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凝胶铸造法在多层管状结构组织工程中的应用。

Gel Casting as an Approach for Tissue Engineering of Multilayered Tubular Structures.

机构信息

Department of Urology, University Medical Center Utrecht, Utrecht University, Utrecht, The Netherlands.

Regenerative Medicine Center Utrecht, Utrecht, The Netherlands.

出版信息

Tissue Eng Part C Methods. 2020 Mar;26(3):190-198. doi: 10.1089/ten.TEC.2019.0280.

Abstract

Several urological structures, such as the male urethra, have a tubular organization consisting of different layers. However, in severe urethral disease, urologists are limited to replacing solely the epithelial layer. In case of severe hypospadias and urethral stricture disease, the underlying supporting structure (the corpus spongiosum) is either absent or fibrotic, causing suboptimal vascularization and therefore increasing the risk of graft failure. Recapitulating the multilayered architecture of the urethra, including supporting structure with tissue engineering, might minimize urethral graft failure. However, current tissue engineering applications for complex multilayered tubular constructs are limited. We describe a gel casting method to tissue engineer multilayered tubular constructs based on fiber-reinforced cell-laden hydrogels. For this, a multichambered polydimethylsiloxane mold was casted with fiber-reinforced hydrogels containing smooth muscle cells (SMCs) and a coculture of endothelial cells and pericytes. The cell-loaded hydrogels were rolled, with the fiber mesh as guidance, into a tubular construct. In the lumen, urothelial cells were seeded and survived for 2 weeks. In the tubular construct, the cells showed good viability and functionality: endothelial cells formed capillary-like structures supported by pericytes and SMCs expressed elastin. With a graft produced by this technique, supported with subepithelial vascularization, urethral reconstructive surgery can be improved. This approach toward tissue engineering of multilayered tubular structures can also be applied to other multilayered tubular structures found in the human body. Impact Statement Recapitulating the multilayered architecture of tubular structures found in the human body might minimize graft failure. Current tissue engineering applications for complex multilayered tubular constructs are limited. Here we describe a gel casting approach based on fiber-reinforced cell-laden hydrogels. A multichambered polydimethylsiloxane mold was casted with cell-loaded, fiber-reinforced hydrogels, with the fiber mesh as guidance, into a tubular construct. A graft produced by this technique can improve reconstructive surgery by providing subepithelial vascularization and thereby can reduce graft failure.

摘要

几种泌尿科结构,如男性尿道,具有由不同层组成的管状组织。然而,在严重的尿道疾病中,泌尿科医生仅限于仅替换上皮层。在严重的尿道下裂和尿道狭窄疾病的情况下,潜在的支撑结构(海绵体)缺失或纤维化,导致血管化不足,从而增加移植物失败的风险。通过组织工程学来再现尿道的多层结构,包括带有组织工程学的支撑结构,可能会最大限度地减少尿道移植物的失败。然而,目前用于复杂多层管状结构的组织工程应用受到限制。我们描述了一种基于纤维增强细胞负载水凝胶的组织工程多层管状结构的凝胶浇铸方法。为此,用纤维增强水凝胶(包含平滑肌细胞 (SMC) 和内皮细胞和平滑肌细胞共培养物)浇铸多腔室聚二甲基硅氧烷模具。将负载细胞的水凝胶卷起,以纤维网作为指导,形成管状结构。在管腔中,尿路上皮细胞被接种并存活了 2 周。在管状结构中,细胞表现出良好的活力和功能:内皮细胞形成由周细胞和 SMC 支持的毛细血管样结构,SMC 表达弹性蛋白。使用这种技术生产的移植物,带有上皮下血管化的支持,可改善尿道重建手术。这种多层管状结构的组织工程方法也可以应用于人体中发现的其他多层管状结构。

影响陈述

最大限度地减少移植物失败的关键在于重现人体中发现的管状结构的多层结构。目前,复杂的多层管状结构的组织工程应用受到限制。在这里,我们描述了一种基于纤维增强细胞负载水凝胶的凝胶浇铸方法。用纤维增强水凝胶(包含平滑肌细胞 (SMC) 和内皮细胞和平滑肌细胞共培养物)和纤维网作为指导,在多腔室聚二甲基硅氧烷模具中浇铸细胞负载的纤维增强水凝胶,形成管状结构。通过这种技术生产的移植物可以通过提供上皮下血管化来改善重建手术,从而减少移植物失败的风险。

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