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[1]赵一贺,张 畅,牛文彦.电脉冲刺激的骨骼肌细胞条件培养基逆转内皮细胞胰岛素抵抗和功能障碍[J].天津医科大学学报,2017,23(01):1-04.
 ZHAO Yi-he,ZHANG Chang,NIU Wen-yan.Conditional medium from electric pulse-stimulated C2C12 skeletal muscle cells reverses insulin resistance and endothelial dysfunction in endothelial cells[J].Journal of Tianjin Medical University,2017,23(01):1-04.
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电脉冲刺激的骨骼肌细胞条件培养基逆转内皮细胞胰岛素抵抗和功能障碍(PDF)
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《天津医科大学学报》[ISSN:1006-8147/CN:12-1259/R]

卷:
23卷
期数:
2017年01期
页码:
1-04
栏目:
基础医学
出版日期:
2017-01-16

文章信息/Info

Title:
Conditional medium from electric pulse-stimulated C2C12 skeletal muscle cells reverses insulin resistance and endothelial dysfunction

in endothelial cells

文章编号:
1006-8147(2017)01-0001-04
作者:
赵一贺张 畅牛文彦
(天津医科大学免疫学系,天津300070)
Author(s):
ZHAO Yi-he ZHANG Chang NIU Wen-yan
(Department of Immunology, Tianjin Medical University, Tianjin 300070, China)
关键词:
内皮功能障碍胰岛素抵抗炎症糖尿病
Keywords:
endothelial dysfunction insulin resistance inflammation diabetes
分类号:
R392.1
DOI:
-
文献标志码:
A
摘要:
目的:探讨电脉冲刺激的C2C12肌管细胞条件培养基对内皮细胞的影响。方法:提取常氧和缺氧培养的3T3-L1脂肪细胞上清液为条件培养基CM-N和CM-H,电脉冲刺激的C2C12肌管细胞上清液为条件培养基CM-EPS,单独或按比例混合分别孵育内皮细胞16h。Western blot 检测Akt、eNOS、IKK和NF-кB的磷酸化。结果:CM-H降低内皮细胞Akt和eNOS的磷酸化,并升高IKK和NF-кB的磷酸化。CM-EPS逆转此作用。结论:CM-EPS逆转CM-H造成的内皮细胞胰岛素抵抗并改善内皮功能。
Abstract:
Objective: To explore the effects of conditional medium from electric pulse-stimulated C2C12 myotube on endothelial insulin resistance and dysfunction. Methods: The supernatant of normoxic and hypoxic 3T3-L1 adipocytes were collected as conditional medium CM-N and CM-H, respectively. The supernatant of pulsed electrical-stimulated C2C12 myotube was collected as conditional medium CM-EPS. Endothelial cells were incubated with CM-N, CM-H and CM-EPS for 16 hours, respectively. The phosphorylation of Akt, eNOS, IKK and NF-кB in endothelial cells were analyzed by Western blot. Results: The phosphorylation of Akt and eNOS were increased significantly, and the phosphorylation of IKK and NF-кB were reduced under CM-H treatment, which were reversed by adding CM-EPS. Conclusion: CM-EPS can reverse insulin resistance in endothelial cells and improve endothelial dysfunction induced by CM-H.

参考文献/References:

[1] Hesselink M K, Schrauwen-Hinderling V, Schrauwen P. Skeletal muscle mitochondria as a target to prevent or treat type 2 diabetes mellitus[J]. Nat Rev Endocrinol, 2016,104 [Epub ahead of print]

[2]Ryder J W, Gilbert M, Zierath J R. Skeletal muscle and insulin sensitivity: pathophysiological alterations[J]. Front Biosci, 2001, 6: D154

[3]Lolmède K, Durand De Saint Front V, Galitzky J, et al. Effects of hypoxia on the expression of proangiogenic factors in differentiated 3T3-F442A adipocytes[J]. Int J Obes Relat Metab Disord, 2003, 27(10): 1187

[4]Sears D D, Miles P D, Chapman J, et al. 12/15-lipoxygenase is required for the early onset of high fat diet-induced adipose tissue inflammation and insulin resistance in mice[J]. PLoS One, 2009, 4(9): e7250

[5]Ng M, Fleming T, Robinson M, et al. Global, regional, and National prevalence of overweight and obesity in children and adults during 1980-2013: a systematic analysis for the Global Burden of Disease Study 2013[J]. Lancet, 2014, 384(9945): 766

[6]Charakida M, Khan T, Johnson W, et al. Lifelong patterns of BMI and cardiovascular phenotype in individuals aged 60-64 years in the 1946 British birth cohort study: an epidemiological study[J]. Lancet Diabetes Endocrinol, 2014, 2(8): 648

[7]Evers-Van Gogh I J, Alex S, Stienstra R, et al. Electric pulse stimulation of myotubes as an in vitro exercise model: Cell-mediated and non-cell-mediated effects[J]. Sci Rep, 2015, 5: 10944

[8]Pedersen B K, Febbraio M A. Muscles, exercise and obesity: skeletal muscle as a secretory organ[J]. Nat Rev Endocrinol, 2012, 8(8): 457

[9]Raschke S, Eckardt K, Bj?rklund Holven K, et al. Identification and validation of novel contraction-regulated myokines released from primary human skeletal muscle cells[J]. PLoS One, 2013, 8(4): e62008

[10]Nieman D C, Davis J M, Henson D A, et al. Muscle cytokine mRNA changes after 2.5 h of cycling: influence of carbohydrate[J]. Med Sci Sports Exerc, 2005, 37(8): 1283

[11]Nielsen A R, Pedersen B K. The biological roles of exercise-induced cytokines: IL-6, IL-8, and IL-15[J]. Appl Physiol Nutr Metab, 2007, 32(5): 833

[12]Bostroem P, Wu Jun, Jedrychowski M P, et al. A PGC1-alpha-dependent myokine that drives brown-fat-like development of white fat and thermogenesis[J]. Nature, 2012, 481(7382): U72

[13]Farmawati A, Kitajima Y, Nedachi Taku, et al. Characterization of contraction-induced IL-6 up-regulation using contractile C2C12 myotubes[J]. Endocr J, 2013, 60(2): 137

[14]Lee J, Bae E H, Ma S K, et al. Altered nitric oxide system in cardiovascular and renal diseases[J]. Chonnam Med J, 2016, 52(2): 81

[15]Cersosimo E, Defronzo R A. Insulin resistance and endothelial dysfunction: the road map to cardiovascular diseases[J]. Diabetes Metab Res Rev, 2006, 22(6): 423

[16]King G L, Park K, Li Qian. Selective insulin resistance and the development of cardiovascular diseases in diabetes: the 2015 edwin bierman award lecture[J]. Diabetes, 2016, 65(6): 1462

[17]Stani?i? J, Kori?anac G, ?ulafi? T, et al. Low intensity exercise prevents disturbances in rat cardiac insulin signaling and endothelial nitric oxide synthase induced by high fructose diet[J]. Mol Cell Endocrinol, 2016, 420: 97

[18]Pamukcu B, Lip G Y, Shantsila E. The nuclear factor--kappa B pathway in atherosclerosis: a potential therapeutic target for atherothrombotic vascular disease[J]. Thromb Res, 2011, 128(2): 117

[19]Libby P. Inflammation in atherosclerosis[J]. Nature, 2002, 420(6917): 868

[20]Lorenzatti A J, Retzlaff B M. Unmet needs in the management of atherosclerotic cardiovascular disease: Is there a role for emerging anti-inflammatory interventions?[J]. Int J Cardiol, 2016, 221: 581

[21]Monaco C, Andreakos E, Kiriakidis S, et al. Canonical pathway of nuclear factor kappa B activation selectively regulates proinflammatory and prothrombotic responses in human atherosclerosis[J]. Proc Natl Acad Sci U S A, 2004, 101(15): 5634

[22]Karin M, Ben-Neriah Y. Phosphorylation meets ubiquitination: the control of NF-[kappa]B activity[J]. Annu Rev Immunol, 2000, 18: 621

[23]He Qing, Yang Qing CHAN, Zhou Qin, et al. Effects of varying degrees of intermittent hypoxia on proinflammatory cytokines and adipokines in rats and 3T3-L1 adipocytes[J]. PLoS One, 2014, 9(1): e86326

[24]Tantiwong P, Shanmugasundaram K, Monroy A, et al. NF-κB activity in muscle from obese and type 2 diabetic subjects under basal and exercise-stimulated conditions[J]. Am J Physiol Endocrinol Metab, 2010, 299(5): E794

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备注/Memo

备注/Memo:
基金项目 国家自然科学基金资助项目(81170740,81161120545)
作者简介 赵一贺(1990-),男,硕士在读,研究方向:免疫学;通信作者:牛文彦,E-mail: wniu@tmu.edu.cn
更新日期/Last Update: 2017-01-15