng
Yan Tianhua
Miao Mingxing
Publikationsdatum
19.05.2017
Verlag
Springer US
Erschienen in
Inflammation / Ausgabe 5/2017
Print ISSN: 0360-3997
Elektronische ISSN: 1573-2576
DOI
https://doi.org/10.1007/s10753-017-0593-6

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