Cotton cellulose nanofiber/chitosan scaffolds for skin tissue engineering and wound healing applications.

Leonara Fayer, Rebecca Vasconcellos, Eduarda Rocha de Oliveira, Caroline da Silva Almeida Ferreira, Nelson Luis Gonçalves Dias de Souza, Taíse Matte Manhabosco, Luiz Fernando Cappa de Oliveira, Maria Alice Martins, Humberto de Mello Brandão, Michele Munk
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Abstract

Chitosan (CS) is a promising polymeric biomaterial for use in scaffolds forin vitroskin models and wound dressings, owing to its non-antigenic and antimicrobial properties. However, CS often exhibits insufficient physicochemical properties, mechanical strength, and bioactivity, limiting its efficacy in demanding applications. To address these challenges, cotton cellulose nanofibers (CNFs) represent a promising nanomaterial for enhancing CS-based scaffolds in tissue engineering. CNF offers superior stiffness, and mechanical properties that enhance cellular adhesion and proliferation, both crucial for effective tissue regeneration and healing. This study aimed to develop and characterize a scaffold combining cotton CNF and CS, focusing on its cytocompatibility with human fibroblasts and keratinocytes. The cotton CNF/CS scaffold was fabricated using the casting technique, and its physicochemical properties and cellular compatibility were assessedin vitro. The results demonstrated that incorporating cotton CNF significantly enhanced the stability of the CS matrix. The CS scaffold with 1000 μg ml-1of cotton CNF exhibited increased roughness and reduced rupture strain compared to the pure CS scaffold. The cotton CNF/CS scaffold effectively promoted the adhesion, viability, proliferation, migration, and collagen synthesis of skin cells. Notably, increased cell viability was observed in human fibroblasts cultured on scaffolds with higher concentrations of cotton CNF (100 and 1000 μg ml-1). Based on the findings, the cotton CNF/CS scaffold demonstrates enhanced physicochemical properties and bioactivity, making it a promising candidate for the development ofin vitrohuman skin models and wound healing dressings.

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棉纤维素纳米纤维/壳聚糖支架在皮肤组织工程和伤口愈合中的应用。
壳聚糖(CS)具有非抗原性和抗菌性,是一种很有前途的高分子生物材料,可用于体外皮肤模型支架和伤口敷料。然而,CS通常表现出不足的物理化学性质,机械强度和生物活性,限制了其在苛刻应用中的功效。为了解决这些问题,棉花纤维素纳米纤维(CNF)是一种很有前途的纳米材料,可用于增强组织工程中基于cs的支架。CNF提供了优越的硬度和机械性能,增强细胞粘附和增殖,这对有效的组织再生和愈合至关重要。本研究旨在开发并表征棉花CNF和CS的复合支架,重点研究其与人成纤维细胞和角化细胞的细胞相容性。采用铸造法制备了棉花CNF/CS支架,并对其体外理化性能和细胞相容性进行了评价。结果表明,添加棉花CNF显著提高了CS基质的稳定性。添加1000 μg/mL棉花CNF的CS支架与纯CS支架相比,粗糙度增加,断裂应变降低。棉CNF/CS支架能有效促进皮肤细胞的粘附、活力、增殖、迁移和胶原合成。值得注意的是,在高浓度棉花CNF(100和1000 μg/mL)的支架上培养的人成纤维细胞的细胞活力增加。基于这些发现,棉花CNF/CS支架表现出增强的物理化学特性和生物活性,使其成为体外人体皮肤模型和伤口愈合敷料开发的有希望的候选者。
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