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纳米结构膀胱组织替代物。

Nanostructured bladder tissue replacements.

作者信息

Chun Young Wook, Lim Hojean, Webster Thomas J, Haberstroh Karen M

机构信息

Division of Engineering, Brown University, Providence, RI, USA.

Department of Neuroscience, College of William and Mary, Williamsburg, VA, USA.

出版信息

Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2011 Mar-Apr;3(2):134-145. doi: 10.1002/wnan.89. Epub 2010 Aug 20.

Abstract

The interaction between cells or tissues and natural or synthetic materials which mimic the natural biological environment has been a matter of great interest in tissue engineering. In particular, surface properties of biomaterials (regardless of whether they are natural or synthetic) have been optimized using nanotechnology to improve interactions with cells for regenerative medicine applications. Specifically, in vivo and in vitro studies have demonstrated greater bladder tissue growth on polymeric surfaces with nanoscale to submicron surface features. Improved bladder cell responses on nanostructured polymers have been correlated to unique nanomaterial surface features leading to greater surface energy which influences initial protein interactions. Moreover, coupled with the observed greater in vitro and in vivo bladder cell adhesion as well as proliferation on nanostructured compared to conventional synthetic polymers, decreased calcium stone formation has also been measured. In this article, the importance of nanostructured biomaterial surface features for bladder tissue replacements are reviewed with thoughts on future directions for this emerging field.

摘要

细胞或组织与模拟自然生物环境的天然或合成材料之间的相互作用一直是组织工程领域备受关注的问题。特别是,生物材料的表面特性(无论其是天然的还是合成的)已通过纳米技术进行了优化,以改善与细胞的相互作用,用于再生医学应用。具体而言,体内和体外研究表明,在具有纳米级至亚微米级表面特征的聚合物表面上,膀胱组织生长得更好。纳米结构聚合物上膀胱细胞反应的改善与独特的纳米材料表面特征相关,这些特征导致更高的表面能,从而影响初始蛋白质相互作用。此外,与传统合成聚合物相比,在纳米结构上观察到的体外和体内膀胱细胞粘附以及增殖增加,同时还测量到钙结石形成减少。在本文中,我们综述了纳米结构生物材料表面特征对膀胱组织替代的重要性,并对这一新兴领域的未来发展方向进行了思考。

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