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基于建模和纳米技术方法的应用:中枢神经系统疾病治疗诊断学中的突破性进展

Application of modelling and nanotechnology-based approaches: The emergence of breakthroughs in theranostics of central nervous system disorders.

作者信息

Hassanzadeh Parichehr, Atyabi Fatemeh, Dinarvand Rassoul

机构信息

Nanotechnology Research Center, Faculty of Pharmacy, Tehran University of Medical Sciences, Tehran, Iran.

出版信息

Life Sci. 2017 Aug 1;182:93-103. doi: 10.1016/j.lfs.2017.06.001. Epub 2017 Jun 3.

DOI:10.1016/j.lfs.2017.06.001
PMID:28583367
Abstract

The limited efficiency of the current treatment options against the central nervous system (CNS) disorders has created increasing demands towards the development of novel theranostic strategies. The enormous research efforts in nanotechnology have led to the production of highly-advanced nanodevices and biomaterials in a variety of geometries and configurations for targeted delivery of genes, drugs, or growth factors across the blood-brain barrier. Meanwhile, the richness or reliability of data, drug delivery methods, therapeutic effects or potential toxicity of nanoparticles, occurrence of the unexpected phenomena due to the polydisperse or polymorphic nature of nanomaterials, and personalized theranostics have remained as challenging issues. In this respect, computational modelling has emerged as a powerful tool for rational design of nanoparticles with optimized characteristics including the selectivity, improved bioactivity, and reduced toxicity that might lead to the effective delivery of therapeutic agents. High-performance simulation techniques by shedding more light on the dynamical behaviour of neural networks and pathomechanisms of CNS disorders may provide imminent breakthroughs in nanomedicine. In the present review, the importance of integration of nanotechnology-based approaches with computational techniques for targeted delivery of theranostics to the CNS has been highlighted.

摘要

当前针对中枢神经系统(CNS)疾病的治疗方案效率有限,这使得人们对新型治疗诊断策略的开发需求不断增加。纳米技术领域的大量研究工作已促使人们生产出各种几何形状和结构的高度先进的纳米器件和生物材料,用于跨血脑屏障靶向递送基因、药物或生长因子。与此同时,数据的丰富性或可靠性、药物递送方法、纳米颗粒的治疗效果或潜在毒性、由于纳米材料的多分散或多晶型性质而出现的意外现象以及个性化治疗诊断等问题仍然具有挑战性。在这方面,计算建模已成为一种强大的工具,可用于合理设计具有优化特性的纳米颗粒,这些特性包括选择性、提高的生物活性和降低的毒性,这可能有助于实现治疗剂的有效递送。高性能模拟技术通过更深入地了解神经网络的动态行为和中枢神经系统疾病的发病机制,可能会在纳米医学领域带来迫在眉睫的突破。在本综述中,强调了将基于纳米技术的方法与计算技术相结合以实现治疗诊断剂向中枢神经系统靶向递送的重要性。

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