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由可生物降解插入支架支撑的用于对流增强神经药物递送的柔性微流控装置。

Flexible microfluidic devices supported by biodegradable insertion scaffolds for convection-enhanced neural drug delivery.

作者信息

Foley Conor P, Nishimura Nozomi, Neeves Keith B, Schaffer Chris B, Olbricht William L

机构信息

School of Chemical and Biomolecular Engineering, Cornell University, Ithaca, NY 14853, USA.

出版信息

Biomed Microdevices. 2009 Aug;11(4):915-24. doi: 10.1007/s10544-009-9308-6.

Abstract

Convection enhanced delivery (CED) can improve the spatial distribution of drugs delivered directly to the brain. In CED, drugs are infused locally into tissue through a needle or catheter inserted into brain parenchyma. Transport of the infused material is dominated by convection, which enhances drug penetration into tissue compared with diffusion mediated delivery. We have fabricated and characterized an implantable microfluidic device for chronic convection enhanced delivery protocols. The device consists of a flexible parylene-C microfluidic channel that is supported during its insertion into tissue by a biodegradable poly(DL-lactide-co-glycolide) scaffold. The scaffold is designed to enable tissue penetration and then erode over time, leaving only the flexible channel implanted in the tissue. The device was able to reproducibly inject fluid into neural tissue in acute experiments with final infusate distributions that closely approximate delivery from an ideal point source. This system shows promise as a tool for chronic CED protocols.

摘要

对流增强递送(CED)可以改善直接递送至大脑的药物的空间分布。在CED中,药物通过插入脑实质的针或导管局部注入组织。注入物质的传输以对流为主,与扩散介导的递送相比,对流增强了药物向组织中的渗透。我们制造并表征了一种用于慢性对流增强递送方案的可植入微流控装置。该装置由一个柔性聚对二甲苯-C微流控通道组成,在其插入组织的过程中由可生物降解的聚(DL-丙交酯-共-乙交酯)支架支撑。该支架旨在实现组织穿透,然后随着时间推移而侵蚀,仅留下植入组织中的柔性通道。在急性实验中,该装置能够将流体可重复地注入神经组织,最终注入物分布与理想点源的递送非常接近。该系统有望成为慢性CED方案的一种工具。

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