优化工艺和揭示治疗潜力的电纺明胶纳米纤维的生物医学应用。

Sivapregassame Vishvaja, Dhamodharan Priyadharshini, Govindaraj Sabarees, Ganesan Padmini Tamilarasi, Siddan Gouthaman, Viswas Raja Solomon
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引用次数: 0

摘要

明胶主要来源于动物,如牛、猪和鱼的皮肤和骨头,表现出非凡的特性,使其成为各种当代应用的理想候选者。其独特的特性包括良好的生物相容性、无毒性、可生物降解性、低免疫原性、易于化学修饰以及与细胞外基质(ECM)结构相似。这些特点导致了明胶基生物材料的发展,具有可调的性质和专门的功能。静电纺丝仍然是制备明胶纳米纤维最广泛采用和最有效的技术。这些纳米纤维由于其可调节的纤维形态、增强的表面性能、可控的孔隙率、机械适应性、高表面积、多尺度孔径分布和内在的生物活性特性,在生物医学领域受到了极大的关注。功能化明胶基静电纺丝纳米纤维是生命科学中一个快速发展的领域,它能够创造创新的药物输送平台和下一代组织再生支架。它们的应用跨越多个领域,包括骨和软骨修复、视网膜和血管工程、心肌再生、癌症治疗、慢性伤口管理和生物传感器开发。在本文中,我们对明胶基纳米纤维的进展进行了全面的评估,强调了控制明胶静电纺丝的关键参数,并探讨了不同生物医学领域的最新创新,强调了重大进展和研究成果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimizing processes and unveiling the therapeutic potential of electrospun gelatin nanofibers for biomedical applications.

Gelatin, derived primarily from animal sources such as bovine, porcine, and fish skin and bones, exhibits remarkable properties that make it an ideal candidate for various contemporary applications. Its unique attributes include excellent biocompatibility, non-toxicity, biodegradability, low immunogenicity, ease of chemical modification, and structural similarity to the extracellular matrix (ECM). These features have led to the development of gelatin-based biomaterials with tunable properties and specialized functionalities. Electrospinning remains the most widely adopted and effective technique for fabricating gelatin nanofibers. These nanofibers are gaining significant attention in the biomedical sector due to their adjustable fiber morphology, enhanced surface properties, controllable porosity, mechanical adaptability, high surface area, multi-scale pore size distribution, and intrinsic bioactive characteristics. Functionalized gelatin-based electrospun nanofibers are a rapidly advancing area in the life sciences, enabling the creation of innovative drug delivery platforms and next-generation scaffolds for tissue regeneration. Their applications span across various domains, including bone and cartilage repair, retinal and vascular engineering, myocardial regeneration, cancer therapy, chronic wound management, and biosensor development. In this article, we provide a comprehensive assessment of the progression of gelatin-based nanofibers, highlight the critical parameters governing the electrospinning of gelatin, and explore recent innovations in diverse biomedical fields, emphasizing significant advancements and research findings.

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来源期刊
Journal of materials chemistry. B
Journal of materials chemistry. B 化学科学, 工程与材料, 生命科学, 分析化学, 高分子组装与超分子结构, 高分子科学, 免疫生物学, 免疫学, 生化分析及生物传感, 组织工程学, 生物力学与组织工程学, 资源循环科学, 冶金与矿业, 生物医用高分子材料, 有机高分子材料, 金属材料的制备科学与跨学科应用基础, 金属材料, 样品前处理方法与技术, 有机分子功能材料化学, 有机化学
CiteScore
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