[1] Long CL, Qin XC, Pan ZY, et al. Activation of ATP-sensitive potassium channels protects vascular endothelial cells from hypertension and renal injury induced by hyperuricemia[J]. J Hypertens, 2008, 26(12): 2326-2338. [2] 覃秀川. 埃他卡林对高尿酸血症所致高血压和肾脏损伤的影响及其血管内皮功能保护作用的研究[D]. 中国人民解放军军医进修学院, 2006. [3] Wang H, Long CL, Duan Z, et al. A new ATP-sensitive potassium channel opener protects endothelial function in cultured aortic endothelial cells[J]. Cardiovasc Res, 2007, 73(3): 497-503. [4] Xue H, Zhang YL, Liu GS, et al. A new ATP-sensitive potassium channel opener protects the kidney from hypertensive damage in spontaneously hypertensive rats[J]. J Pharmacol Exp Ther, 2005, 315(2): 501-509. [5] Lv CY, Long CL, Gao JY, et al. Protection of iptakalim hydrochloride on renal ischemia-reperfusion injury in rats[J]. Int J Pharm Res, 2008, 35(2): 81-86. [6] Carmines PK, Fujiwara K. Altered electromechanical coupling in the rena microvasculature during the early stage of diabetes mellitus[J]. Clin Exp Pharmacol Physiol, 2002, 29(1-2): 143-148. [7] Kenaga H, Bast JP, Fallet RW, et al. Exaggerated impact of ATP-sensitive K+ channels on afferent arteriolar diameter in diabetes mellitus[J]. J Am Soc Nephrol, 2000, 11(7): 1199-1207. [8] Sgard F, Faure C, Drieu la Rochelle C, et al. Regulation of ATP-sensitive potassium channel mRNA expression in rat kidney following ischemic injury[J]. Biochem Biophys Res Commun, 2000, 269(2): 618-622. [9] 李雪姣, 史国辉, 杨秀红. 钾离子通道与高血压肾损害[J]. 慢性病学杂志, 2022, 23(4): 501-504. [10] Zhou M, He HJ, Suzuki R, et al. Expression of ATP sensitive K+ channel subunit Kir6.1 in rat kidney[J]. Eur J Histochem, 2007, 51(1): 43-51. [11] Zhou M, He HJ, Tanaka O, et al. Localization of the sulphonylurea receptor subunits, SUR2A and SUR2B, in rat renal tubular epithelium[J]. Tohoku J Exp Med, 2008, 214(3): 247-256. [12] Szamosfalvi B, Cortes P, Alviani R, et al. Putative subunits of the rat mesangial KATP: A type 2B sulfonylurea receptor and an inwardly rectifying K+ channel[J]. Kidney Int, 2002, 61(5): 1739-1749. [13] Seino S, Miki T. Physiological and pathophysiological roles of ATP-sensitive K+ channels[J]. Prog Biophys Mol Biol, 2003, 81(2): 133-176. [14] 张 贝. KATP在高糖诱导的肾系膜细胞增殖和基质蛋白合成中的作用[D]. 第二军医大学, 2017. [15] 王宏杨. 二苯乙烯苷对糖尿病肾病大鼠肾脏SUR2B/Kir6.1mRNA表达变化的干预作用[D]. 黑龙江省中医药科学院, 2019. [16] 赵宏肾. 肾脏小管上皮细胞ATP敏感性钾通道研究进展[J]. 四川解剖学杂志, 2004(2): 123-124. [17] 陈玉萍, 崔文玉, 汪 海. 埃他卡林对KATP通道亚型选择性作用的研究[J]. 中国药理学通报, 2006, 22(3): 278-284. [18] 王广能, 曾高峰. ATP敏感性钾通道的靶向治疗研究进展[J]. 西南军医, 2018, 20(2): 160-163. [19] Mimuro T, Kawata T, Onuki T, et al. The attenuated effect of ATP-sensitive K+ channel opener pinacidil on renal haemodynamics in spontaneously hypertensive rats[J]. Eur J Pharmacol, 1998, 358(2): 153-160. [20] Zhao Y, Wang H. Activation of SUR2B/Kir6.1-type KATP channels protects glomerular endothelial, mesangial and tubular epithelial cells against oleic acid renal damage[J]. J Appl Physiol, 2012, 28(6): 572-576. [21] Ohya Y, Setoguchi M, Fujii K, et al. Impaired action of levcromakalim on ATP-sensitive K+ channel in mesenteric artery cells from spontaneously hypertensive rats[J]. Hypertension, 1996, 27(6): 1234-1239. [22] 赵 坤. 化浊汤改善2型糖尿病合并高尿酸血症患者内皮功能的临床及实验研究[D]. 山东中医药大学, 2015. [23] 赵 颖, 汪 海. 尿酸肾损伤发病机制及埃他卡林防治尿酸肾损伤的作用靶标[J]. 中国药理学与毒理学杂志, 2011, 25(1): 119-122. [24] 谢婷妃. 尿酸诱导HK-2细胞炎症损伤中PI3K/AKT/NF-κB信号通路的调控机制[D]. 南方医科大学, 2021. [25] 杨兴燕. 白藜芦醇在高尿酸诱导肾小管上皮细胞—间充质细胞转分化中的作用及机制研究[D]. 南方医科大学, 2018. [26] Valen G, Yan ZQ, Hansson GK. Nuclear factor kappa-B and the heart[J]. J Am Coll Cardiol, 2001, 38(2): 307-314. [27] 赵运旺. NF-κB信号通路研究进展[J]. 甘肃科技, 2016, 32(21): 117-123. |