» Articles » PMID: 12648435

Tissue Engineering in Urology: Where Are We Going?

Overview
Journal Curr Urol Rep
Publisher Current Science
Specialty Urology
Date 2003 Mar 22
PMID 12648435
Citations 3
Authors
Affiliations
Soon will be listed here.
Abstract

Tissue engineering in urology is a broad term used to describe the development of alternative tissue sources for diseased or dysfunctional native urologic tissue. This article reviews the recently published techniques involving synthetic and natural biodegradable matrices alone, known as "unseeded" scaffolds, and the latest data on "seeded" scaffolds, which are impregnated with cultured cells from urologic organs. Recent discoveries in reporter gene labeling of urologic tissue are discussed as a new method to identify and track the fates of these transplanted cells in vivo. This article also investigates how these bioengineering techniques are applied to synthetic and natural scaffolds, such as polyglycolic acid and porcine small intestine submucosa, to increase bladder capacity, repair urethral strictures, and replace corporal plaques in Peyronie's disease. Furthermore, recently published reports that these materials have been seeded with chondrocytes to create corporal rods for penile prostheses and stents for ureteral and urethral stricture disease are discussed. With these latest developments as a foundation, the future directions of tissue engineering in urology are presented.

Citing Articles

Different bladder defects reconstructed with bladder acellular matrix grafts in a rabbit model.

Zhu W, Xu Y, Feng C, Fu Q, Song L Urologe A. 2011; 50(11):1420-5.

PMID: 21720832 DOI: 10.1007/s00120-011-2627-2.


Does mechanical stimulation have any role in urinary bladder tissue engineering?.

Farhat W, Yeger H World J Urol. 2008; 26(4):301-5.

PMID: 18690457 DOI: 10.1007/s00345-008-0318-4.


In vivo bladder regeneration using small intestinal submucosa: experimental study.

Caione P, Capozza N, Zavaglia D, Palombaro G, Boldrini R Pediatr Surg Int. 2006; 22(7):593-9.

PMID: 16773371 DOI: 10.1007/s00383-006-1705-9.

References
1.
Boheler K, Czyz J, Tweedie D, Yang H, Anisimov S, Wobus A . Differentiation of pluripotent embryonic stem cells into cardiomyocytes. Circ Res. 2002; 91(3):189-201. DOI: 10.1161/01.res.0000027865.61704.32. View

2.
Atala A, Kim W, Paige K, Vacanti C, Retik A . Endoscopic treatment of vesicoureteral reflux with a chondrocyte-alginate suspension. J Urol. 1994; 152(2 Pt 2):641-3; discussion 644. DOI: 10.1016/s0022-5347(17)32671-x. View

3.
Motoike T, Loughna S, Perens E, Roman B, Liao W, Chau T . Universal GFP reporter for the study of vascular development. Genesis. 2000; 28(2):75-81. DOI: 10.1002/1526-968x(200010)28:2<75::aid-gene50>3.0.co;2-s. View

4.
Atala A, Vacanti J, Peters C, MANDELL J, Retik A, Freeman M . Formation of urothelial structures in vivo from dissociated cells attached to biodegradable polymer scaffolds in vitro. J Urol. 1992; 148(2 Pt 2):658-62. DOI: 10.1016/s0022-5347(17)36685-5. View

5.
Parnigotto P, Gamba P, Conconi M, Midrio P . Experimental defect in rabbit urethra repaired with acellular aortic matrix. Urol Res. 2000; 28(1):46-51. DOI: 10.1007/s002400050009. View