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Tissue-engineered cornea constructed with compressed collagen and laser-perforated electrospun mat

机译:组织工程化的角膜由压缩胶原蛋白和激光穿孔电纺丝垫制成

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摘要

While Plastic Compressed (PC) collagen technique is often used to fabricate bioengineered constructs, PC collagen gels are too weak to be sutured or conveniently handled for clinical applications. To overcome this limitation, electrospun poly (lactic-co-glycolide) (PLGA) mats, which have excellent biocompatibility and mechanical properties, were combined with PC collagen to fabricate sandwich-like hybrid constructs. By laser-perforating holes with different sizes and spacings in the electrospun mats to regulate the mechanical properties and light transmittance of the hybrid constructs, we produced hybrid constructs with properties very suitable to apply in corneal tissue engineering. The maximum tensile stress of the optimal hybrid construct was 3.42 ± 0.22 MPa. The light transmittance of the hybrid construct after perforation was approximately 15-fold higher than before, and light transmittance increased gradually with increasing time. After immersing into PBS for 7 days, the transmittance of the optimal construct changed from 63 ± 2.17% to 72 ± 1.8% under 500 nm wavelength. The live/dead staining, cell proliferation assay and immunohistochemistry study of human corneal epithelial cells (HCECs) and human keratocytes (HKs) cultured on the optimal hybrid construct both demonstrated that the cells adhered, proliferated, and maintained their phenotype well on the material. In addition, after culturing for 2 weeks, the HCECs could form stratified layers. Thus, our designed construct is suitable for the construction of engineered corneal tissue.
机译:尽管塑料压缩(PC)胶原技术通常用于制造生物工程构造,但PC胶原凝胶太弱,无法缝合或无法方便地用于临床应用。为了克服此限制,将具有极佳生物相容性和机械性能的电纺聚(乳酸-共-乙交酯)(PLGA)毡与PC胶原蛋白结合在一起,制成三明治状混合结构。通过在电纺垫上激光打孔以不同大小和间距的孔来调节混合结构的机械性能和透光率,我们生产出了具有非常适合应用于角膜组织工程的性能的混合结构。最佳混合结构的最大拉应力为3.42±0.22MPa。穿孔后杂种构建体的透光率比以前高约15倍,并且透光率随时间的增加而逐渐增加。浸入PBS中7天后,最佳构建体在500 wavelengthnm波长下的透射率从63±2.17%变为72±1.8%。在最佳杂交构建体上培养的人角膜上皮细胞(HCEC)和人角膜细胞(HK)的活/死染色,细胞增殖测定和免疫组织化学研究均表明,细胞在材料上粘附,增殖并保持其表型良好。另外,培养2周后,HCEC可形成分层的层。因此,我们设计的构建体适用于工程化角膜组织的构建。

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