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Nanotechnology approaches for the regeneration and neuroprotection of the central nervous system.

机译:纳米技术用于中枢神经系统的再生和神经保护。

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Nanotechnology is the science and engineering concerned with the design, synthesis, and characterization of materials and devices that have a functional organization in at least 1 dimension on the nanometer (ie, one-billionth of a meter) scale. The ability to manipulate and control engineered self-assembling (ie, self-organizing) substrates at these scales produces macroscopic physical and/or chemical properties in the bulk material not possessed by the constituent building block molecules alone. This in turn results in a degree of functional integration between the engineered substrates and cellular or physiological systems not previously attainable. Applied nanotechnology aimed at the regeneration and neuroprotection of the central nervous system (CNS) will significantly benefit from basic nanotechnology research conducted in parallel with advances in cell biology, neurophysiology, and neuropathology. Ultimately the goal is to develop novel technologies that directly or indirectly aid in providing neuroprotection and/or a permissive environment and active signaling cues for guided axon growth. In some cases, it is expected that the neurosurgeon will be required to administer these substrates to the patient. As such, in order for nanotechnology applications directed toward neurological disorders to develop to their fullest potential, it will be important for neuroscientists, neurosurgeons, and neurologists to participate and contribute to the scientific process alongside physical science and engineering colleagues. This review will focus on emerging clinical applications aimed at the regeneration and neuroprotection of the injured CNS, and discuss other platform technologies that have a significant potential for being adapted for clinical neuroscience applications.
机译:纳米技术是与材料,器件的设计,合成和表征有关的科学和工程,这些材料和器件的功能组织至少在纳米尺度上(即十亿分之一米)。在这些规模上操纵和控制工程化的自组装(即自组织)底物的能力会在散装材料中产生宏观的物理和/或化学特性,而散装材料则不会单独拥有这些构成基块分子。这进而导致工程化的底物与以前无法获得的细胞或生理系统之间的一定程度的功能整合。旨在中枢神经系统(CNS)再生和神经保护的应用纳米技术将大大受益于与细胞生物学,神经生理学和神经病理学的发展同时进行的基础纳米技术研究。最终目标是开发直接或间接帮助提供神经保护和/或允许的环境以及主动信号提示以指导轴突生长的新技术。在某些情况下,预计将需要神经外科医生将这些底物施用于患者。因此,为了使针对神经疾病的纳米技术应用发挥最大的潜力,对于神经科学家,神经外科医生和神经学家来说,与物理科学和工程学同仁一起参与并为科学过程做出贡献至关重要。这篇综述将聚焦于针对受伤的CNS的再生和神经保护的新兴临床应用,并讨论其他具有适应临床神经科学应用潜力的平台技术。

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