Non-viral Vector Mediated RNA Interference Technology for Central Nerve System Injury.

DNA and RNA nanotechnology Pub Date : 2016-01-01 Epub Date: 2016-08-25 DOI:10.1515/rnan-2016-0003
Christian Macks, Jeoung Soo Lee
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引用次数: 3

Abstract

Neuronal axons damaged by traumatic injury are unable to spontaneously regenerate in the mammalian adult central nervous system (CNS), causing permanent motor, sensory, and cognitive deficits. Regenerative failure in the adult CNS results from a complex pathology presenting multiple barriers, both the presence of growth inhibitors in the extrinsic microenvironment and intrinsic deficiencies in neuronal biochemistry, to axonal regeneration and functional recovery. There are many strategies for axonal regeneration after CNS injury including antagonism of growth-inhibitory molecules and their receptors, manipulation of cyclic nucleotide levels, and delivery of growth-promoting stimuli through cell transplantation and neurotrophic factor delivery. While all these approaches have achieved varying degrees of improvement in plasticity, regeneration, and function, there is no clinically effective therapy for CNS injury. RNA interference technology offers strategies for improving regeneration by overcoming the aspects of the injured CNS environment that inhibit neurite growth. This occurs through the knockdown of growth-inhibitory molecules and their receptors. In this review, we discuss the current state of RNAi strategies for the treatment of CNS injury based on non-viral vector mediated delivery.

Abstract Image

Abstract Image

非病毒载体介导的RNA干扰技术治疗中枢神经系统损伤。
在哺乳动物成年中枢神经系统(CNS)中,创伤性损伤的神经元轴突不能自发再生,导致永久性的运动、感觉和认知缺陷。成人中枢神经系统再生失败是由复杂的病理导致的,存在多种障碍,包括外源性微环境中生长抑制剂的存在和神经元生物化学的内在缺陷,从而影响轴突的再生和功能恢复。中枢神经系统损伤后的轴突再生有许多策略,包括拮抗生长抑制分子及其受体,操纵环核苷酸水平,以及通过细胞移植和神经营养因子传递促进生长的刺激。虽然所有这些方法都在可塑性、再生和功能方面取得了不同程度的改善,但对于中枢神经系统损伤尚无临床有效的治疗方法。RNA干扰技术通过克服受损中枢神经系统环境中抑制神经突生长的方面,为改善再生提供了策略。这是通过抑制生长抑制分子和它们的受体发生的。在这篇综述中,我们讨论了基于非病毒载体介导递送的RNAi治疗中枢神经系统损伤策略的现状。
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