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用于气管再生方法的管状组织工程支架靶向细胞接种方法。

Method for Targeted Cellular Seeding of Tubular Tissue-Engineered Scaffolds for Tracheal Regeneration Approaches.

作者信息

Soriano Luis, Lemoine Mark, Cavanagh Brenton, Johnston Anna, Khalid Tehreem, O'Brien Fergal J, O'Leary Cian, Cryan Sally-Ann

机构信息

School of Pharmacy and Biomolecular Sciences, RCSI University of Medicine and Health Sciences, Dublin, Ireland D02 YN77.

Department of Anatomy & Regenerative Medicine, Tissue Engineering Research Group (TERG), RCSI University of Medicine and Health Sciences, Dublin, Ireland D02 YN77.

出版信息

ACS Biomater Sci Eng. 2025 Sep 8;11(9):5293-5305. doi: 10.1021/acsbiomaterials.5c00365. Epub 2025 Aug 7.

Abstract

Effective tracheal tissue engineering benefits from scaffolds that mimic the native structure of the tissue, provide mechanical stability, and support spatially controlled cell seeding to encourage tissue regeneration. This study presents a novel approach for fabricating tubular scaffolds for tracheal regeneration that integrates a 3D-printed polycaprolactone (PCL) backbone with a freeze-dried collagen-hyaluronic acid (CHyA) layer. Two scaffold geometries (tubular and c-shaped) were produced and mechanically characterized, and it was demonstrated that PCL reinforcement significantly enhanced scaffold structural robustness and durability. To achieve spatially selective cell seeding, custom-designed PLA accessories facilitated the precise deposition of respiratory epithelial cells (Calu-3) onto the inner layer and lung-derived fibroblasts (Wi38) onto the outer layer of the scaffolds. Monoculture experiments showed successful cell localization, while sequential seeding established an effective coculture system with enhanced epithelial coverage and sustained fibroblast viability. This study validates a scalable and customizable method for manufacturing mechanically robust tubular scaffolds with precise spatial cell organization, providing a promising platform for tracheal tissue engineering and potentially other tubular applications such as vascular or gastrointestinal regeneration. Future work will focus on validating this method with primary human cells, incorporating air-liquid interface cultures to enhance epithelial differentiation, and scaling up the constructs to anatomically relevant sizes to advance clinical translation.

摘要

有效的气管组织工程受益于能够模拟组织天然结构、提供机械稳定性并支持空间控制细胞接种以促进组织再生的支架。本研究提出了一种用于制造气管再生管状支架的新方法,该方法将3D打印的聚己内酯(PCL)骨架与冻干的胶原-透明质酸(CHyA)层相结合。制备了两种支架几何形状(管状和C形)并对其进行了力学表征,结果表明PCL增强显著提高了支架的结构坚固性和耐久性。为了实现空间选择性细胞接种,定制设计的聚乳酸(PLA)配件有助于将呼吸道上皮细胞(Calu-3)精确沉积到支架的内层,将肺源性成纤维细胞(Wi38)沉积到支架的外层。单培养实验显示细胞定位成功,而顺序接种建立了一个有效的共培养系统,上皮覆盖率提高,成纤维细胞活力得以维持。本研究验证了一种可扩展且可定制的方法,用于制造具有精确空间细胞组织的机械坚固的管状支架,为气管组织工程以及潜在的其他管状应用(如血管或胃肠道再生)提供了一个有前景的平台。未来的工作将集中于用原代人类细胞验证该方法,纳入气液界面培养以增强上皮分化,并将构建体扩大到与解剖学相关的尺寸以推进临床转化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e749/12421502/9f773cb718a3/ab5c00365_0001.jpg

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