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91.
Xue Yao Yan Zhang Jian Hao Hui-Quan Duan Chen-Xi Zhao Chao Sun Bo Li Bao-You Fan Xu Wang Wen-Xiang Li Xuan-Hao Fu Yong Hu Chang Liu Xiao-Hong Kong Shi-Qing Feng 《中国神经再生研究》2019,(3)
Ferroptosis is an iron-dependent novel cell death pathway. Deferoxamine, a ferroptosis inhibitor, has been reported to promote spinal cord injury repair. It has yet to be clarified whether ferroptosis inhibition represents the mechanism of action of Deferoxamine on spinal cord injury recovery. A rat model of Deferoxamine at thoracic 10 segment was established using a modified Allen's method. Ninety 8-week-old female Wistar rats were used. Rats in the Deferoxamine group were intraperitoneally injected with 100 mg/kg Deferoxamine 30 minutes before injury. Simultaneously, the Sham and Deferoxamine groups served as controls. Drug administration was conducted for 7 consecutive days. The results were as follows:(1) Electron microscopy revealed shrunken mitochondria in the spinal cord injury group.(2) The Basso, Beattie and Bresnahan locomotor rating score showed that recovery of the hindlimb was remarkably better in the Deferoxamine group than in the spinal cord injury group.(3) The iron concentration was lower in the Deferoxamine group than in the spinal cord injury group after injury.(4) Western blot assay revealed that, compared with the spinal cord injury group, GPX4, xCT, and glutathione expression was markedly increased in the Deferoxamine group.(5) Real-time polymerase chain reaction revealed that, compared with the Deferoxamine group, mRNA levels of ferroptosis-related genes Acyl-CoA synthetase family member 2(ACSF2) and iron-responsive element-binding protein 2(IREB2) were up-regulated in the Deferoxamine group.(6) Deferoxamine increased survival of neurons and inhibited gliosis. These findings confirm that Deferoxamine can repair spinal cord injury by inhibiting ferroptosis. Targeting ferroptosis is therefore a promising therapeutic approach for spinal cord injury. 相似文献
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Sheng Zhang Yan Wang Jie Xu Bokyung Kim Wenbin Deng Fuzheng Guo 《The Journal of neuroscience》2021,41(2):251
The developing CNS is exposed to physiological hypoxia, under which hypoxia-inducible factor α (HIFα) is stabilized and plays a crucial role in regulating neural development. The cellular and molecular mechanisms of HIFα in developmental myelination remain incompletely understood. A previous concept proposes that HIFα regulates CNS developmental myelination by activating the autocrine Wnt/β-catenin signaling in oligodendrocyte progenitor cells (OPCs). Here, by analyzing a battery of genetic mice of both sexes, we presented in vivo evidence supporting an alternative understanding of oligodendroglial HIFα-regulated developmental myelination. At the cellular level, we found that HIFα was required for developmental myelination by transiently controlling upstream OPC differentiation but not downstream oligodendrocyte maturation and that HIFα dysregulation in OPCs but not oligodendrocytes disturbed normal developmental myelination. We demonstrated that HIFα played a minor, if any, role in regulating canonical Wnt signaling in the oligodendroglial lineage or in the CNS. At the molecular level, blocking autocrine Wnt signaling did not affect HIFα-regulated OPC differentiation and myelination. We further identified HIFα–Sox9 regulatory axis as an underlying molecular mechanism in HIFα-regulated OPC differentiation. Our findings support a concept shift in our mechanistic understanding of HIFα-regulated CNS myelination from the previous Wnt-dependent view to a Wnt-independent one and unveil a previously unappreciated HIFα–Sox9 pathway in regulating OPC differentiation.SIGNIFICANCE STATEMENT Promoting disturbed developmental myelination is a promising option in treating diffuse white matter injury, previously called periventricular leukomalacia, a major form of brain injury affecting premature infants. In the developing CNS, hypoxia-inducible factor α (HIFα) is a key regulator that adapts neural cells to physiological and pathologic hypoxic cues. The role and mechanism of HIFα in oligodendroglial myelination, which is severely disturbed in preterm infants affected with diffuse white matter injury, is incompletely understood. Our findings presented here represent a concept shift in our mechanistic understanding of HIFα-regulated developmental myelination and suggest the potential of intervening with an oligodendroglial HIFα-mediated signaling pathway to mitigate disturbed myelination in premature white matter injury. 相似文献
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目的 调查郑州市三甲医院急诊科护士的道德困境与职业倦怠的现状,并分析两者之间的相关性。方法 采用便利抽样法选取郑州市5所三甲医院的228名急诊科护士作为研究对象,采用一般资料调查表、中文版护士道德困境量表、护士职业倦怠量表对其进行问卷调查。结果 郑州市三甲医院急诊科护士道德困境总分为(49.41±13.35)分,职业倦怠总分为(63.51±17.25)分。单因素分析显示,不同学历、工作年限的急诊护士的道德困境得分比较,差异均有统计学意义(F=4.830,P=0.015; F=6.302,P=0.001);不同年龄急诊护士的职业倦怠得分比较,差异有统计学意义 (F=8.328,P=0.005),急诊科护士道德困境与职业倦怠呈正关性(r=0.412,P<0.05)。结论 郑州市三甲医院急诊科护士的道德困境与职业倦怠普遍存在,护士的道德困境与职业倦怠呈正相关。 相似文献
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线粒体脑肌病属于罕见性母系遗传病,本文回顾性分析了1家4例高乳酸血症-卒中样发作综合征(MELAS)型线粒体脑肌病患者,其主要表现为卒中样发作、头痛、癫痫、高乳酸血症、肌肉不耐受疲劳、高级智能下降、听力下降和身材矮小等,结合特征性影像学变化、基因检测及肌肉活检明确诊断,并结合文献对只有女儿能将其线粒体DNA(mt-DNA)传递给下一代的母系遗传MELAS型线粒体脑肌病临床特点进行了总结分析,旨在帮助临床认识此病,进一步提高MELAS型线粒体脑肌病的临床诊断率。 相似文献
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目的分析真菌性血流感染的病原菌分布以及耐药特征,为真菌血流感染的早期合理用药提供理论依据。
方法回顾性分析武汉大学人民医院2016年1月至2018年12月收治的真菌性血流感染者的菌群、科室分布以及耐药性。
结果入组192例真菌血流感染者的血培养样本中共分离192株真菌,其中白色念珠菌检出率为31.77%(61/192),其次热带念珠菌检出率为18.75%(36/192);重症医学科检出率最高为33.85%(65/192)。所有菌株均对两性霉素B敏感,对其他抗菌药物耐药率分别为5-氟胞嘧啶4.49%(9/192)、伊曲康唑5.73%(11/192)、氟康唑10.94%(21/192)和伏立康唑11.46%(22/192);除两性霉素B外,2016至2018年真菌对其他抗菌药物的耐药率均逐年上升,其中2018年所分离192株光滑念珠菌对伊曲康唑耐药菌率达46.7%。
结论真菌血流感染病原菌以念珠菌属为主,对目前抗真菌药物具有较高敏感性,但耐药率逐年上升,加强监测血培养病原菌变化及耐药趋势对指导临床用药至关重要。 相似文献