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胶原蛋白浓度和交联密度对用于骨组织工程的胶原蛋白-糖胺聚糖支架的生物学、结构和力学性能的影响。

The effects of collagen concentration and crosslink density on the biological, structural and mechanical properties of collagen-GAG scaffolds for bone tissue engineering.

作者信息

Tierney Claire M, Haugh Matthew G, Liedl Jakob, Mulcahy Fergal, Hayes Brian, O'Brien Fergal J

机构信息

Tissue Engineering Research Group, Department of Anatomy, Royal College of Surgeons in Ireland, 123 St Stephens's Green, Dublin 2, Ireland.

出版信息

J Mech Behav Biomed Mater. 2009 Apr;2(2):202-9. doi: 10.1016/j.jmbbm.2008.08.007. Epub 2008 Oct 4.

Abstract

In this study, we examined the effects of varying collagen concentration and crosslink density on the biological, structural and mechanical properties of collagen-GAG scaffolds for bone tissue engineering. Three different collagen contents (0.25%, 0.5% and 1% collagen) and two different dehydrothermal (DHT) crosslinking processes [1] 105 degrees C for 24 h and [2] 150 degrees C for 48 h were investigated. These scaffolds were assessed for (1) pore size, (2) permeability (3) compressive strength and (4) cell viability. The largest pore size, permeability rate, compressive modulus, cell number and cell metabolic activity was all found to occur on the 1% collagen scaffold due to its increased collagen composition and the DHT treatment at 150 degrees C was found to significantly improve the mechanical properties and not to affect cellular number or metabolic activity. These results indicate that doubling the collagen content to 1% and dehydrothermally crosslinking the scaffold at 150 degrees C for 48 h has enhanced mechanical and biological properties of the scaffold making it highly attractive for use in bone tissue engineering.

摘要

在本研究中,我们研究了不同胶原蛋白浓度和交联密度对用于骨组织工程的胶原蛋白-糖胺聚糖支架的生物学、结构和力学性能的影响。研究了三种不同的胶原蛋白含量(0.25%、0.5%和1%胶原蛋白)以及两种不同的脱氢热(DHT)交联工艺:[1]105℃处理24小时和[2]150℃处理48小时。对这些支架进行了以下评估:(1)孔径、(2)渗透性、(3)抗压强度和(4)细胞活力。由于1%胶原蛋白支架的胶原蛋白组成增加,其孔径、渗透率、压缩模量、细胞数量和细胞代谢活性均最大。结果发现,150℃的DHT处理显著改善了力学性能,且不影响细胞数量或代谢活性。这些结果表明,将胶原蛋白含量加倍至1%并在150℃下对支架进行48小时的脱氢热交联,可增强支架的力学和生物学性能,使其在骨组织工程中极具应用吸引力。

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