[1] Chai D, Jiang H, Li Q. Isoflurane neurotoxicity involves activation of hypoxia inducible factor-1α via intracellular calcium in neonatal rodents [J].Brain Res, 2016, 1653:39-50.
[2] Chen X, Wang W, Zhang J, et al. Involvement of caspase-3/PTEN signaling pathway in isoflurane-induced decrease of self-renewal capacity of hippocampal neural precursor cells [J].Brain Res, 2015, 1625:275-286.
[3] Erasso DM, Camporesi EM, Mangar D, et al. Effects of isoflurane or propofol on postnatal hippocampal neurogenesis in young and aged rats [J]. Brain Res, 2013, 1530:1-12.
[4] Li SY, Xia LX, Zhao YL, et al. Minocycline mitigates isoflurane-induced cognitive impairment in aged rats [J].Brain Res, 2013, 1496:84-93.
[5] Xia T, Cui Y, Chu S, et al. Melatonin pretreatment prevents isoflurane-induced cognitive dysfunction by modulating sleep–wake rhythm in mice[J].Brain Res, 2016, 1634:12-20.
[6] Iwanishi M, Kusakabe T, Azuma C, et al. Clinical characteristics in two patients with partial lipodystrophy and Type A insulin resistance syndrome due to a novel heterozygous missense mutation in the insulin receptor gene[J].Diabetes Res Clin Pract, 2019, 152:79-87.
[7] Adnan E, Rahman IA, Faridin HP. Relationship between insulin resistance, metabolic syndrome components and serum uric acid [J]. Diabetes Metab Syndr, 2019,13(3):2158-2162.
[8] Ramalingayya GV, Sonawane V, Cheruku SP, et al. Insulin protects brain oxidative stress with an apparent effect on the episodic memory in doxorubicin-induced cognitive dysfunction in Wistar rats[J]. J Environ Pathol Toxicol Oncol, 2017, 36(2):121-130.
[9] Kim GH, Lee JJ, Lee SH, et al. Exposure of isoflurane-treated cells to hyperoxia decreases cell viability and activates the mitochondrial apoptotic pathway [J].Brain Res, 2016, 1636:13-20.
[10] Shan L, Ma D, Zhang C, et al. miRNAs may regulate GABAergic transmission associated genes in aged rats with anesthetics-induced recognition and working memory dysfunction [J].Brain Res, 2017, 1670:191-200.
[11] Weiss HR, Chi OZ, Kiss GK, et al. Akt activation improves microregional oxygen supply/consumption balance after cerebral ischemia-reperfusion [J].Brain Res, 2018, 1683:48-54.
[12] Singer E, Walter C, Fabbro D, et al. Brain-penetrant PQR620 mTOR and PQR530 PI3K/mTOR inhibitor reduce huntingtin levels in cell models of HD [J]. Neuropharmacology, 2020, 162: 107812.
[13] Bircan HA, Gurbuz N, Pataer A, et al. Elongation factor-2 kinase (eEF-2K) expression is associated with poor patient survival and promotes proliferation, invasion and tumor growth of lung cancer[J]. Lung Cancer, 2018, 124:31-39.
[14] Wei C, Sun Y, Chen N, et al. Interaction of oxidative stress and BDNF on executive dysfunction in patients with chronic schizophrenia[J]. Psychoneuroendocrinology, 2020, 111:104473.
[15] Bawari S, Tewari D, Argüelles S, et al. Targeting BDNF signaling by natural products: Novel synaptic repair the apeutics for neurodegeneration and behavior disorders [J]. Pharmacol Res, 2019, 148:104458.
[16] Chen X, Wang X, Yang Y, et al. Schwann cells protect against CaMKII-and PKA-dependent Acrylamideinduced Synapsin Ⅰ phosphorylation[J]. Brain Res, 2018, 1701:18-27.
[17] H?ltje M, Mertens R, Schou MB, et al. Synapsin-antibodies in psychiatric and neurological disorders: Prevalence and clinical findings [J]. Brain Behav Immun, 2017, 66:125-134.
[18] Matt L, Kim K, Hergarden AC, et al. α-Actinin anchors PSD-95 at postsynaptic sites [J].Neuron, 2018, 97(5):1094-1109.
[19] Zhu J, Zhou Q, Shang Y, et al. Synaptic targeting and function of SAPAPs mediated by phosphorylation-dependent binding to PSD-95 MAGUKs[J]. Cell Rep, 2017, 21(13):3781-3793.
[20] Liu Z, Huang Y, Liu L, et al. Inhibitions of PKC and CaMK-Ⅱ synergistically rescue ischemia-induced astrocytic dysfunction [J]. Neurosci Lett, 2017, 657: 199-203.
[21] Wen X, Lai X, Li X, et al. The effects of ropivacaine hydrochloride on the expression of CaMK Ⅱ mRNA in the dorsal root ganglion neurons [J]. Biomed Pharmacother, 2016, 84:2014-2019.
[22] Wang TT, Chen ZhCh, Ye Y, et al. Structure of calcium/calmodulin-dependent protein kinase type Ⅱ and its role in the nervous system [J]. Acta Anatomica Sinica, 2019,50(3):395-399. (in Chinese)
王彤彤,陈治池,叶鑫,等.钙调蛋白激酶Ⅱ的结构及其在神经系统中的作用[J].解剖学报,2019,50(3):395-399.
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