Page last updated: 2024-09-04

rhodioloside and Disease Models, Animal

rhodioloside has been researched along with Disease Models, Animal in 62 studies

Research

Studies (62)

TimeframeStudies, this research(%)All Research%
pre-19900 (0.00)18.7374
1990's0 (0.00)18.2507
2000's2 (3.23)29.6817
2010's35 (56.45)24.3611
2020's25 (40.32)2.80

Authors

AuthorsStudies
Abrams, RPM; Bachani, M; Balasubramanian, A; Brimacombe, K; Dorjsuren, D; Eastman, RT; Hall, MD; Jadhav, A; Lee, MH; Li, W; Malik, N; Nath, A; Padmanabhan, R; Simeonov, A; Steiner, JP; Teramoto, T; Yasgar, A; Zakharov, AV1
Hao, W; Li, N; Mi, C; Wang, Q; Yu, Y1
Jiang, L; Ma, X; Wang, Z; Wen, G; Yang, J; Yao, P; Yu, Q; Zhou, B; Zhou, L1
Chen, Y; Feng, M; Jia, Z; Liu, J; Liu, L; Xiao, H; Yan, X; Zhang, Y; Zhu, M1
Li, J; Ming, X; Wang, J; Xiong, L; Yu, X; Zheng, J1
An, P; Guo, Z; Li, CF; Liu, FY; Ma, SQ; Tang, N; Tang, QZ; Wang, MY; Yang, D; Yang, Z1
Cui, H; Hu, H; Liu, Y; Lu, X; Song, H; Sun, Y; Wang, F; Wang, K; Wang, L; Zhao, G; Zhou, Z1
Han, J; Kasim, V; Luo, L; Wang, Y; Wu, S1
Chen, XD; Ding, Y; Li, S; Long, ZY; Lu, XM; Peng, YY; Tang, C; Wang, HY; Wang, YT; Wei, JX1
Brown, J; Chu, K; Hong, G; Huang, X; Lai, W; Su, Y; Wang, Y1
Cai, X; Cao, L; Feng, H; Kang, J; Li, M; Wang, W; Wang, Z; Xu, M; Yin, Y; Yu, N; Zhang, D1
Chen, P; Han, B; Liu, J; Ruan, H; Wu, P; Yimei, D; Zhang, M1
Hu, Y; Li, H; Tian, H; Xi, Y; Xin, X1
Chen, S; Li, Q; Sun, S; Wang, H1
Cai, H; Jin, M; Mo, Y; Song, X; Wang, J; Xue, X; Yang, C; Ye, L; Zhu, G; Zhu, M1
Gao, H; Ji, Q; Li, C; Li, P; Peng, L1
Fu, B; Li, R; Yan, T; Zhang, X; Zhang, Y; Zhu, L1
Li, Y; Tian, Z; Wang, G; Wang, J; Zhang, Y1
Gao, X; Li, R; Liu, R; Shi, H; Yan, F; Zhuang, X1
Chang, SL; Chen, SA; Chung, FP; Higa, S; Hsiao, YW; Hu, YF; Huang, YT; Lin, SF; Lin, YJ; Liu, SH; Lo, LW; Tsai, YN1
Dai, XT; Ding, XJ; Han, JX; Jin, J; Liu, HJ; Sun, T; Wang, HQ; Wang, Y; Yang, K; Yang, YY; Yao, C; Zhang, ZY; Zhu, CB1
Wang, J; Wang, W; Wang, X; Yang, L; Zhou, L1
Jiang, L; Lv, S; Su, J; Wei, J; Xu, X; Zhang, Z; Zheng, L1
Cao, Y; Dong, P; Jia, L; Jiang, M; Li, C; Liang, Q; Shi, H; Song, T; Wang, P1
Guo, R; Li, Y; Ni, J; Xu, Y1
Fu, H; Huang, W; Lv, B; Ma, J; Ma, K; Wang, W; Xu, Z; Ye, M; Zhao, F; Zhao, J; Zhou, K1
Hu, M; Huang, X; Qi, Z; Shi, H; Wang, X; Wu, Y; Xu, H; Zhang, D; Zhang, Y1
Chen, C; Chen, J; Chi, H; Dou, F; Liu, T; Sun, L; Sun, S; Xing, S1
Chen, L; He, PL; Li, J; Xing, SS; Yang, J; Yang, YF1
Li, Q; Li, Y; Wang, J; Xu, X1
Guo, R; Li, Y; Zang, W; Zhang, P1
Li, HS1
Chen, J; Gao, W; Lin, J; Shao, Z; Wang, H; Wang, K; Wang, X; Wu, C; Xu, T; Yan, Y; Zhang, X; Zhang, Z1
Chen, H; Feng, N; Liu, X; Liu, Y; Qiu, M; Tang, H; Wang, C; Yang, J; Zhang, J; Zhou, X1
Li, M; Liu, HJ; Liu, YR; Qiao, KL; Qin, Y; Sun, T; Tang, YH; Yang, C; Yang, G; Yang, JH; Yang, L; Zhai, DH; Zhang, Q; Zhong, WL1
Chen, X; Fang, C1
Fang, F; Feng, H; Fu, F; Lian, Z; Liu, Q; Qin, A; Shao, S; Song, F; Su, Y; Wei, C; Wu, T; Xu, J; Zhao, J; Zong, S1
Huang, X; Li, P; Liu, Y; Luo, Y; Qin, X; Sun, C; Wu, C; Xue, H1
Chen, JZ; Fan, J; Hu, HM; Li, D; Liu, J; Luo, ZJ; Meng, GL; Shi, TY; Wei, BY; Yang, L; Yuan, Z; Zhang, JK1
Bian, K; Liu, D; Nie, XQ; Pan, HJ1
Choi, YH; Yan, GH1
Ding, L; Huang, X; Wu, L; Xu, L; Zhang, Z; Zheng, L1
Cai, H; Cai, X; Chen, M; Chen, Y; Ding, C; Guo, R; Huang, X; Wang, L; Xu, X; Yao, D; Yu, X; Zou, L1
Chen, J; Hou, XH; Huang, JG; Xing, GX; Yan, ZQ; Zhang, Y1
Brown, J; Chen, L; Chu, K; Hong, G; Lai, W; Wei, Y; Zhang, X; Zheng, Z1
Chang, X; Gao, J; He, H; Miao, M; Yan, T; Zhu, L1
Chang, X; Gao, J; He, H; Jiang, W; Luo, F; Ma, C; Yan, T; Zhou, R; Zhu, L1
Chang, X; Ding, X; Gao, J; He, H; Luo, F; Yan, T; You, X; Zhou, R; Zhu, L1
Gulisano, W; Mammana, L; Palmeri, A; Puzzo, D; Tropea, MR1
Chen, S; Chu, X; Li, H; Li, Q; Sun, S; Wang, Y; Xiong, R; Zhang, B; Zhao, Z1
Du, Q; Duan, J; Duan, S; Liu, C; Wang, J; Yang, Y; Zhang, X1
Bai, ZM; Huang, Y; Liu, ZX; Lv, C; Yu, D1
Guo, XQ; Han, ZM; Li, L; Li, ZM; Qi, L; Qu, Y; Wang, C; Wang, D; Wang, Y; Yang, J1
Dwi Ariyanti, A; Huang, C; Kasim, V; Liu, CP; Miyagishi, M; Sisjayawan, J; Wu, SR; Wu, XY; Xie, YD; Yan, XS; Yang, L; Zhang, J1
Jiang, YZ; Lian, LH; Nan, JX; Wu, YL1
Ciccocioppo, R; Cifani, C; Massi, M; Micioni Di Bonaventura, MV; Ruggieri, V; Vitale, G1
Wu, LX; Xin, H; Zhong, H; Zhu, YZ1
Feng, SF; Li, XQ; Liu, SB; Shi, TY; Tian, Z; Wu, YM; Xing, JH; Zhang, N; Zhao, MG1
Chen, N; Chu, X; Deng, X; Guan, S; Huo, M; Lu, J; Song, B; Song, Y; Wang, D; Xiong, Y1
Chai, X; Kong, W; Liu, P; Shao, T; Song, L; Wen, X; Zhang, J1
Han, T1
Abrahamyan, H; Gabrielyan, E; Hovhannisyan, A; Nikoyan, N; Ohanyan, N; Panossian, A; Wikman, G1

Other Studies

62 other study(ies) available for rhodioloside and Disease Models, Animal

ArticleYear
Therapeutic candidates for the Zika virus identified by a high-throughput screen for Zika protease inhibitors.
    Proceedings of the National Academy of Sciences of the United States of America, 2020, 12-08, Volume: 117, Issue:49

    Topics: Animals; Antiviral Agents; Artificial Intelligence; Chlorocebus aethiops; Disease Models, Animal; Drug Evaluation, Preclinical; High-Throughput Screening Assays; Immunocompetence; Inhibitory Concentration 50; Methacycline; Mice, Inbred C57BL; Protease Inhibitors; Quantitative Structure-Activity Relationship; Small Molecule Libraries; Vero Cells; Zika Virus; Zika Virus Infection

2020
Salidroside attenuates cardiac dysfunction in a rat model of diabetes.
    Diabetic medicine : a journal of the British Diabetic Association, 2022, Volume: 39, Issue:3

    Topics: AMP-Activated Protein Kinases; Animals; Apoptosis; Diabetic Cardiomyopathies; Disease Models, Animal; Glucosides; Inflammation; Male; Myocytes, Cardiac; Oxidative Stress; Phenols; Rats; Rats, Sprague-Dawley; Signal Transduction; Streptozocin; TOR Serine-Threonine Kinases

2022
Salidroside-pretreated mesenchymal stem cells contribute to neuroprotection in cerebral ischemic injury in vitro and in vivo.
    Journal of molecular histology, 2021, Volume: 52, Issue:6

    Topics: Animals; Apoptosis; Biomarkers; Brain Ischemia; CA1 Region, Hippocampal; Cell Survival; Cells, Cultured; Disease Management; Disease Models, Animal; Fluorescent Antibody Technique; Glucosides; Immunohistochemistry; Male; Mesenchymal Stem Cell Transplantation; Mesenchymal Stem Cells; Neuroprotection; Phenols; Rats

2021
Salidroside orchestrates metabolic reprogramming by regulating the Hif-1α signalling pathway in acute mountain sickness.
    Pharmaceutical biology, 2021, Volume: 59, Issue:1

    Topics: Acute Disease; Altitude Sickness; Animals; Brain; Cell Survival; Disease Models, Animal; Dose-Response Relationship, Drug; Glucosides; Hypoxia-Inducible Factor 1, alpha Subunit; Male; Mice; Mice, Inbred C57BL; PC12 Cells; Phenols; Rats; Rhodiola; Signal Transduction

2021
Salidroside Attenuates Airway Inflammation and Remodeling via the miR-323-3p/SOCS5 Axis in Asthmatic Mice.
    International archives of allergy and immunology, 2022, Volume: 183, Issue:4

    Topics: Airway Remodeling; Animals; Asthma; Bronchoalveolar Lavage Fluid; Disease Models, Animal; Glucosides; Inflammation; Lung; Mice; Mice, Inbred BALB C; MicroRNAs; Ovalbumin; Phenols; Signal Transduction; Suppressor of Cytokine Signaling Proteins

2022
Salidroside ameliorates pathological cardiac hypertrophy via TLR4-TAK1-dependent signaling.
    Phytotherapy research : PTR, 2023, Volume: 37, Issue:5

    Topics: Animals; Aortic Valve Stenosis; Cardiomegaly; Cells, Cultured; Disease Models, Animal; MAP Kinase Kinase Kinases; Mice; Mice, Inbred C57BL; Myocytes, Cardiac; Rats; Signal Transduction; Toll-Like Receptor 4

2023
Mechanistic study of salidroside on ovalbumin-induced asthmatic model mice based on untargeted metabolomics analysis.
    Food & function, 2023, Jan-03, Volume: 14, Issue:1

    Topics: Airway Remodeling; Animals; Asthma; Bronchoalveolar Lavage Fluid; Disease Models, Animal; Hormones; Lung; Metalloproteases; Mice; Mice, Inbred BALB C; Ovalbumin; Pyrimidines; Steroids

2023
Salidroside facilitates therapeutic angiogenesis in diabetic hindlimb ischemia by inhibiting ferroptosis.
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2023, Volume: 159

    Topics: Animals; Diabetes Mellitus; Disease Models, Animal; Ferroptosis; Hindlimb; Hyperglycemia; Ischemia; Mice; Mice, Inbred C57BL; Muscle, Skeletal; Neovascularization, Physiologic

2023
Effects and mechanisms of salidroside on the behavior of SPS-induced PTSD rats.
    Neuropharmacology, 2023, Dec-01, Volume: 240

    Topics: Animals; Disease Models, Animal; Glucosides; Hippocampus; Humans; Phenols; Rats; Stress Disorders, Post-Traumatic

2023
Salidroside Restores an Anti-inflammatory Endothelial Phenotype by Selectively Inhibiting Endothelial Complement After Oxidative Stress.
    Inflammation, 2020, Volume: 43, Issue:1

    Topics: Animals; Anti-Inflammatory Agents; Apoptosis Regulatory Proteins; Brain; Cell Line; Coculture Techniques; Complement Activation; Complement C3; Complement Inactivating Agents; Disease Models, Animal; Endothelial Cells; Glucosides; Human Umbilical Vein Endothelial Cells; Humans; Infarction, Middle Cerebral Artery; Inflammation Mediators; Male; Mice; Oxidative Stress; Phenols; Phenotype; Rats, Sprague-Dawley; Reperfusion Injury; Signal Transduction

2020
Salidroside mitigates skeletal muscle atrophy in rats with cigarette smoke-induced COPD by up-regulating myogenin and down-regulating myostatin expression.
    Bioscience reports, 2019, 11-29, Volume: 39, Issue:11

    Topics: Animals; Antioxidants; Disease Models, Animal; Down-Regulation; Glucosides; Lung; Male; Muscle, Skeletal; Muscular Atrophy; Myogenin; Myostatin; Nicotiana; Phenols; Pulmonary Disease, Chronic Obstructive; Pulmonary Emphysema; Rats; Rats, Wistar; Smoke; Smoking; Up-Regulation

2019
Protective effects of Salidroside on cardiac function in mice with myocardial infarction.
    Scientific reports, 2019, 12-02, Volume: 9, Issue:1

    Topics: Animals; Apoptosis; Cardiotonic Agents; Coronary Vessels; Cytokines; Disease Models, Animal; Fibrosis; Glucosides; Heart; Ligation; Male; Mice, Inbred C57BL; Myocardial Infarction; Myocardium; Neovascularization, Physiologic; Phenols; Ventricular Remodeling

2019
Salidroside improves high-fat diet-induced non-alcoholic steatohepatitis by regulating the gut microbiota-bile acid-farnesoid X receptor axis.
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2020, Volume: 124

    Topics: Animals; Bile Acids and Salts; Diet, High-Fat; Disease Models, Animal; Gastrointestinal Microbiome; Glucosides; Male; Mice; Mice, Inbred C57BL; Non-alcoholic Fatty Liver Disease; Phenols; Receptors, Cytoplasmic and Nuclear; Triglycerides

2020
Neuroprotective Effects of Salidroside in a Mouse Model of Alzheimer's Disease.
    Cellular and molecular neurobiology, 2020, Volume: 40, Issue:7

    Topics: Alzheimer Disease; Amyloid beta-Peptides; Animals; Cognitive Dysfunction; Disease Models, Animal; Glucosides; Mice, Inbred C57BL; Mice, Transgenic; Neuroprotective Agents; Phenols; Phosphatidylinositol 3-Kinases; Signal Transduction; TOR Serine-Threonine Kinases

2020
Salidroside suppresses group 2 innate lymphoid cell-mediated allergic airway inflammation by targeting IL-33/ST2 axis.
    International immunopharmacology, 2020, Volume: 81

    Topics: Animals; Asthma; Cytokines; Disease Models, Animal; Female; Glucosides; Humans; Hypersensitivity; Immunity, Innate; Immunosuppressive Agents; Interleukin-1 Receptor-Like 1 Protein; Interleukin-33; Lymphocytes; Mice; Mice, Inbred C57BL; Phenols; Pneumonia; Respiratory System; Rhodiola; Signal Transduction; Th2 Cells

2020
Salidroside Alleviates Cartilage Degeneration Through NF-κB Pathway in Osteoarthritis Rats.
    Drug design, development and therapy, 2020, Volume: 14

    Topics: Animals; Cartilage, Articular; Cell Proliferation; Chondrocytes; Disease Models, Animal; Dose-Response Relationship, Drug; Female; Glucosides; Injections, Intraperitoneal; NF-kappa B; Osteoarthritis; Phenols; Rats; Rats, Sprague-Dawley; Structure-Activity Relationship

2020
Salidroside ameliorates Parkinson's disease by inhibiting NLRP3-dependent pyroptosis.
    Aging, 2020, 05-19, Volume: 12, Issue:10

    Topics: Animals; Disease Models, Animal; Glucosides; Male; Mice; Mice, Inbred C57BL; NLR Family, Pyrin Domain-Containing 3 Protein; Parkinson Disease; Phenols; Pyroptosis; Signal Transduction

2020
Therapeutic Effects of Salidroside on Cognitive Ability in Rats with Experimental Vascular Dementia.
    Bulletin of experimental biology and medicine, 2020, Volume: 169, Issue:1

    Topics: Animals; Brain; Cognition; Dementia, Vascular; Disease Models, Animal; Glucosides; Male; Malondialdehyde; Maze Learning; Morris Water Maze Test; Neuroprotective Agents; Oxidative Stress; Phenols; Rats; Rats, Sprague-Dawley; Superoxide Dismutase

2020
Salidroside Attenuates Doxorubicin-Induced Cardiac Dysfunction Partially Through Activation of QKI/FoxO1 Pathway.
    Journal of cardiovascular translational research, 2021, Volume: 14, Issue:2

    Topics: Animals; Apoptosis; Apoptosis Regulatory Proteins; Cardiotoxicity; Cell Line; Disease Models, Animal; Doxorubicin; Forkhead Box Protein O1; Glucosides; Heart Diseases; Male; Mice, Inbred C57BL; Myocytes, Cardiac; Nerve Tissue Proteins; Oxidative Stress; Phenols; Rats, Sprague-Dawley; Reactive Oxygen Species; RNA-Binding Proteins; Signal Transduction; Ventricular Function, Left

2021
Rhodiola crenulata reduces ventricular arrhythmia through mitigating the activation of IL-17 and inhibiting the MAPK signaling pathway.
    Cardiovascular drugs and therapy, 2021, Volume: 35, Issue:5

    Topics: Animals; Anti-Inflammatory Agents; Arrhythmias, Cardiac; CD4 Lymphocyte Count; Chemokine CCL20; Disease Models, Animal; Dose-Response Relationship, Drug; Drug Combinations; Electrocardiography; Glucosides; Inflammation Mediators; Interleukin-17; MAP Kinase Signaling System; NLR Family, Pyrin Domain-Containing 3 Protein; Phenols; Rabbits; Rhodiola; RNA, Messenger; Signal Transduction

2021
Salidroside can target both P4HB-mediated inflammation and melanogenesis of the skin.
    Theranostics, 2020, Volume: 10, Issue:24

    Topics: Adult; Animals; Cell Line, Tumor; Disease Models, Animal; Female; Glucosides; Healthy Volunteers; Humans; Hyperpigmentation; Interferon Regulatory Factor-1; Male; Melanins; Melanocytes; Mice; Molecular Docking Simulation; Monophenol Monooxygenase; Phenols; Procollagen-Proline Dioxygenase; Protein Disulfide-Isomerases; Skin; Skin Aging; Skin Cream; Skin Lightening Preparations; Skin Pigmentation; Transcriptional Activation; Ubiquitination; Ultraviolet Rays; Upstream Stimulatory Factors; Young Adult

2020
Inhibition of HMGB1 involved in the protective of salidroside on liver injury in diabetes mice.
    International immunopharmacology, 2020, Volume: 89, Issue:Pt A

    Topics: Animals; Anti-Inflammatory Agents; Blood Glucose; Cell Line; Cytokines; Diabetes Mellitus, Type 2; Disease Models, Animal; Glucosides; Hepatitis; HMGB1 Protein; Humans; Hypoglycemic Agents; Liver; Male; Mice, Inbred C57BL; Mitogen-Activated Protein Kinases; NF-kappa B; NLR Family, Pyrin Domain-Containing 3 Protein; Phenols; Receptor for Advanced Glycation End Products; Signal Transduction; Toll-Like Receptor 4

2020
Salidroside regulates inflammatory pathway of alveolar macrophages by influencing the secretion of miRNA-146a exosomes by lung epithelial cells.
    Scientific reports, 2020, 11-27, Volume: 10, Issue:1

    Topics: Acute Lung Injury; Animals; Coculture Techniques; Disease Models, Animal; Epithelial Cells; Exosomes; Glucosides; Inflammation; Macrophages, Alveolar; Male; MicroRNAs; Phenols; Rats; Rats, Sprague-Dawley; Signal Transduction

2020
Salidroside simultaneously reduces de novo lipogenesis and cholesterol biosynthesis to attenuate atherosclerosis in mice.
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2021, Volume: 134

    Topics: 3-Hydroxybutyric Acid; Animals; Anticholesteremic Agents; Atherosclerosis; Cholesterol; Diet, High-Fat; Disease Models, Animal; Fatty Acids; Gene Expression Profiling; Gene Expression Regulation, Enzymologic; Glucose; Glucosides; Glycogen; Hypercholesterolemia; Lipidomics; Lipogenesis; Liver; Male; Mice, Inbred C57BL; Mice, Knockout, ApoE; Phenols; Proton Magnetic Resonance Spectroscopy

2021
Salidroside protects against cardiomyocyte apoptosis and ventricular remodeling by AKT/HO-1 signaling pathways in a diabetic cardiomyopathy mouse model.
    Phytomedicine : international journal of phytotherapy and phytopharmacology, 2021, Volume: 82

    Topics: Animals; Apoptosis; Diabetic Cardiomyopathies; Disease Models, Animal; Dose-Response Relationship, Drug; Glucosides; Heme Oxygenase-1; Male; Mice; Myocytes, Cardiac; Phenols; Proto-Oncogene Proteins c-akt; Signal Transduction; Ventricular Remodeling

2021
Enhanced effects of salidroside on erectile function and corpora cavernosa autophagy in a cavernous nerve injury rat model.
    Andrologia, 2021, Volume: 53, Issue:6

    Topics: Animals; Autophagy; Disease Models, Animal; Erectile Dysfunction; Glucosides; Humans; Male; Penile Erection; Penis; Phenols; Rats; Rats, Sprague-Dawley

2021
Salidroside Activates the AMP-Activated Protein Kinase Pathway to Suppress Nonalcoholic Steatohepatitis in Mice.
    Hepatology (Baltimore, Md.), 2021, Volume: 74, Issue:6

    Topics: AMP-Activated Protein Kinases; Animals; Cells, Cultured; Diet, High-Fat; Disease Models, Animal; Glucosides; Hepatocytes; Humans; Liver; Male; Mice; Non-alcoholic Fatty Liver Disease; Phenols; Primary Cell Culture; Signal Transduction

2021
Salidroside slows the progression of EA.hy926 cell senescence by regulating the cell cycle in an atherosclerosis model.
    Molecular medicine reports, 2018, Volume: 17, Issue:1

    Topics: Animals; Atherosclerosis; Biomarkers; Cell Cycle; Cell Cycle Proteins; Cell Line; Cellular Senescence; Disease Models, Animal; Endothelial Cells; Gene Expression Regulation; Genes, p53; Glucosides; Humans; Phenols

2018
Salidroside attenuates endothelial cellular senescence via decreasing the expression of inflammatory cytokines and increasing the expression of SIRT3.
    Mechanisms of ageing and development, 2018, Volume: 175

    Topics: Animals; Anti-Inflammatory Agents; Aorta; beta-Galactosidase; Cells, Cultured; Cellular Senescence; Collagen; Cyclin-Dependent Kinase Inhibitor p16; Cyclin-Dependent Kinase Inhibitor p21; Cytokines; Disease Models, Animal; Glucosides; Human Umbilical Vein Endothelial Cells; Humans; Hyperhomocysteinemia; Inflammation Mediators; Male; Mice, Inbred BALB C; Phenols; Sirtuin 3; Up-Regulation; Vascular Remodeling

2018
Neuroprotective effects of salidroside administration in a mouse model of Alzheimer's disease.
    Molecular medicine reports, 2018, Volume: 17, Issue:5

    Topics: Alzheimer Disease; Animals; Disease Models, Animal; Glucosides; Glutathione; Hippocampus; Male; Malondialdehyde; Maze Learning; Memory; Mice; Mice, Inbred C57BL; Neuroprotective Agents; Oxidative Stress; Phenols; Superoxide Dismutase

2018
Salidroside Protects Against Advanced Glycation End Products-Induced Vascular Endothelial Dysfunction.
    Medical science monitor : international medical journal of experimental and clinical research, 2018, Apr-21, Volume: 24

    Topics: Animals; Aorta; Apoptosis; Cell Survival; Diabetes Complications; Disease Models, Animal; Endothelial Cells; Glucosides; Glycation End Products, Advanced; Heme Oxygenase-1; Human Umbilical Vein Endothelial Cells; Humans; Male; NF-E2-Related Factor 2; NF-kappa B; Oxidative Stress; Phenols; Phosphorylation; Rats; Rats, Sprague-Dawley; Reactive Oxygen Species; Signal Transduction

2018
Salidroside and Curcumin Formula Prevents Liver Injury in Nonalcoholic Fatty Liver Disease in Rats.
    Annals of hepatology, 2018, Aug-24, Volume: 17, Issue:5

    Topics: AMP-Activated Protein Kinases; Animals; Biomarkers; Blood Glucose; Curcumin; Diet, High-Fat; Disease Models, Animal; Drug Combinations; Glucosides; Insulin; Insulin Resistance; Lipid Metabolism; Lipid Peroxidation; Liver; Male; Non-alcoholic Fatty Liver Disease; Phenols; Rats, Sprague-Dawley; Signal Transduction

2018
Parkin-mediated mitophagy as a potential therapeutic target for intervertebral disc degeneration.
    Cell death & disease, 2018, 09-24, Volume: 9, Issue:10

    Topics: Animals; Apoptosis; Autophagy; Cells, Cultured; Disease Models, Animal; Disease Progression; Gene Knockdown Techniques; Glucosides; Humans; Intervertebral Disc Degeneration; Male; Mitochondria; Mitophagy; Nucleus Pulposus; Phenols; Rats; Rats, Sprague-Dawley; Reactive Oxygen Species; Transfection; Tumor Necrosis Factor-alpha; Ubiquitin-Protein Ligases; Up-Regulation

2018
Frontline Science: Reprogramming COX-2, 5-LOX, and CYP4A-mediated arachidonic acid metabolism in macrophages by salidroside alleviates gouty arthritis.
    Journal of leukocyte biology, 2019, Volume: 105, Issue:1

    Topics: Animals; Arachidonate 5-Lipoxygenase; Arachidonic Acid; Arthritis, Gouty; Cell Movement; Cell Polarity; Chondrocytes; Crystallization; Cyclooxygenase 2; Cytochrome P-450 CYP4A; Disease Models, Animal; Down-Regulation; Glucosides; Interleukin-1beta; Macrophages; Male; Mice; Models, Biological; Neutrophils; NF-kappa B; Phenols; Phenotype; Rabbits; Rats, Wistar; RAW 264.7 Cells; Signal Transduction; STAT1 Transcription Factor; Synovial Fluid; Tumor Necrosis Factor-alpha; Uric Acid

2019
Salidroside improves the hypoxic tumor microenvironment and reverses the drug resistance of platinum drugs via HIF-1α signaling pathway.
    EBioMedicine, 2018, Volume: 38

    Topics: Animals; Antineoplastic Agents; Cell Line, Tumor; Cell Movement; Cell Survival; Computational Biology; Disease Models, Animal; Drug Resistance, Neoplasm; Epithelial-Mesenchymal Transition; Gene Expression Profiling; Glucosides; Humans; Hypoxia; Hypoxia-Inducible Factor 1, alpha Subunit; Liver Neoplasms; Mice; Phenols; Signal Transduction; Tumor Microenvironment; Xenograft Model Antitumor Assays

2018
Effect of salidroside on bone marrow haematopoiesis in a mouse model of myelosuppressed anaemia.
    Journal of radiation research, 2019, Mar-01, Volume: 60, Issue:2

    Topics: Anemia; Animals; Bone Marrow; Bone Marrow Transplantation; Cell Count; Cell Lineage; Cell Proliferation; Disease Models, Animal; Glucosides; Hematopoiesis; Hematopoietic Stem Cells; Immunosuppression Therapy; Male; Mice; Pancytopenia; Phenols; Survival Analysis

2019
Salidroside promotes rat spinal cord injury recovery by inhibiting inflammatory cytokine expression and NF-κB and MAPK signaling pathways.
    Journal of cellular physiology, 2019, Volume: 234, Issue:8

    Topics: Animals; Astrocytes; Cytokines; Disease Models, Animal; Gene Expression Regulation; Glucosides; Humans; Inflammation; Interleukin-1beta; Interleukin-6; Lipopolysaccharides; Mitogen-Activated Protein Kinase Kinases; NF-kappa B; p38 Mitogen-Activated Protein Kinases; Phenols; Rats; Signal Transduction; Spinal Cord Injuries; Tumor Necrosis Factor-alpha

2019
Salidroside stimulates the Sirt1/PGC-1α axis and ameliorates diabetic nephropathy in mice.
    Phytomedicine : international journal of phytotherapy and phytopharmacology, 2019, Feb-15, Volume: 54

    Topics: Animals; Diabetic Nephropathies; Disease Models, Animal; DNA, Mitochondrial; Electron Transport; Glucosides; Male; Mice; Mice, Inbred C57BL; Mice, Obese; Mitochondria; Phenols; Podocytes; Sirtuin 1; Streptozocin; Transcription Factors; Up-Regulation

2019
Protection by salidroside against bone loss via inhibition of oxidative stress and bone-resorbing mediators.
    PloS one, 2013, Volume: 8, Issue:2

    Topics: Adaptor Proteins, Signal Transducing; Alkaline Phosphatase; Animals; Bone and Bones; Bone Density Conservation Agents; Bone Resorption; Cell Survival; Collagen Type I; Collagen Type I, alpha 1 Chain; Disease Models, Animal; Female; Glucosides; Humans; Interleukin-6; Membrane Proteins; Mice; Osteoblasts; Osteocalcin; Osteoclasts; Osteoporosis; Phenols; Plant Extracts; RANK Ligand; Reactive Oxygen Species; Rhodiola; Transcription, Genetic

2013
[Effects of four kinds of Chinese medicine monomer on growth of PANC-1 xenograft tumor and studying of molecular mechanism].
    Zhongguo Zhong yao za zhi = Zhongguo zhongyao zazhi = China journal of Chinese materia medica, 2013, Volume: 38, Issue:2

    Topics: Animals; Benzylisoquinolines; Caspase 3; Cell Line, Tumor; Cell Proliferation; Disease Models, Animal; Drugs, Chinese Herbal; Flavonoids; Gene Expression Regulation, Neoplastic; Glucosides; Humans; Male; Mice; Mice, Nude; Phenols; Random Allocation; RNA, Messenger; RNA, Neoplasm; Saponins; Steroids; Vascular Endothelial Growth Factor A; Xenograft Model Antitumor Assays

2013
Salidroside attenuates allergic airway inflammation through negative regulation of nuclear factor-kappa B and p38 mitogen-activated protein kinase.
    Journal of pharmacological sciences, 2014, Volume: 126, Issue:2

    Topics: Animals; Asthma; Bronchial Hyperreactivity; Disease Models, Animal; Down-Regulation; Female; Gene Expression; Glucosides; Lung; Mice, Inbred BALB C; NF-kappa B; p38 Mitogen-Activated Protein Kinases; Phenols; Phytotherapy

2014
Salidroside alleviates paraquat-induced rat acute lung injury by repressing TGF-β1 expression.
    International journal of clinical and experimental pathology, 2014, Volume: 7, Issue:12

    Topics: Acute Lung Injury; Animals; Disease Models, Animal; Glucosides; Herbicides; Immunohistochemistry; Lung; Male; Paraquat; Phenols; Rats; Rats, Sprague-Dawley; Real-Time Polymerase Chain Reaction; Transforming Growth Factor beta1

2014
Salidroside attenuates chronic hypoxia-induced pulmonary hypertension via adenosine A2a receptor related mitochondria-dependent apoptosis pathway.
    Journal of molecular and cellular cardiology, 2015, Volume: 82

    Topics: Animals; Apoptosis; Disease Models, Animal; Gene Expression; Glucosides; Hypertension, Pulmonary; Hypertrophy, Right Ventricular; Hypoxia; Lung; Male; Mice; Mitochondria; Myocytes, Smooth Muscle; Phenols; Pulmonary Artery; Receptor, Adenosine A2A; RNA, Messenger; Signal Transduction; Vascular Remodeling

2015
Salidroside prevents cognitive impairment induced by chronic cerebral hypoperfusion in rats.
    The Journal of international medical research, 2015, Volume: 43, Issue:3

    Topics: Animals; Brain Ischemia; Brain Waves; Carotid Arteries; Carotid Stenosis; Cerebrovascular Circulation; Cognition Disorders; Dementia, Vascular; Disease Models, Animal; Glucosides; Hippocampus; Male; Maze Learning; Phenols; Plant Extracts; Plants, Medicinal; Rats; Rats, Sprague-Dawley; Rhodiola

2015
Salidroside-Mediated Neuroprotection is Associated with Induction of Early Growth Response Genes (Egrs) Across a Wide Therapeutic Window.
    Neurotoxicity research, 2015, Volume: 28, Issue:2

    Topics: Animals; Apoptosis; bcl-2-Associated X Protein; bcl-X Protein; Brain; Brain Ischemia; Caspase 3; Disease Models, Animal; Dose-Response Relationship, Drug; Early Growth Response Transcription Factors; Glucosides; Infarction, Middle Cerebral Artery; Male; Neuroprotective Agents; PC12 Cells; Phenols; Random Allocation; Rats; Rats, Sprague-Dawley; Reperfusion Injury; Stroke; Time Factors

2015
Salidroside Mitigates Sepsis-Induced Myocarditis in Rats by Regulating IGF-1/PI3K/Akt/GSK-3β Signaling.
    Inflammation, 2015, Volume: 38, Issue:6

    Topics: Animals; Anti-Inflammatory Agents; Cytokines; Disease Models, Animal; Glucosides; Glycogen Synthase Kinase 3; Glycogen Synthase Kinase 3 beta; Inflammation Mediators; Insulin-Like Growth Factor I; Lipopolysaccharides; Male; Myocarditis; Myocardium; Phenols; Phosphatidylinositol 3-Kinase; Phosphorylation; Proto-Oncogene Proteins c-akt; Rats, Sprague-Dawley; Sepsis; Signal Transduction

2015
Salidroside ameliorates cognitive impairment in a d-galactose-induced rat model of Alzheimer's disease.
    Behavioural brain research, 2015, Oct-15, Volume: 293

    Topics: Alzheimer Disease; Animals; bcl-2-Associated X Protein; Carrier Proteins; Caspase 9; Cell Cycle Proteins; Cognition Disorders; Cytokines; Disease Models, Animal; Down-Regulation; Escape Reaction; Galactose; Glucosides; Hippocampus; Male; Maze Learning; Phenols; Proto-Oncogene Proteins c-bcl-2; Rats; Rats, Sprague-Dawley; Time Factors; Up-Regulation

2015
Salidroside suppresses inflammation in a D-galactose-induced rat model of Alzheimer's disease via SIRT1/NF-κB pathway.
    Metabolic brain disease, 2016, Volume: 31, Issue:4

    Topics: Alzheimer Disease; Animals; Avoidance Learning; Brain; Cognition; Disease Models, Animal; Galactose; Glucosides; Inflammation; Male; Memory; NF-kappa B; Phenols; Rats; Rats, Sprague-Dawley; Signal Transduction; Sirtuin 1

2016
Salidroside, a Bioactive Compound of Rhodiola Rosea, Ameliorates Memory and Emotional Behavior in Adult Mice.
    Journal of Alzheimer's disease : JAD, 2016, 02-26, Volume: 52, Issue:1

    Topics: Animals; Anti-Anxiety Agents; Antidepressive Agents; Anxiety Disorders; Conditioning, Psychological; Depressive Disorder; Disease Models, Animal; Drug Evaluation, Preclinical; Exploratory Behavior; Fear; Female; Freezing Reaction, Cataleptic; Glucosides; Male; Maze Learning; Memory; Mice, Inbred C57BL; Motor Activity; Nootropic Agents; Phenols; Phytotherapy; Plant Extracts; Rhodiola

2016
Neuroprotective effects of salidroside through PI3K/Akt pathway activation in Alzheimer's disease models.
    Drug design, development and therapy, 2016, Volume: 10

    Topics: Alzheimer Disease; Animals; Disease Models, Animal; Drosophila; Glucosides; Mice; Mice, Inbred C57BL; Neuroprotective Agents; Phenols; Phosphatidylinositol 3-Kinases; Proto-Oncogene Proteins c-akt; Rhodiola; Signal Transduction

2016
Rhodioloside ameliorates depressive behavior via up-regulation of monoaminergic system activity and anti-inflammatory effect in olfactory bulbectomized rats.
    International immunopharmacology, 2016, Volume: 36

    Topics: Animals; Anti-Inflammatory Agents; Antidepressive Agents; Biogenic Monoamines; Depression; Disease Models, Animal; Glucosides; Interleukin-1beta; Interleukin-6; Male; NF-kappa B; Olfactory Bulb; Phenols; Prefrontal Cortex; Rats; Rats, Sprague-Dawley; Rhodiola; Signal Transduction

2016
Salidroside reduces renal cell carcinoma proliferation by inhibiting JAK2/STAT3 signaling.
    Cancer biomarkers : section A of Disease markers, 2016, Jun-07, Volume: 17, Issue:1

    Topics: Animals; Apoptosis; Carcinoma, Renal Cell; Caspase 3; Cell Cycle; Cell Line, Tumor; Cell Proliferation; Cell Survival; Disease Models, Animal; Glucosides; Humans; Janus Kinase 2; Kidney Neoplasms; Male; Mice; Phenols; Signal Transduction; STAT3 Transcription Factor; Xenograft Model Antitumor Assays

2016
Salidroside accelerates fracture healing through cell-autonomous and non-autonomous effects on osteoblasts.
    Cell and tissue research, 2017, Volume: 367, Issue:2

    Topics: Animals; Calcification, Physiologic; Cell Cycle; Cell Differentiation; Cell Line; Cell Proliferation; Cell Survival; Core Binding Factor Alpha 1 Subunit; Disease Models, Animal; Fracture Healing; Glucosides; Humans; Hypoxia-Inducible Factor 1, alpha Subunit; Mice; Osteoblasts; Osteogenesis; Phenols; Platelet Endothelial Cell Adhesion Molecule-1; Rats, Sprague-Dawley; Signal Transduction; Sp7 Transcription Factor; Transcription Factors; Transcriptional Activation; Vascular Endothelial Growth Factor A

2017
Inhibition of PHD3 by salidroside promotes neovascularization through cell-cell communications mediated by muscle-secreted angiogenic factors.
    Scientific reports, 2017, 03-07, Volume: 7

    Topics: Angiogenesis Inducing Agents; Animals; Cell Communication; Cell Line; Disease Models, Animal; Endothelial Cells; Glucosides; Hindlimb; Humans; Injections, Intramuscular; Ischemia; Mice, Inbred BALB C; Muscle Cells; Neovascularization, Physiologic; Phenols; Procollagen-Proline Dioxygenase

2017
Hepatoprotective effects of salidroside on fulminant hepatic failure induced by D-galactosamine and lipopolysaccharide in mice.
    The Journal of pharmacy and pharmacology, 2009, Volume: 61, Issue:10

    Topics: Alanine Transaminase; Animals; Antioxidants; Aspartate Aminotransferases; Caspase 3; Disease Models, Animal; Dose-Response Relationship, Drug; Galactosamine; Glucosides; Hypoxia-Inducible Factor 1, alpha Subunit; Lipopolysaccharides; Liver; Liver Failure, Acute; Male; Mice; Mice, Inbred C57BL; Nitric Oxide; Oxidative Stress; Phenols; Tumor Necrosis Factor-alpha

2009
Effect of salidroside, active principle of Rhodiola rosea extract, on binge eating.
    Physiology & behavior, 2010, 12-02, Volume: 101, Issue:5

    Topics: Analysis of Variance; Animals; Bulimia; Disease Models, Animal; Feeding Behavior; Female; Glucosides; Phenols; Phytotherapy; Plant Extracts; Rats; Rats, Sprague-Dawley; Rhodiola; Stress, Psychological

2010
Salidroside attenuates apoptosis in ischemic cardiomyocytes: a mechanism through a mitochondria-dependent pathway.
    Journal of pharmacological sciences, 2010, Volume: 114, Issue:4

    Topics: Animals; Apoptosis; bcl-2-Associated X Protein; Caspase 3; Cells, Cultured; Disease Models, Animal; Glucosides; Male; Membrane Potentials; Mitochondria, Heart; Myocardial Ischemia; Myocytes, Cardiac; Phenols; Phosphorylation; Phytotherapy; Proto-Oncogene Proteins c-akt; Proto-Oncogene Proteins c-bcl-2; Rats; Rats, Sprague-Dawley; Reactive Oxygen Species; Rhodiola; Up-Regulation

2010
Neuroprotective effects of Salidroside and its analogue tyrosol galactoside against focal cerebral ischemia in vivo and H2O2-induced neurotoxicity in vitro.
    Neurotoxicity research, 2012, Volume: 21, Issue:4

    Topics: Animals; Apoptosis Regulatory Proteins; bcl-2-Associated X Protein; Brain Ischemia; Cell Survival; Cerebral Cortex; Disease Models, Animal; Drug Administration Schedule; Galactosides; Glucosides; Hydrogen Peroxide; Infarction, Middle Cerebral Artery; Male; Neurons; Neuroprotective Agents; Oxidants; Phenols; Phenylethyl Alcohol; Primary Cell Culture; Rats; Rats, Sprague-Dawley; Reactive Oxygen Species; Reperfusion Injury

2012
Protective effects of salidroside from Rhodiola rosea on LPS-induced acute lung injury in mice.
    Immunopharmacology and immunotoxicology, 2012, Volume: 34, Issue:4

    Topics: Acute Lung Injury; Animals; Cytokines; Disease Models, Animal; Glucosides; Lipopolysaccharides; Mice; Mice, Inbred BALB C; Phenols; Rhodiola

2012
[Study on effect and mechanism of salidroside on cognitive ability of Abeta1-40 -induced Alzheimer's disease model rats].
    Zhongguo Zhong yao za zhi = Zhongguo zhongyao zazhi = China journal of Chinese materia medica, 2012, Volume: 37, Issue:14

    Topics: Alzheimer Disease; Amyloid beta-Peptides; Animals; Cognition; Disease Models, Animal; Glucosides; Male; Maze Learning; NF-kappa B; Nitric Oxide; Phenols; Rats; Receptor for Advanced Glycation End Products; Receptors, Immunologic; Superoxide Dismutase

2012
Effects of salidroside pretreatment on expression of tumor necrosis factor-alpha and permeability of blood brain barrier in rat model of focal cerebralischemia-reperfusion injury.
    Asian Pacific journal of tropical medicine, 2013, Volume: 6, Issue:2

    Topics: Animals; Blood-Brain Barrier; Brain Ischemia; Cerebral Cortex; Disease Models, Animal; Evans Blue; Gene Expression; Glucosides; Male; Phenols; Protective Agents; Random Allocation; Rats; Rats, Sprague-Dawley; Reperfusion Injury; Tumor Necrosis Factor-alpha

2013
Comparative study of Rhodiola preparations on behavioral despair of rats.
    Phytomedicine : international journal of phytotherapy and phytopharmacology, 2008, Volume: 15, Issue:1-2

    Topics: Administration, Oral; Animals; Behavior, Animal; Chromatography, High Pressure Liquid; Depression; Disaccharides; Disease Models, Animal; Dose-Response Relationship, Drug; Drug Interactions; Drug Synergism; Glucosides; Male; Molecular Structure; Phenols; Phenylethyl Alcohol; Piper nigrum; Plant Preparations; Plant Roots; Rats; Rats, Wistar; Rhodiola; Stress, Physiological

2008