首页> 外文期刊>Acta biomaterialia >The roles of knitted mesh-reinforced collagen-chitosan hybrid scaffold in the one-step repair of full-thickness skin defects in rats.
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The roles of knitted mesh-reinforced collagen-chitosan hybrid scaffold in the one-step repair of full-thickness skin defects in rats.

机译:编织网状增强胶原蛋白-壳聚糖混合支架在一步修复大鼠全层皮肤缺损中的作用。

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摘要

Full-thickness skin defects represent a significant and urgent clinical problem. Dermal substitutes serving as a regenerative template to induce dermal reconstruction provide a promising method to treat serious skin defects. Although collagen-chitosan dermal scaffolds display good biocompatibility and a suitable porous structure for angiogenesis and tissue regeneration, their poor mechanical properties compromise their application. To develop a well-supported dermal substitute, a poly(l-lactide-co-glycolide) (PLGA) knitted mesh was fabricated and integrated with collagen-chitosan scaffold (CCS) to obtain a PLGA knitted mesh-reinforced CCS (PLGAm/CCS). The morphology of this PLGAm/CCS was investigated in vitro. To characterize the tissue response, specifically angiogenesis and tissue regeneration, the PLGAm/CCS was transplanted in combination with thin split-thickness autografts to repair full-thickness skin wounds using a one-step surgical procedure in Sprague-Dawley rats. These results were then compared with CCSs. At weeks 2, 4 and 8 after the operation, the healing wounds were imaged to analyse wound changes, and tissue specimens were harvested for histology, immunohistochemistry, real-time quantitative polymerase chain reaction and Western blot analysis. The results demonstrated that collagen-chitosan sponge in the PLGAm/CCS remained porous, interconnected and occupied the openings of PLGA mesh, and the incorporation of the PLGA knitted mesh into CCS improved the mechanical strength with little influence on its mean pore size and porosity. Following transplantation, PLGAm/CCS inhibited wound contraction, and effectively promoted neotissue formation and blood vessel ingrowth. In conclusion, the mechanical strength of the scaffolds plays an important role in the process of tissue regeneration and vascularization. The ability of PLGAm/CCS to promote angiogenesis and induce in situ tissue regeneration demonstrates its potential in skin tissue engineering.
机译:全层皮肤缺陷代表了重大而紧迫的临床问题。用作皮肤再生的再生模板的真皮替代品提供了一种治疗严重皮肤缺陷的有前途的方法。尽管胶原-壳聚糖真皮支架显示出良好的生物相容性和适合血管生成和组织再生的多孔结构,但其差的机械性能损害了它们的应用。为了开发良好支撑的真皮替代品,制造了聚乳酸丙交酯(PLGA)针织网,并与胶原壳聚糖支架(CCS)集成在一起,从而获得了PLGA针织网增强CCS(PLGAm / CCS) )。在体外研究了这种PLGAm / CCS的形态。为了表征组织反应,特别是血管生成和组织再生,PLGAm / CCS与瘦裂自体移植物一起移植,以一步手术方式在Sprague-Dawley大鼠中修复全层皮肤伤口。然后将这些结果与CCS进行比较。术后第2、4和8周,对愈合的伤口进行成像以分析伤口的变化,并收集组织标本进行组织学,免疫组织化学,实时定量聚合酶链反应和Western印迹分析。结果表明,PLGAm / CCS中的胶原壳聚糖海绵保持多孔,相互连接并占据PLGA网孔,并且将PLGA针织网布并入CCS提高了机械强度,而对平均孔径和孔隙率的影响很小。移植后,PLGAm / CCS抑制伤口收缩,并有效促进新组织形成和血管向内生长。总之,支架的机械强度在组织再生和血管形成过程中起着重要作用。 PLGAm / CCS促进血管生成和诱导原位组织再生的能力证明了其在皮肤组织工程中的潜力。

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