Molecular Regulation of Tissue Remodeling Through Chitosan-Based Hydrogels in Wound Healing Dynamics.

IF 5.1 2区 医学 Q2 CELL & TISSUE ENGINEERING
Reyhaneh Molaei, Atefe Hosseinkhani, Mostafa Saberian
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引用次数: 0

Abstract

Effective wound healing hinges on a precisely orchestrated tissue remodeling process that restores both structural integrity and functionality. This review delineates the molecular mechanisms by which chitosan-based hydrogels revolutionize wound repair. Derived from natural chitin, chitosan uniquely combines robust antimicrobial, hemostatic, and biodegradable properties with the capacity to modulate critical intracellular signaling cascades-including transforming growth factor-β, mitogen-activated protein kinase, and PI3K/AKT. These dynamic interactions drive fibroblast proliferation, stimulate the strategic transition from type III to type I collagen deposition, and finely tune extracellular matrix reorganization, thereby mitigating excessive fibrosis and minimizing scar formation. Notwithstanding its considerable therapeutic promise, clinical translation of chitosan-based hydrogels is tempered by challenges in mechanical stability and controlled degradation. We propose that advanced material engineering-encompassing precision cross-linking, nanoparticle integration, and synergistic stem cell-based strategies-could surmount these limitations. This comprehensive synthesis of current molecular insights sets the stage for next-generation regenerative biomaterials, positioning chitosan-based hydrogels as a paradigm-shifting platform for achieving superior healing outcomes in complex clinical scenarios.

壳聚糖基水凝胶对伤口愈合动力学中组织重塑的分子调控。
有效的伤口愈合取决于精确编排的组织重塑过程,以恢复结构完整性和功能。本文综述了壳聚糖基水凝胶革新伤口修复的分子机制。壳聚糖来源于天然几丁质,独特地结合了强大的抗菌、止血和可生物降解特性,以及调节关键细胞内信号级联的能力,包括转化生长因子-β、丝裂原活化蛋白激酶和PI3K/AKT。这些动态的相互作用驱动成纤维细胞增殖,刺激从III型到I型胶原沉积的战略转变,并精细调节细胞外基质重组,从而减轻过度纤维化和减少疤痕形成。尽管具有相当大的治疗前景,但壳聚糖基水凝胶的临床翻译受到机械稳定性和控制降解方面的挑战。我们建议先进的材料工程——包括精确交联、纳米颗粒集成和基于干细胞的协同策略——可以克服这些限制。这种对当前分子见解的全面综合为下一代再生生物材料奠定了基础,将壳聚糖为基础的水凝胶定位为在复杂的临床场景中实现卓越愈合效果的范式转换平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Tissue Engineering. Part B, Reviews
Tissue Engineering. Part B, Reviews Biochemistry, Genetics and Molecular Biology-Biochemistry
CiteScore
12.80
自引率
1.60%
发文量
150
期刊介绍: Tissue Engineering Reviews (Part B) meets the urgent need for high-quality review articles by presenting critical literature overviews and systematic summaries of research within the field to assess the current standing and future directions within relevant areas and technologies. Part B publishes bi-monthly.
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