利用可切换水溶性的释放层对形状特定的聚合物纳米载体进行可扩展的印迹。

Scalable imprinting of shape-specific polymeric nanocarriers using a release layer of switchable water solubility.

机构信息

Department of Biomedical Engineering, The University of Texas at Austin, Austin, Texas 78712, USA.

出版信息

ACS Nano. 2012 Mar 27;6(3):2524-31. doi: 10.1021/nn2049152. Epub 2012 Mar 2.

Abstract

There is increasing interest in fabricating shape-specific polymeric nano- and microparticles for efficient delivery of drugs and imaging agents. The size and shape of these particles could significantly influence their transport properties and play an important role in in vivo biodistribution, targeting, and cellular uptake. Nanoimprint lithography methods, such as jet-and-flash imprint lithography (J-FIL), provide versatile top-down processes to fabricate shape-specific, biocompatible nanoscale hydrogels that can deliver therapeutic and diagnostic molecules in response to disease-specific cues. However, the key challenges in top-down fabrication of such nanocarriers are scalable imprinting with biological and biocompatible materials, ease of particle-surface modification using both aqueous and organic chemistry as well as simple yet biocompatible harvesting. Here we report that a biopolymer-based sacrificial release layer in combination with improved nanocarrier-material formulation can address these challenges. The sacrificial layer improves scalability and ease of imprint-surface modification due to its switchable solubility through simple ion exchange between monovalent and divalent cations. This process enables large-scale bionanoimprinting and efficient, one-step harvesting of hydrogel nanoparticles in both water- and organic-based imprint solutions.

摘要

人们越来越感兴趣的是制造具有特定形状的聚合物纳米和微球,以有效递送药物和成像剂。这些粒子的大小和形状可能会显著影响它们的传输性质,并在体内生物分布、靶向和细胞摄取中发挥重要作用。纳米压印光刻方法,如喷射闪光压印光刻(Jet-and-Flash Imprint Lithography,J-FIL),提供了通用的自上而下的工艺来制造具有特定形状的、生物相容的纳米级水凝胶,这些水凝胶可以响应特定疾病的信号来递送治疗和诊断分子。然而,用生物和生物相容材料进行这种纳米载体的自上而下制造的关键挑战在于可扩展的压印、使用水相和有机相化学进行简便的粒子表面修饰,以及简单但生物相容的收集。在这里,我们报告说,通过单价和二价阳离子之间的简单离子交换,具有生物聚合物的牺牲释放层与改进的纳米载体材料配方相结合,可以解决这些挑战。由于其通过简单的离子交换实现的可切换溶解度,牺牲层提高了可扩展性和压印表面修饰的便利性。该工艺能够在水相和有机相的压印溶液中进行大规模的生物纳米压印,并高效地一步收集水凝胶纳米粒子。

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