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一种用于增强皮肤组织再生的逐层聚己内酯/壳聚糖基仿生混合纳米纤维多孔支架:整合溶液吹纺和冷冻铸造技术。

A Layer-by-Layer Polycaprolactone/Chitosan-Based Biomimetic Hybrid Nanofibroporous Scaffold for Enhanced Skin Tissue Regeneration: Integrating Solution Blow Spinning and Freeze Casting Techniques.

作者信息

Singh Divakar, Srivastava Pradeep

机构信息

School of Biochemical Engineering, Indian Institute of Technology (Banaras Hindu University), Varanasi 221005, India.

出版信息

ACS Appl Bio Mater. 2025 Jan 20;8(1):208-224. doi: 10.1021/acsabm.4c01021. Epub 2024 Dec 7.

Abstract

Nanofibers, with their high surface area-to-volume ratio, elasticity, and mechanical strength, significantly enhance scaffold structures for skin tissue engineering. The present study introduces a unique method of combining solution blow spinning (SBS) and freeze casting to fabricate biomimetic hybrid nanofibroporous scaffolds (BHNS) using polycaprolactone (PCL) and chitosan (CH). The developed scaffolds mimic the fibrous porous natural extracellular matrix (ECM) architecture, promoting cell adhesion, proliferation, and matrix deposition. The combined SBS and freeze-casting processes resulted in scaffolds with high porosity and optimal mechanical strength, crucial for effective skin regeneration. Scanning electron microscopy (SEM) confirmed the uniform, nonwoven, and beadless architecture of the PCL fibers and the fibroporous nature of the PCL/CH scaffolds. The scaffolds exhibited excellent swelling behavior, controlled degradation rates, and enhanced mechanical properties. cell studies demonstrated scaffold cell-supportive properties in terms of cell attachment, proliferation, and migration. This innovative layer-by-layer fabrication technique, integrating nanofibers with freeze-cast scaffolds, represents a significant advancement in skin tissue engineering, promising improved outcomes in wound healing and regenerative medicine.

摘要

纳米纤维具有高的表面积与体积比、弹性和机械强度,能显著增强用于皮肤组织工程的支架结构。本研究介绍了一种独特的方法,即将溶液吹纺(SBS)和冷冻铸造相结合,使用聚己内酯(PCL)和壳聚糖(CH)制造仿生混合纳米纤维多孔支架(BHNS)。所开发的支架模仿了纤维多孔天然细胞外基质(ECM)结构,促进细胞黏附、增殖和基质沉积。SBS和冷冻铸造相结合的工艺产生了具有高孔隙率和最佳机械强度的支架,这对有效的皮肤再生至关重要。扫描电子显微镜(SEM)证实了PCL纤维均匀、无纺且无珠的结构以及PCL/CH支架的纤维多孔性质。这些支架表现出优异的溶胀行为、可控的降解速率和增强的机械性能。细胞研究证明了支架在细胞附着、增殖和迁移方面具有细胞支持特性。这种将纳米纤维与冷冻铸造支架相结合的创新逐层制造技术代表了皮肤组织工程的重大进展,有望在伤口愈合和再生医学中取得更好的成果。

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