参考文献/References:
[1] Stone PH,Libby P,Boden WE. Fundamental pathobiology of coronary atherosclerosis and clinical implications for chronic ischemic heart disease management-the plaque hypothesis:a narrative review[J]. JAMA Cardiol,2023,8(2):192-201.
[2] Jensen RV,Hjortbak MV,B?tker HE. Ischemic heart disease:an update[J]. Semin Nucl Med,2020,50(3):195-207.
[3] Gao S,Gao H,Dai L,et al. miR-126 regulates angiogenesis in myocardial ischemia by targeting HIF-1α [J]. Exp Cell Res,2021,409(2):112925.
[4] Rakhshan K,Sharifi M,Ramezani F,et al. ERK/HIF-1α/VEGF pathway:a molecular target of ELABELA(ELA) peptide for attenuating cardiac ischemia-reperfusion injury in rats by promoting angiogenesis[J]. Mol Biol Rep,2022,49(11):10509-10519.
[5] Gulati R,Behfar A,Narula J,et al. Acute myocardial infarction in young individuals[J]. Mayo Clin Proc,2020,95(1):136-156.
[6] Nüsslein-Volhard C,Wieschaus E. Mutations affecting segment number and polarity in Drosophila[J]. Nature,1980,287(5785):795-801.
[7] Lézot F,Corre I,Morice S,et al. SHH signaling pathway drives pediatric bone sarcoma progression[J]. Cells,2020,9(3):536.
[8] 曲锋,张锦峰. 槐耳多糖调Shh-Gli1信号通路对肺癌细胞增殖、凋亡和血管生成的影响[J]. 中国临床药理学杂志,2024,40(7):990-993.
[9] Brennan D,Chen X,Cheng L,et al. Noncanonical h edgehog signaling[J]. Vitam Horm,2012,88:55-72.
[10] Huang A,Xu T,Lu X,et al. Shh-Gli2-Runx2 inhibits vascular calcification[J]. Nephrol Dial Transplant,2024,39(2):305-316.
[11] Ji H,Miao J,Zhang X,et al. Inhibition of sonic hedgehog signaling aggravates brain damage associated with the down-regulation of Gli1,Ptch1 and SOD1 expression in acute ischemic stroke[J]. Neurosci Lett,2012,506(1):1-6.
[12] Dai RL,Zhu SY,Xia YP,et al. Sonic hedgehog protects cortical neurons against oxidative stress[J]. Neurochem Res,2011,36(1):67-75.
[13] 陈瑶,余细勇. Hedgehog通路对心肌梗死及心肌细胞缺血缺氧的作用机制研究[J]. 中国药理学通报,2016,32(5):676-681.
[14] Feng L,Lai QM,Zhou GM,et al. Simvastatin relieves myocardial ischemia/reperfusion injury in rats through hedgehog signaling pathway[J]. Eur Rev Med Pharmacol Sci,2020,24(11):6400-6408.
[15] Mohan M,Mannan A,Singh TG. Therapeutic implication of sonic hedgehog as a potential modulator in ischemic injury[J]. Pharmacol Rep,2023,75(4):838-860.
[16] Vilela EM,Fontes-Carvalho R. Inflammation and ischemic heart disease:the next therapeutic target?[J]. Rev Port Cardiol (Engl Ed),2021,40(10):785-796.
[17] 赵小亚,杨娅,肖青. 音猬因子通路激活对缺氧心肌细胞损伤的作用[J]. 广东医学,2015,36(23):3595-3597.
[18] Wang L,Yan W,Wang J. Silencing MEKK3 attenuates cardiomyocyte injury caused by hypoxia/reoxygenation via the sonic hedgehog pathway[J]. J Cell Physiol,2019,234(9):15206-15214.
[19] Bertheloot D,Latz E,Franklin BS. Necroptosis,pyroptosis and apoptosis:an intricate game of cell death[J]. Cell Mol Immunol,2021,18(5):1106-1121.
[20] Ghanizadeh A. Malondialdehyde,Bcl-2,superoxide dismutase and glutathione peroxidase may mediate the association of sonic hedgehog protein and oxidative stress in autism[J]. Neurochem Res,2012,37(4):899-901.
[21] 桑晶,李璐,姜洁,等. 茯苓酸对大鼠心肌缺血再灌注损伤的影响机制研究[J]. 局解手术学杂志,2023,32(10):859-864.
[22] Regl G,Kasper M,Schnidar H,et al. Activation of the BCL2 promoter in response to Hedgehog/GLI signal transduction is predominantly mediated by GLI2[J]. Cancer Res,2004,64(21):7724-7731.
[23] Li SJ,Mei QH,Zeng SY,et al. Protective effect of sonic hedgehog signaling pathway activation on acute myocardial infarction[J]. J Biol Regul Homeost Agents,2020,34(2):367-378.
[24] Lang Z,Fan X,Lin H,et al. Silencing of SNHG6 alleviates hypoxia/reoxygenation-induced cardiomyocyte apoptosis by modulating miR-135a-5p/HIF1AN to activate Shh/Gli1 signalling pathway[J]. J Pharm Pharmacol,2021,73(1):22-31.
[25] Yang X,Jin N,Wang Y,et al. Macroautophagy supports Sonic Hedgehog signaling by promoting Patched1 degradation[J]. Biochim Biophys Acta Mol Cell Res,2021,1868(12):119124.
[26] Xiao Q,Yang Y,Qin Y,et al. AMP-activated protein kinase-dependent autophagy mediated the protective effect of sonic hedgehog pathway on oxygen glucose deprivation-induced injury of cardiomyocytes[J]. Biochem Biophys Res Commun,2015,457(3):419-425.
[27] 董彬昌,岳佳敏,刘长梅,等. 单体C反应蛋白介导的hedgehog通路对急性心肌梗死心功能的影响[J]. 滨州医学院学报,2023,46(4):253-258.
[28] Zhang ZW,Teng X,Zhao F,et al. METTL3 regulates m6A methylation of PTCH1 and GLI2 in Sonic hedgehog signaling to promote tumor progression in SHH-medulloblastoma[J]. Cell Rep,2022,41(4):111530.
[29] Kusano KF,Pola R,Murayama T,et al. Sonic hedgehog myocardial gene therapy:tissue repair through transient reconstitution of embryonic signaling[J]. Nat Med,2005,11(11):1197-1204.
[30] 朱宝华,孙艳君,李敏. 微小RNA-92a调控音猥因子途径对心肌缺血再灌注损伤后促血管再生的影响及机制[J]. 中华老年心脑血管病杂志,2023,25(10):1083-1087.
[31] 王琮翰,黄毅. 隐丹参酮调节Shh/Gli1信号通路对急性心肌梗死大鼠心肌损伤的影响[J].陕西医学杂志,2024,53(10):1299-1304,1308.
[32] Xiao Q,Hou N,Wang YP,et al. Impaired sonic hedgehog pathway contributes to cardiac dysfunction in type 1 diabetic mice with myocardial infarction[J]. Cardiovasc Res,2012,95(4):507-516.
[33] Carbe CJ,Cheng L,Addya S,et al. Gi proteins mediate activation of the canonical hedgehog pathway in the myocardium[J]. Am J Physiol Heart Circ Physiol,2014,307(1):H66-H72.
[34] Huang H,Weng Y,Tian W,et al. Molecular mechanisms of pyroptosis and its role in anti-tumor immunity[J]. Int J Biol Sci,2023,19(13):4166-4180.
[35] 廉明,公方娜,赵王磊. SHH/GLI1信号通路调控巨噬细胞焦亡参与急性心肌梗死的分子机制[J]. 河北医学,2024,30(12):1982-1987.
[36] Li MR,Lu LQ,Zhang YY,et al. Sonic hedgehog signaling facilitates pyroptosis in mouse heart following ischemia/reperfusion via enhancing the formation of CARD10-BCL10-MALT1 complex[J]. E ur J Pharmacol,2024,984:177019.
[37] Giarretta I,Gaetani E,Bigossi M,et al. The hedgehog signaling pathway in ischemic tissues[J]. Int J Mol Sci,2019,20(21):5270.
[38]Mackie AR,Klyachko E,Thorne T,et al. Sonic hedgehog-modified human CD34+ cells preserve cardiac function after acute myocardial infarction[J]. Circ Res,2012,111(3):312-321.
[39] Xiao Q,Yang YA,Zhao XY,et al. Oxidative stress contributes to the impaired sonic hedgehog pathway in type 1 diabetic mice with myocardial infarction[J]. Exp Ther Med,2015,10(5):1750-1758.
[40] Johnson NR,Wang Y. Controlled delivery of sonic hedgehog morphogen and its potential for cardiac repair[J]. PLoS One,2013,8(5):e63075.
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