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用于组织工程应用的间质干细胞种植的多层致密胶原-丝素纤维混合体。

Mesenchymal stem cell-seeded multilayered dense collagen-silk fibroin hybrid for tissue engineering applications.

机构信息

Department of Mining and Materials Engineering, McGill University, Montreal, Quebec, Canada.

出版信息

Biotechnol J. 2011 Oct;6(10):1198-207. doi: 10.1002/biot.201100127. Epub 2011 Aug 26.

DOI:10.1002/biot.201100127
PMID:21751393
Abstract

Tissue engineering of multilayered constructs that model complex tissues poses a significant challenge for regenerative medicine. In this study, a three-layered scaffold consisting of an electrospun silk fibroin (SF) mat sandwiched between two dense collagen (DC) layers was designed and characterized. It was hypothesized that the SF layer would endow the DC-SF-DC construct with enhanced mechanical properties (e.g., apparent modulus, tensile strength, and toughness), while the surrounding DC layers provide an extracellular matrix-like environment for mesenchymal stem cell (MSC) growth. MSC-seeded DC-SF-DC hybrids were produced using the plastic compression technique and characterized morphologically, chemically, and mechanically. Moreover, MSC viability was assessed for up to 1 wk in culture. Scaffold analyses confirmed compaction and integration of the meso-scaled multilayered DC-SF-DC hybrid, which was reflected in a significantly higher toughness value when compared to DC and SF alone. MSCs directly incorporated into the DC layers remained viable for up to day 7. The ease of multilayered construct fabrication, enhanced biomechanical properties, along with uniformity of cell distribution confirmed the possibility for the incorporation and segregation of different cell types within distinct layers for the regeneration of complex tissues, such as skin, or central nervous system dura mater.

摘要

用于模拟复杂组织的多层构建体的组织工程对再生医学提出了重大挑战。在这项研究中,设计并表征了由夹在两层致密胶原 (DC) 层之间的电纺丝素 (SF) 垫组成的三层支架。假设 SF 层将为 DC-SF-DC 构建体赋予增强的机械性能(例如,表观模量、拉伸强度和韧性),而周围的 DC 层为间充质干细胞 (MSC) 生长提供细胞外基质样环境。使用塑料压缩技术生产 MSC 接种的 DC-SF-DC 杂种,并在形态上、化学上和机械上进行表征。此外,还评估了 MSC 在培养物中长达 1 周的活力。支架分析证实了中尺度多层 DC-SF-DC 杂种的压实和整合,与单独的 DC 和 SF 相比,这反映在韧性值显著提高。直接整合到 DC 层中的 MSC 在第 7 天之前仍保持存活。多层构建体制造的简便性、增强的生物力学特性以及细胞分布的均匀性证实了在不同层中掺入和隔离不同细胞类型以再生复杂组织(如皮肤或中枢神经系统硬脑膜)的可能性。

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