首页> 外文期刊>Journal of Neuroscience Research >NT-3 delivered by an adenoviral vector induces injured dorsal root axons to regenerate into the spinal cord of adult rats.
【24h】

NT-3 delivered by an adenoviral vector induces injured dorsal root axons to regenerate into the spinal cord of adult rats.

机译:腺病毒载体传递的NT-3诱导受伤的背根轴突再生为成年大鼠的脊髓。

获取原文
获取原文并翻译 | 示例
           

摘要

Sensory axons interrupted in the dorsal roots of adult mammals are normally unable to regenerate into the spinal cord. We have investigated whether the introduction of a neurotrophin gene into the spinal cord might offer an approach to otherwise intractable spinal root injuries. The dorsal roots of the 4th, 5th, and 6th lumbar spinal nerves of adult rats were severed and reanastomosed. Fourteen to nineteen days later, adenoviral vectors containing either the LacZ or NT-3 genes were injected into the ventral horn of the lumbar spinal cord, resulting in strong expression of the transgenes in glial cells and motor neurons between 4 and 40 days after injection. When dorsal root axons were transganglionically labelled with HRP conjugated to cholera toxin subunit B, 16 to 37 days after dorsal root injury, large numbers of labelled axons could be seen to have regenerated into the cord, but only in those animals injected with vector carrying the NT-3 gene. The regenerated axons were found at the injection site, mainly in the grey matter, and had penetrated as deep as lamina V. Gene therapy with adenoviral vectors encoding a neurotrophin has therefore been shown to be capable of enhancing and directing the regeneration of a subpopulation of dorsal root axons (probably myelinated A fibres), into and through the CNS environment.
机译:在成年哺乳动物的背根中打断的感觉轴突通常不能再生成脊髓。我们已经研究了将神经营养蛋白基因引入脊髓是否可能为否则难于治疗的脊神经根损伤提供一种方法。成年大鼠的第四,第五和第六腰椎神经的背根被切断并重新吻合。 14至19天后,将含有LacZ或NT-3基因的腺病毒载体注射到腰脊髓的腹角,导致转基因在注射后4至40天之间在神经胶质细胞和运动神经元中强烈表达。当在背根损伤后16至37天用结合霍乱毒素亚基B的HRP经背神经节标记背根轴突时,可以看到大量标记的轴突已再生到脐带中,但仅在那些注射了携带该蛋白的载体的动物中NT-3基因。在注射部位发现了再生的轴突,主要是在灰质中,并且已经渗透至层板V的深处。因此,用编码神经营养蛋白的腺病毒载体进行基因治疗已显示出能够增强和指导亚种的再生。进入和通过CNS环境的背根轴突(可能是髓鞘A纤维)。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号