生物医学应用的纳米技术

J. West
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引用次数: 1

摘要

我在生物材料和组织工程方面的研究主要集中在新型生物功能材料的合成、开发和应用,以及利用生物材料和工程方法研究生物问题。下面介绍了我实验室正在进行的几个项目。组织工程血管移植:对小直径血管移植材料的需求量很大。合成材料尚未被证明是合适的,组织移植也受到限制。组织工程可能提供一个答案。我的实验室正在从两个方向研究这个问题;模拟细胞外基质的新型支架材料的合成和植入这些支架的细胞的基因操作。正在开发的支架材料提供信号来促进细胞粘附,控制基质蛋白的合成,调节细胞生长,并允许聚合物降解为新的组织形式。平滑肌和内皮细胞基因工程的目标是减少血栓形成和改善工程动脉的机械性能。金属纳米壳的医学应用:纳米壳是一种具有可调光学特性的新型纳米粒子。在医疗应用方面,这些颗粒可以被设计成强烈吸收或散射近红外光,而组织和血液相对透明。在癌症治疗应用中,纳米壳被设计成吸收光并将能量转化为热以破坏肿瘤。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
"Nano-Technologies for Biomedical Applications"
My research in biomaterials and tissue engineering focuses on the synthesis development and application of novel biofunctional materials and on the use of biomaterials and engineering approaches to study biological problems. Several of the projects ongoing in my laboratory are described below. Tissue Engineered Vascular Grafts: There is tremendous need for materials for small diameter vascular grafts. Synthetic materials have not proved suitable, and tissue transplantation is limited. Tissue engineering may provide an answer. My laboratory is approaching this problem from two directions; synthesis of novel scaffold materials that mimic extracellular matrix and genetic manipulation of the cells seeded into these scaffolds. The scaffold materials under development provide signals to promote cell adhesion, to control synthesis of matrix proteins, to regulate cell growth, and to allow degradation of the polymer as new tissue forms. The goals for genetic engineering of smooth muscle and endothelial cells are to reduce thrombosis and improve the mechanical properties of the engineered arteries. Medical Applications of Metal Nanoshells: Nanoshells are a new type of nanoparticle with tunable optical properties. For medical applications, these particles can be designed to strongly absorb or scatter light in the near infrared where tissue and blood are relatively transparent. In a cancer therapy application, nanoshells are designed to absorb light and convert the energy to heat for tumor destruction.
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