共查询到19条相似文献,搜索用时 78 毫秒
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目的制作小鼠脊髓损伤打击模型,观察神经干细胞(NSCs)移植对脊髓损伤小鼠运动功能恢复及Nestin表达的影响。方法将50只小鼠随机分为空白组(5只)、模型组(15只)、对照组(15只)、治疗组(15只),运用改良Allen's法制备小鼠T10脊髓损伤模型并立即在损伤节段进行NSCs移植,于损伤后1、3、7、14、21d进行BBB评分,并通过免疫荧光法及荧光定量PCR检测Nestin的表达情况。结果所有脊髓打击后小鼠均出现双后肢瘫痪,但随时间延长运动功能可有不同程度恢复,NSCs移植14d后治疗组较模型组及对照组BBB评分显著增高(P0.05),且治疗组Nestin表达量也高于模型组及对照组。结论成功建立了小鼠脊髓损伤打击模型;移植的外源性神经干细胞在脊髓损伤处存活并促进损伤后小鼠运动功能的恢复。 相似文献
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目的-建立一种清醒小鼠严重颅脑闭合性撞击伤模型, 模拟交通事故和战伤中的清醒致伤过程, 为相关研究创造新的动物模型基础。方法-将雄性KM小鼠头戴钢盔后清醒固定, 用BIM III型小型多功能动物撞击机击打, 致伤后2 h、8 h、24 h、48 h、72 h、120 h、1 w、2 w进行神经行为学评分、运动功能评分、死亡小鼠脑组织和肺组织水含量、死亡率、病理切片和电镜观察。结果-致伤后 48 h内致伤组运动功能评分、神经行为学评分明显低于对照组 (P<0 05); 致伤后死亡率高, 各组死亡小鼠脑组织水含量无明显差异, 但致伤组肺组织水含量明显高于对照组 (P <0 05); 病理切片和电镜检查显示, 致伤后脑组织细胞肿胀、坏死。结论-基本成功建立了模拟交通事故和战伤的清醒小鼠严重颅脑闭合性撞击伤模型。 相似文献
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犬脊髓损伤治疗动物模型 总被引:3,自引:0,他引:3
目的 建立犬脊髓损伤治疗动物模型 ,为实验研究提供直接的病例材料。方法 人工损伤犬脊髓 ,使用直流电场刺激使脊髓损伤恢复。结果 人工犬脊髓损伤模型建立 ,直流电场刺激治疗可恢复神经功能。结论直流电场刺激在不同时期对犬脊髓再生及功能恢复均有明显促进作用 ,能促进脊髓再生 ,使脊髓通路更快更完善的建立 相似文献
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目的建立兔脊髓分级缺血再灌注损伤模型和探讨受伤脊髓病理变化可能机制。方法采用肾下腹主动脉阻断法,分别阻断腹主动脉30min、45min和60min后开放,再灌注48h观察神经功能变化以及病理学评价脊髓缺血再灌注损伤程度。结果脊髓缺血时间越长,后肢运动功能损害越明显。伤后2天发现受损脊髓出血、水肿、变性坏死,明显的白细胞浸润以及I-κBα、NF-κBp65、ICAM-l表达增加,脊髓灰质的病理损害严重。再灌注脊髓病理损伤程度依次为缺血60min组>缺血45min组>缺血30min组>假手术组。结论该模型是一种较好的脊髓缺血再灌注损伤模型,阻断肾下腹主动脉血流30min、45min、60min后开放可以较好地反应轻、中、重不同程度缺血再灌注损伤脊髓的病理变化特点。 相似文献
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脊髓缺血再灌注损伤(Spinal cord ischemia reperfusion injury,SCIRI)模型对研究临床上SCIRI至关重要。SCIRI动物模型旨在尽可能模拟临床脊髓损伤的病理特点。SCIRI模型因所用动物和方法不同而不同。目前国内外常用的SCIRI模型实验动物包括兔、大鼠和小鼠。大鼠因其脊髓血供和人类相似、相对廉价、繁殖力强且容易获得常常用于制作脊髓再灌注损伤模型。任何模型均有其优缺点。可靠、稳定的动物模型对研究SCIRI的发生机制及评估干预手段的效果和寻求有效的治疗方法具有非常重要的意义。该文就SCIRI动物模型研究进展进行简要综述,为研究者们选择最适合自己研究目标的动物模型提供一定的借鉴。 相似文献
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中药治疗脊髓损伤的研究现状 总被引:3,自引:0,他引:3
脊髓损伤是严重危害人类健康的疾病,随着社会的发展,其发病率日益升高,给社会、家庭、个人带来巨大负担.中医认为脊髓损伤与外力损伤督脉,致使气乱血逆,瘀阻经络,气血不能温煦濡养肢体有关:中药治则以活血化瘀,通络,补肾,益气为主.中药治疗脊髓损伤具有较好疗效,主要包括丹参、三七、人参、川芎等单味中药及其有效成分,中药复方如补阳还五汤、血府逐瘀汤、防己黄芪汤等.治疗脊髓损伤的临床验方较多,但临床实用成药却很少;采用挤压/撞击损伤动物等模型筛选和评价中药有效方剂,创制高效低毒治疗新药将是该领域今后研究的重要方向. 相似文献
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目的通过显微外科技术建立小鼠原位肺移植模型,为肺移植研究提供动物模型。方法采用C57BL/6小鼠作为供、受体,行同基因小鼠原位左肺移植,使用Cuff套管法进行气管及血管吻合。术后7、14、21、28 d取移植肺及原肺,行HE染色,评价肺移植后效果。结果学习曲线后,共30例小鼠移植,手术成功率89%,小鼠成活率100%。供体手术时间:(35.2±9.81)min,受体手术时间:(24.6±7.42)min,冷缺血时间是:(46.6±8.92)min,热缺血时间是:(17.2±3.08)min。同基因移植物大体及病理无明显改变,病理显示与原肺无差别。结论本技术能够方便快捷建立小鼠肺移植模型,成功率高,可重复性强,符合原位肺移植临床生理,是研究肺移植发病机制和治疗的良好动物模型。 相似文献
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目的比较腹部和颈部小鼠心脏移植模型的优缺点,探讨二次器官移植或双心脏移植研究的可行性和实用性动物模型。方法参照Ono法和Chen法并加以改进,建立了同系或者同种小鼠腹部和颈部异位心脏移植模型,同时对两种手术方式的成功率、手术时间、移植心脏存活时间和病理组织学进行了比较。结果腹部和颈部异位心脏移植手术成功率分别为86.7%和83.3%,两种手术方式在总手术时间、移植心脏存活时间和病理组织形态学检查上均无明显差异(P0.05)。结论在熟练掌握显微外科技术的基础上,两种异位心脏移植模型都能顺利建立,两者既可分开选用,又可结合运用,以适应不同实验需求。 相似文献
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Akhirin regulates the proliferation and differentiation of neural stem cells in intact and injured mouse spinal cord 下载免费PDF全文
Felemban Athary Abdulhaleem M Xiaohong Song Rie Kawano Naohiro Uezono Ayako Ito Giasuddin Ahmed Mahmud Hossain Kinichi Nakashima Hideaki Tanaka Kunimasa Ohta 《Developmental neurobiology》2015,75(5):494-504
Although the central nervous system is considered a comparatively static tissue with limited cell turnover, cells with stem cell properties have been isolated from most neural tissues. The spinal cord ependymal cells show neural stem cell potential in vitro and in vivo in injured spinal cord. However, very little is known regarding the ependymal niche in the mouse spinal cord. We previously reported that a secreted factor, chick Akhirin, is expressed in the ciliary marginal zone of the eye, where it works as a heterophilic cell‐adhesion molecule. Here, we describe a new crucial function for mouse Akhirin (M‐AKH) in regulating the proliferation and differentiation of progenitors in the mouse spinal cord. During embryonic spinal cord development, M‐AKH is transiently expressed in the central canal ependymal cells, which possess latent neural stem cell properties. Targeted inactivation of the AKH gene in mice causes a reduction in the size of the spinal cord and decreases BrdU incorporation in the spinal cord. Remarkably, the expression patterns of ependymal niche molecules in AKH knockout (AKH?/?) mice are different from those of AKH+/+, both in vitro and in vivo. Furthermore, we provide evidence that AKH expression in the central canal is rapidly upregulated in the injured spinal cord. Taken together, these results indicate that M‐AKH plays a crucial role in mouse spinal cord formation by regulating the ependymal niche in the central canal. © 2014 Wiley Periodicals, Inc. Develop Neurobiol 75: 494–504, 2015 相似文献
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Yiping Li Chandler L. Walker Yi Ping Zhang Christopher B. Shields Xiao-Ming Xu 《生物学前沿》2014,9(2):127-136
The goal for treatment in acute spinal cord injury (SCI) is to reduce the extent of secondary damage and facilitate neurologic regeneration and functional recovery. Although multiple studies have investigated potential new therapies for the treatment of acute SCI, outcomes and management protocols aimed at ameliorating neurologic injury in patients remain ineffective. More recent clinical and basic science research have shown surgical interventions to be a potentially valuable modality for treatment; however, the role and timing of surgical decompression, in addition to the optimal surgical intervention, remain one of the most controversial topics pertaining to surgical treatment of acute SCI. As an increasing number of potential treatment modalities emerge, animal models are pivotal for investigating its clinical application and translation into human trials. This review critically appraises the available literature for both clinical and basic science studies to highlight the extent of investigation that has occurred, specific therapies considered, and potential areas for future research. 相似文献
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Bernhard H. J. Juurlink Sergey Fedoroff 《In vitro cellular & developmental biology. Plant》1979,15(2):86-94
Summary Whole mouse embryos were grown in vitro from Theiler stage 12 (1 to 7 somites) to Theiler stages 15 and 16 (25 to 35 somites).
This procedure gives experimental access to precisely staged embryos during the early period of neurogenesis. To follow the
further development of neurons in vitro, fragments of spinal primordia were set up from these cultured embryos. In such cultures,
the proliferation of precursor cells, the formation of postmitotic cells and, finally, the cytodifferentiation of neurons
were observed.
A preliminary account of this work was given at the Tissue Culture Association Meeting in 1977, and the Canadian Federation
of Biological Societies Meeting in 1977 (1,2).
This work was supported by Grant MT 4235 from the Medical Research Council of Canada. 相似文献
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Zhongju Shi Shiyang Yuan Linlin Shi Jiahe Li Guangzhi Ning Xiaohong Kong Shiqing Feng 《Cell proliferation》2021,54(3)
Spinal cord injury (SCI) always leads to functional deterioration due to a series of processes including cell death. In recent years, programmed cell death (PCD) is considered to be a critical process after SCI, and various forms of PCD were discovered in recent years, including apoptosis, necroptosis, autophagy, ferroptosis, pyroptosis and paraptosis. Unlike necrosis, PCD is known as an active cell death mediated by a cascade of gene expression events, and it is crucial for elimination unnecessary and damaged cells, as well as a defence mechanism. Therefore, it would be meaningful to characterize the roles of PCD to not only enhance our understanding of the pathophysiological processes, but also improve functional recovery after SCI. This review will summarize and explore the most recent advances on how apoptosis, necroptosis, autophagy, ferroptosis, pyroptosis and paraptosis are involved in SCI. This review can help us to understand the various functions of PCD in the pathological processes of SCI, and contribute to our novel understanding of SCI of unknown aetiology in the near future. 相似文献
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Opiate antagonists, at high doses, have been shown to improve physiological variables and outcome after experimental spinal injury. Dynorphin appears to be unique amongst opioids in producing hindlimb paralysis after intrathecal injection. Taken together, these findings suggest a possible pathophysiological role for endogenous opioids, particularly dynorphin, in spinal injury. In the present studies we examined the relationship between changes in dynorphin immunoreactivity (Dyn-ir) in rat spinal cord after traumatic injury and the subsequent motor dysfunction. Trauma was associated with significantly increased Dyn-ir at the injury site, but not distant from the lesion. Dyn-ir was found elevated as early as 2 h and as late as 2 weeks after trauma, and was significantly correlated with the degree of injury. These data are consistent with the hypothesis that dynorphin systems may be involved in the secondary injury that follows spinal trauma. 相似文献
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《Neuron》2023,111(14):2155-2169.e9