Nanostructured bladder tissue replacements

被引:9
作者
Chun, Young Wook [1 ]
Lim, Hojean [2 ]
Webster, Thomas J. [1 ]
Haberstroh, Karen M. [1 ]
机构
[1] Brown Univ, Div Engn, Providence, RI 02912 USA
[2] Coll William & Mary, Dept Neurosci, Williamsburg, VA USA
关键词
SMALL-INTESTINAL SUBMUCOSA; FIBROBLAST-GROWTH-FACTOR; EXTRACELLULAR-MATRIX; SURFACE-FEATURES; URINARY-BLADDER; CELL-ADHESION; SCAFFOLDS; PROLIFERATION; POLYMERS; OPPORTUNITIES;
D O I
10.1002/wnan.89
中图分类号
TB3 [工程材料学];
学科分类号
082905 [生物质能源与材料];
摘要
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. (C) 2010 John Wiley & Sons, Inc. WIREs Nanomed Nanobiotechnol 2011 3 134-145 DOI:10.1002/wnan.89
引用
收藏
页码:134 / 145
页数:12
相关论文
共 57 条
[1]
Use of multiple unconfined compression for control of collagen gel scaffold density and mechanical properties [J].
Abou Neel, Ensanya A. ;
Cheema, Umber ;
Knowles, Jonathan C. ;
Brown, Robert A. ;
Nazhat, Showan N. .
SOFT MATTER, 2006, 2 (11) :986-992
[2]
Tissue-engineered autologous bladders for patients needing cystoplasty [J].
Atala, A ;
Bauer, SB ;
Soker, S ;
Yoo, JJ ;
Retik, AB .
LANCET, 2006, 367 (9518) :1241-1246
[3]
FORMATION OF UROTHELIAL STRUCTURES INVIVO FROM DISSOCIATED CELLS ATTACHED TO BIODEGRADABLE POLYMER SCAFFOLDS INVITRO [J].
ATALA, A ;
VACANTI, JP ;
PETERS, CA ;
MANDELL, J ;
RETIK, AB ;
FREEMAN, MR .
JOURNAL OF UROLOGY, 1992, 148 (02) :658-662
[4]
Characterisation of electrospun polystyrene scaffolds for three-dimensional in vitro biological studies [J].
Baker, SC ;
Atkin, N ;
Gunning, PA ;
Granville, N ;
Wilson, K ;
Wilson, D ;
Southgate, J .
BIOMATERIALS, 2006, 27 (16) :3136-3146
[5]
Role of basic fibroblast growth factor in the neuropathic bladder phenotype [J].
Beqaj, SH ;
Donovan, JL ;
Liu, DB ;
Harrington, DA ;
Alpert, SA ;
Cheng, EY .
JOURNAL OF UROLOGY, 2005, 174 (04) :1699-1703
[6]
Ultrarapid engineering of biomimetic materials and tissues: Fabrication of nano- and microstructures by plastic compression [J].
Brown, RA ;
Wiseman, M ;
Chuo, CB ;
Cheema, U ;
Nazhat, SN .
ADVANCED FUNCTIONAL MATERIALS, 2005, 15 (11) :1762-1770
[7]
CARTZ L, 1995, NONDESTRUCTIVE TESTI, P135
[8]
Preparation of poly(L-lactic acid) and poly(DL-lactic-co-glycolic acid) foams by use of ice microparticulates [J].
Chen, GP ;
Ushida, T ;
Tateishi, T .
BIOMATERIALS, 2001, 22 (18) :2563-2567
[9]
The Role of Nanomedicine in Growing Tissues [J].
Chun, Young Wook ;
Webster, Thomas J. .
ANNALS OF BIOMEDICAL ENGINEERING, 2009, 37 (10) :2034-2047
[10]
The role of polymer nanosurface roughness and submicron pores in improving bladder urothelial cell density and inhibiting calcium oxalate stone formation [J].
Chun, Young Wook ;
Khang, Dongwoo ;
Haberstroh, Karen M. ;
Webster, Thomas J. .
NANOTECHNOLOGY, 2009, 20 (08)