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用于少突胶质前体细胞移植治疗的磁性纳米颗粒:进展与挑战

Magnetic nanoparticles for oligodendrocyte precursor cell transplantation therapies: progress and challenges.

作者信息

Jenkins Stuart I, Yiu Humphrey H P, Rosseinsky Matthew J, Chari Divya M

机构信息

Cellular and Neural Engineering Group, Institute for Science and Technology in Medicine Keele University, Stoke-on-Trent, Staffordshire ST5 5BG UK.

School of Engineering and Physical Sciences, Heriot-Watt University, Edinburgh, EH14 4AS UK.

出版信息

Mol Cell Ther. 2014 Jul 28;2:23. doi: 10.1186/2052-8426-2-23. eCollection 2014.

Abstract

Oligodendrocyte precursor cells (OPCs) have shown high promise as a transplant population to promote regeneration in the central nervous system, specifically, for the production of myelin - the protective sheath around nerve fibers. While clinical trials for these cells have commenced in some areas, there are currently key barriers to the translation of neural cell therapies. These include the ability to (a) image transplant populations in vivo; (b) genetically engineer transplant cells to augment their repair potential; and (c) safely target cells to sites of pathology. Here, we review the evidence that magnetic nanoparticles (MNPs) are a 'multifunctional nanoplatform' that can aid in safely addressing these translational challenges in neural cell/OPC therapy: by facilitating real-time and post-mortem assessment of transplant cell biodistribution, and biomolecule delivery to transplant cells, as well as non-invasive 'magnetic cell targeting' to injury sites by application of high gradient fields. We identify key issues relating to the standardization and reporting of physicochemical and biological data in the field; we consider that it will be essential to systematically address these issues in order to fully evaluate the utility of the MNP platform for neural cell transplantation, and to develop efficacious neurocompatible particles for translational applications.

摘要

少突胶质前体细胞(OPCs)作为一种移植细胞群体,在促进中枢神经系统再生方面展现出了巨大潜力,特别是在产生髓磷脂(神经纤维周围的保护鞘)方面。虽然针对这些细胞的临床试验已在某些领域展开,但目前神经细胞疗法的转化存在关键障碍。这些障碍包括:(a)在体内对移植细胞群体进行成像的能力;(b)对移植细胞进行基因工程改造以增强其修复潜力;以及(c)将细胞安全地靶向病变部位。在此,我们综述了相关证据,即磁性纳米颗粒(MNPs)是一种“多功能纳米平台”,可有助于安全应对神经细胞/OPC疗法中的这些转化挑战:通过促进对移植细胞生物分布的实时和死后评估、向移植细胞递送生物分子,以及通过施加高梯度磁场将细胞无创“磁性靶向”至损伤部位。我们确定了该领域中与物理化学和生物学数据的标准化及报告相关的关键问题;我们认为,为了全面评估MNP平台在神经细胞移植中的效用,并开发用于转化应用的有效神经相容性颗粒,系统地解决这些问题至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/86ed/4452053/c0c7a85b39df/40591_2014_27_Fig1_HTML.jpg

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