Protective effect of liquiritigenin against methylglyoxal cytotoxicity in osteoblastic MC3T3-E1 cells

被引:13
作者
Suh, Kwang Sik [1 ]
Rhee, Sang Youl [2 ]
Kim, Young Seol [2 ]
Choi, Eun Mi [3 ]
机构
[1] Kyung Hee Univ Hosp, Res Inst Endocrinol, Seoul 130702, South Korea
[2] Kyung Hee Univ, Sch Med, Dept Endocrinol & Metab, Seoul 130701, South Korea
[3] Kyung Hee Univ, Dept Food & Nutr, Seoul 130701, South Korea
基金
新加坡国家研究基金会;
关键词
GLYCATION END-PRODUCTS; ESTROGEN-RECEPTOR-BETA; MITOCHONDRIAL BIOGENESIS; OXIDATIVE STRESS; GLYOXALASE-I; PEROXYNITRITE PRODUCTION; GLYCYRRHIZAE-RADIX; ENDOTHELIAL-CELLS; FREE-RADICALS; NITRIC-OXIDE;
D O I
10.1039/c4fo00127c
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Methylglyoxal (MG), a reactive dicarbonyl compound, is a metabolic byproduct of glycolysis and elevated MG levels contribute to diabetic complications. Glycation reactions of MG with amino acids can induce oxidative stress, leading to subsequent cytotoxicity. In the present study, the effect of liquiritigenin on MG-induced cytotoxicity was investigated using osteoblastic MC3T3-E1 cells. Pretreatment of MC3T3-E1 cells with liquiritigenin prevented the MG-induced cell death and production of protein adduct, intracellular reactive oxygen species, mitochondrial superoxide, cardiolipin peroxidation, and TNF-alpha in osteoblastic MC3T3-E1 cells. In addition, liquiritigenin increased the activity of glyoxalase I inhibited by MG. These findings suggest that liquiritigenin provides a protective action against MG-induced cell damage by reducing oxidative stress and by increasing MG detoxification. Pretreatment with liquiritigenin prior to MG exposure reduced MG-induced mitochondrial dysfunction by preventing mitochondrial membrane potential dissipation and adenosine triphosphate loss. Additionally, the nitric oxide and PGC-1 alpha levels were significantly increased by liquiritigenin, suggesting that liquiritigenin may induce mitochondrial biogenesis. Our findings indicate that liquiritigenin might exert its therapeutic effects via enhancement of glyoxalase I activity and mitochondrial function, and anti-oxidant and anti-inflammatory activities. Taken together, liquiritigenin has potential as a preventive agent against the development of diabetic osteopathy related to MG-induced oxidative stress in diabetes.
引用
收藏
页码:1432 / 1440
页数:9
相关论文
共 63 条
[1]   The Krebs Cycle and Mitochondrial Mass Are Early Victims of Endothelial Dysfunction Proteomic Approach [J].
Addabbo, Francesco ;
Ratliff, Brian ;
Park, Hyeong-Cheon ;
Kuo, Mei-Chuan ;
Ungvari, Zoltan ;
Ciszar, Anna ;
Krasnikof, Boris ;
Sodhi, Kornal ;
Zhang, Fung ;
Nasjletti, Alberto ;
Goligorsky, Michael S. .
AMERICAN JOURNAL OF PATHOLOGY, 2009, 174 (01) :34-43
[2]   Inflammatory process in type 2 diabetes - The role of cytokines [J].
Alexandraki, Krystallenia ;
Piperi, Christina ;
Kalofoutis, Christos ;
Singh, Jaipaul ;
Alaveras, Antonis ;
Kalofoutis, Anastasios .
DIABETES MELLITUS AND ITS COMPLICATIONS: MOLECULAR MECHANISMS, EPIDEMIOLOGY, AND CLINICAL MEDICINE, 2006, 1084 :89-117
[3]   Proteomic analysis defines altered cellular redox pathways and advanced glycation end-product metabolism in glomeruli of db/db diabetic mice [J].
Barati, Michelle T. ;
Merchant, Michael L. ;
Kain, Angela B. ;
Jevans, Anthony W. ;
McLeish, Kenneth R. ;
Klein, Jon B. .
AMERICAN JOURNAL OF PHYSIOLOGY-RENAL PHYSIOLOGY, 2007, 293 (04) :F1157-F1165
[4]   Methylglyoxal administration induces diabetes-like microvascular changes and perturbs the healing process of cutaneous wounds [J].
Berlanga, J ;
Cibrian, D ;
Guillén, I ;
Freyre, F ;
Alba, JS ;
Lopez-Saura, P ;
Merino, N ;
Aldama, A ;
Quintela, AM ;
Triana, ME ;
Montequin, JF ;
Ajamieh, H ;
Urquiza, D ;
Ahmed, N ;
Thornalley, PJ .
CLINICAL SCIENCE, 2005, 109 (01) :83-95
[5]   Selective inhibition of mitochondrial respiration and glycolysis in human leukaemic leucocytes by methylglyoxal [J].
Biswas, S ;
Ray, M ;
Misra, S ;
Dutta, DP ;
Ray, S .
BIOCHEMICAL JOURNAL, 1997, 323 :343-348
[6]   Overexpression of Glyoxalase-I Reduces Hyperglycemia-induced Levels of Advanced Glycation End Products and Oxidative Stress in Diabetic Rats [J].
Brouwers, Olaf ;
Niessen, Petra M. ;
Ferreira, Isabel ;
Miyata, Toshio ;
Scheffer, Peter G. ;
Teerlink, Tom ;
Schrauwen, Patrick ;
Brownlee, Michael ;
Stehouwer, Coen D. ;
Schalkwijk, Casper G. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2011, 286 (02) :1374-1380
[7]   Controlling oxidative stress as a novel molecular approach to protecting the vascular wall in diabetes [J].
Ceriello, Antonio .
CURRENT OPINION IN LIPIDOLOGY, 2006, 17 (05) :510-518
[8]   Apoptotic signaling in methylglyoxal-treated human osteoblasts involves oxidative stress, c-jun N-terminal kinase, caspase-3, and p21-activated kinase 2 [J].
Chan, Wen-Hsiung ;
Wu, Hsin-Jung ;
Shiao, Nion-Heng .
JOURNAL OF CELLULAR BIOCHEMISTRY, 2007, 100 (04) :1056-1069
[9]   Methylglyoxal-induced nitric oxide and peroxynitrite production in vascular smooth muscle cells [J].
Chang, TJ ;
Wang, R ;
Wu, LY .
FREE RADICAL BIOLOGY AND MEDICINE, 2005, 38 (02) :286-293
[10]   Liquiritigenin isolated from Glycyrrhiza uralensis stimulates osteoblast function in osteoblastic MC3T3-E1 cells [J].
Choi, Eun Mi .
INTERNATIONAL IMMUNOPHARMACOLOGY, 2012, 12 (01) :139-143