山东大学学报(医学版) ›› 2016, Vol. 54 ›› Issue (2): 11-15.doi: 10.6040/j.issn.1671-7554.0.2015.513
王立轩1*,张璐2*,许新2,李思雪2,刘敏3,王亚萍3,马慧娟3,4
WANG Lixuan1*, ZHANG Lu2*, XU Xin2, LI Sixue2, LIU Min3, WANG Yaping3, MA Huijuan3,4
摘要: 目的 探讨慢性间歇性低压低氧(CIHH)对大鼠胸主动脉环舒张活动的影响及其一氧化氮相关机制。 方法 成年雄性SD大鼠80只,随机分为对照组(CN组)和慢性间歇性低压低氧组(CIHH组),每组40只。CIHH组给予模拟海拔5 000 m(PB=404 mmHg,PO2=84 mmHg)的低压低氧处理,6 h/d,共28 d。对照组处于常压常氧环境,平行饲养。应用离体血管环灌流记录胸主动脉的舒缩活动;采用Western blotting法检测胸主动脉组织中eNOS和PI3K的表达水平。 结果 与CN组相比,CIHH组乙酰胆碱引起的胸主动脉舒张明显增强(P<0.05),胸主动脉组织中eNOS的表达增多(P<0.05);MEK阻断剂PD98059孵育,对CN组和CIHH组无影响;PI3K阻断剂LY294002孵育,可阻断CIHH组胸主动脉舒张增强和eNOS表达增多(P<0.05);且CIHH组胸主动脉组织中PI3K的表达升高(P<0.05)。 结论 CIHH处理可通过PI3K途径活化血管内皮eNOS,增强乙酰胆碱诱导的大鼠胸主动脉舒张。
中图分类号:
[1] 张翼, 杨黄恬, 周兆年. 间歇性低氧适应的心脏保护[J]. 生理学报, 2007, 59(5):601-613. ZHANG Yi, YANG Huangtian, ZHOU Zhaonian. The cardioprotection of intermittent hypoxic adaptation[J]. Acta Physiologica Sinica, 2007, 59(5):601-613. [2] Roels B, Bentley DJ, Coste O, et al. Effects of intermittent hypoxic training on cycling performance in well-trained athletes[J]. Eur J Appl Physiol, 2007, 10(3):359-368. [3] Serebrovskaya TV, Nosar VI, Bratus LV, et al. Tissue oxygenation and mitochondrial respiration under different modes of intermittent hypoxia [J]. High Alt Med Biol, 2013, 14(3):280-288. [4] Katiukhin VN, Ochirova A. Change of sensitivity to hypotensive treatment under the effect of intermittent altitude hypoxia[J]. Vrach Delo, 1979, 1(1):32-35. [5] Xu P, Cao XB, Gao L, et al. Inhibition of carotid sinus baroreflex in neonatal rats exposed to chronic intermittent hypobaric hypoxia[J]. Chin J Physiol, 2014, 57(6):343-349. [6] Tepavcevic S, Milutinovic DV, Macut D, et al. Cardiac nitric oxide synthases and Na+/K+-aTPase in the rat model of polycystic ovary syndrome induced by dihydrotestosterone[J]. Exp Clin Endocrinol Diabetes, 2015, 123(5):303-307. [7] Liu H, Wang L, Ma H, et al. Coumestrol inhibits carotid sinus baroreceptor activity by cAMP/PKA dependent nitric oxide release in anesthetized male rats [J]. Biochem Pharmacol, 2015, 93(1):42-48. [8] Nagai H, Kuwahira I, Schwenke DO, et al. Beta2-Adrenergic receptor-dependent attenuation of hypoxic pulmonary vasoconstriction prevents progression of pulmonary arterial hypertension in intermittent hypoxic rats[J]. PLoS One, 2014, 9(10):110693. doi:10.1371/journal.pone.011693. [9] Shafiei M, Mahmoudian M. Atypical beta-adrenoceptors of rat thoracic aorta[J]. Gen Pharmacol, 1999, 32(5):557-562. [10] Chen H, Shi B, Feng X, et al. Leptin and NAP2 promote mesenchymal stem cell senescence through activation of PI3K/Akt pathway in patients with systemic lupus erythematosus[J]. Arthritis Rheumatol, 2015, 67(9):2383-2393. [11] Ning WH, Zhao K. Propionyl-L-carnitine induces eNOS activation and nitric oxide synthesis in endothelial cells via PI3 and Akt kinases[J]. Vascul Pharmacol, 2013, 59(3-4):76-82. [12] Zhang Y, Zhou ZN. Beneficial effects of intermittent hypobaric hypoxia on the body[J]. Chinese Journal of Applied Physiology, 2012, 28(6):504-509. [13] Zhen JL, Wang WP, Zhou JJ, et al. Chronic intermittent hypoxic preconditioning suppresses pilocarpine-induced seizures and associated hippocampal neurodegeneration[J]. Brain Res, 2014, 1563:122-130. doi:10.1016/j.brainres.2014.03.032. [14] Yuan F, Teng X, Guo Z, et al. Chronic intermittent hypobaric hypoxia ameliorates endoplasmic reticulum stress mediated liver damage induced by fructose in rats[J]. Life Sci, 2015, 121:40-45. doi:10.1016/j.lfs.2014.11.019. [15] Li XF, Wan TT, Sun YM, et al. Na+/Ca2+ exchanger inhibitor restores endothelium-dependent relaxation in diabetic rat aorta[J]. Exp Clin Endocrinol Diabetes, 2015, 123(7):394-397. [16] 姜秀峰, 苏梅, 丁文筱, 等. 慢性间歇低氧对大鼠心血管系统的影响及脂联素的保护作用[J]. 中华结核和呼吸杂志, 2014, 37(12):888-892. JIANG Xiufeng, SU Mei, DING Wenxiao, et al. A study on rat cardiovascular injury induced by intermittent hypoxia and the protective role of adiponectin[J]. Chinese Journal of Tuberculosis and Respiratory Diseases, 2014, 37(12):888-892. [17] 张凤伟, 吴树明, 曹广庆, 等. eNOS基因转染治疗兔肺动脉高压及肺动脉高压危象[J]. 山东大学学报(医学版), 2010, 49(9):19-24. ZHANG Fengwei, WU Shuming, CAO Guangqing, et al. eNOS gene transfection on pulmonary artery hypertension and hypertension crisis in rabbits[J]. Journal of Shandong University(Health Sciences), 2010, 49(9):19-24. [18] 冯晓丽, 朱晓波, 陈欧, 等. 腺病毒介导eNOS转染高肺血流肺动脉高压大鼠模型的研究[J]. 山东大学学报(医学版), 2010, 49(1):70-73. FENG Xiaoli, ZHU Xiaobo, CHEN Ou, et al. Effect of adenovirus-mediated human endothelial nitric oxide synthase gene transfection on pulmonary hypertension rat model induced by high pulmonary blood flow[J]. Journal of Shandong University(Health Sciences), 2010, 49(1):70-73. [19] Reddy GR, Subramanian H, Birk A, et al. Adenylyl cyclases 5 and 6 underlie PIP3-dependent regulation[J]. FASEB J, 2015, 29(8):3458-3471. [20] Kimmoun A, Louis H, Kattani NA, et al. β1-Adrenergic inhibition improves cardiac and vascular unction in experimental septic shock [J]. Crit Care Med, 2015, 43(9):332-340. |
[1] | 朱裕华1,袁红花2,吴连连2,胡安康1,陈仁金1,朱孝荣1. IGF-1通过PI3K/Akt信号通路诱导神经干细胞向神经元分化[J]. 山东大学学报(医学版), 2014, 52(3): 11-15. |
[2] | 刘硕硕,张斌,郭婷婷,董肖婷. PTEN基因转染对人舌鳞癌细胞系SCC-4凋亡的影响及其作用机制[J]. 山东大学学报(医学版), 2013, 51(1): 42-45. |
|