[1] |
Hoste EAJ, Kellum JA, Selby NM, et al. Global epidemiology and outcomes of acute kidney injury [J]. Nat Rev Nephrol, 2018, 14(10): 607-625.
|
[2] |
蔡广研,陈香美. 战创伤及特殊作业环境相关急性肾损伤的防治 [J]. 解放军医学杂志,2019, 44(7): 546-549.
|
[3] |
Lee SA, Cozzi M, Bush EL, et al. Distant organ dysfunction in acute kidney injury: a review [J]. Am J Kidney Dis, 2018, 72(6): 846-856.
|
[4] |
Shiao C, Wu P, Huang T, et al. Long-term remote organ consequences following acute kidney injury [J]. Crit Care, 2015, 19: 438.
|
[5] |
冯哲,陈香美. 急性肾损伤导致远隔器官功能障碍的机制 [J/CD]. 中华肾病研究电子杂志,2015, 4(3): 155-159.
|
[6] |
宫铭,陈香美. 急性肾损伤后脑损伤的研究进展 [J/CD]. 中华肾病研究电子杂志,2021, 10(1): 40-43.
|
[7] |
Tsai H, Yen R, Lin C, et al. Increased risk of dementia in patients hospitalized with acute kidney injury: a nationwide population-based cohort study [J]. PLoS One, 2017, 12(2): e171671.
|
[8] |
Susantitaphong P, Cruz DN, Cerda J, et al. World incidence of AKI: a meta-analysis [J]. Clin J Am Soc Nephrol, 2013, 8(9): 1482-1493.
|
[9] |
Kao CC, Yang WS, Fang JT, et al. Remote organ failure in acute kidney injury [J]. J Formos Med Assoc, 2019, 118(5): 859-866.
|
[10] |
Zhao L, Cao X, Li L, et al. Acute kidney injury sensitizes the brain vasculature to Ang II (angiotensin II) constriction via FGFBP1 (fibroblast growth factor binding protein 1) [J]. Hypertension, 2020, 76(6): 1924-1934.
|
[11] |
Malek M. Brain consequences of acute kidney injury: focusing on the hippocampus [J]. Kidney Res Clin Pract, 2018, 37(4): 315-322.
|
[12] |
Tanaka S, Okusa MD. Crosstalk between the nervous system and the kidney [J]. Kidney Int, 2020, 97(3): 466-476.
|
[13] |
Chou A, Lee C, Chen C, et al. Hippocampal transcriptional dysregulation after renal ischemia and reperfusion [J]. Brain Res, 2014, 1582: 197-210.
|
[14] |
Firouzjaei MA, Haghani M, Shid Moosavi SM. Renal ischemia/reperfusion induced learning and memory deficit in the rat: insights into underlying molecular and cellular mechanisms [J]. Brain Res, 2019, 1719: 263-273.
|
[15] |
Kovalcíková A, Gyurászová M, Vavrincová-Yaghi D, et al. Oxidative stress in the brain caused by acute kidney injury [J]. Metab Brain Dis, 2018, 33(3): 961-967.
|
[16] |
Yu F, Liang H, Xin S. Renal ischemia reperfusion cause brain hippocampus oxidative damage and inhibition effect [J]. Afr J Tradit Complement Altern Med, 2016, 13(5): 61-66.
|
[17] |
Rosenfeld CS, Ferguson SA. Barnes maze testing strategies with small and large rodent models [J]. J Vis Exp, 2014, 84: e51194.
|
[18] |
Pitts MW. Barnes maze procedure for spatial learning and memory in mice [J]. Bio Protoc, 2018, 8(5): e2744.
|
[19] |
Gawel K, Gibula E, Marszalek-Grabska M, et al. Assessment of spatial learning and memory in the Barnes maze task in rodents-methodological consideration [J]. Naunyn Schmiedebergs Arch Pharmacol, 2019, 392(1): 1-18.
|
[20] |
Franca M, Ramos R, Oliveira WH, et al. Tadalafil restores long-term memory and synaptic plasticity in mice with hepatic encephalopathy [J]. Toxicol Appl Pharmacol, 2019, 379: 114673.
|
[21] |
Tahamtan M, Moosavi SMS, Sheibani V, et al. Erythropoietin attenuates motor impairments induced by bilateral renal ischemia/reperfusion in rats [J]. Fundam Clin Pharmacol, 2016, 30(6): 502-510.
|
[22] |
Seibenhener ML, Wooten MC. Use of the open field maze to measure locomotor and anxiety-like behavior in mice [J]. J Vis Exp, 2015, 96: e52434.
|
[23] |
Kuniishi H, Ichisaka S, Yamamoto M, et al. Early deprivation increases high-leaning behavior, a novel anxiety-like behavior, in the open field test in rats [J]. Neurosci Res, 2017, 123: 27-35.
|
[24] |
Gao N, Zheng W, Murezati T, et al. GW117: a novel serotonin (5-HT2C) receptor antagonist and melatonin (MT1/MT2) receptor agonist with potential antidepressant-like activity in rodents [J]. CNS Neurosci Ther, 2021, Epub ahead of print.
|
[25] |
Can A, Dao DT, Terrillion CE, et al. The tail suspension test [J]. J Vis Exp, 2012, 59: e3769.
|