牙龈成纤维细胞植入生物工程支架治疗局部牙龈萎缩

Biomedical engineering advances Pub Date : 2025-06-01 Epub Date: 2024-12-19 DOI:10.1016/j.bea.2024.100142
Rajul Chordia , Aritri Ghosh , Shalini Dasgupta , Sayandeep Saha , Tirthankar Debnath , Ashit Kumar Pal , Ananya Barui
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引用次数: 0

摘要

牙龈萎缩是一个普遍存在的问题,目前在大多数印度人口,与近端间组织缺乏,导致牙齿问题。由于自体移植物的发病率和目前人工移植物的愈合有限,其治疗仍然是牙周病领域的一个主要问题。本研究的目的是开发生物工程壳聚糖-明胶支架,以原代牙龈成纤维细胞为种子,作为无创移植物来解决牙龈衰退问题。将成纤维细胞植入不同壳聚糖-明胶比例(1:1,1:3)和壳聚糖对照的支架上。综合表征包括形态学、力学、生化和细胞分析,包括细胞活力、迁移和转录组学研究。壳聚糖-明胶支架(1:3)具有良好的生物降解和溶胀能力。此外,体外研究显示细胞相容性、成纤维细胞迁移和F-actin表达显著提高。该支架中FGF-2基因的上调表明其促进成纤维细胞生长和改善伤口愈合潜力的潜力。此外,抗菌效果反映了成纤维细胞种子壳聚糖-明胶(1:3)支架在牙周再生组织工程中的临床应用潜力。
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Gingival fibroblast seeded bioengineered scaffolds for treatment of localized gingival recession
Gingival recession is a prevalent issue present in most of the Indian population, associated with interproximal tissue deficiency, leading to dental problems. Its treatment has remained a major problem in the field of periodontics due to autologous graft morbidity and limited healing associated with the current artificial grafts. The present study aims to is to develop bio-engineered chitosan-gelatin scaffolds seeded with primary gingival fibroblasts to address gingival recession as noninvasive grafts. Gingival fibroblasts were seeded on scaffolds with varying chitosan-gelatin ratios (1:1, 1:3) (v/v) and a chitosan control. Comprehensive characterization included morphological, mechanical, biochemical, and cellular analyses including cell viability, migration and transcriptomic studies. The chitosan-gelatin scaffolds (1:3) demonstrated a highly porous architecture with satisfactory biodegradation and swelling capacity. Furthermore, in vitro studies show significantly higher cellular compatibility, fibroblast migration, and F-actin expression. The upregulation of FGF-2 gene in this scaffold indicates its potential for promoting fibroblastic growth and improved wound healing potential. In addition, the antibacterial impact reflect its clinical potential of the fibroblast-seeded chitosan-gelatin (1:3) scaffold for potential tissue engineering applications in periodontal regeneration.
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Biomedical engineering advances
Biomedical engineering advances Bioengineering, Biomedical Engineering
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59 days
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