呋喃基共聚物的酶法合成:材料特性和生物医学应用潜力。

Q3 Medicine Polimery w medycynie Pub Date : 2024-01-01 DOI:10.17219/pim/184535
Martyna Sokołowska, Moein Zarei, Mirosława El Fray
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引用次数: 0

摘要

背景:由于人们日益意识到传统材料对环境的影响,强调需要生态友好型替代品,因此对先进的可持续聚酯材料的需求日益增长。可持续性已成为材料开发的核心,包括在生物医学领域,生物基和环境友好型解决方案是一个快速发展的领域:本研究旨在全面评估一种新型酶催化呋喃基共聚物--聚(呋喃十亚甲基酸)-共(呋喃二亚油酸)(PDF-DLF),其软硬段比例为 70-30 wt%。材料和方法:PDF-DLF 由生物基单体合成,使用南极念珠菌脂肪酶 B(CAL-B)作为生物催化剂。材料表征包括动态机械热分析(DMTA),以评估其机械行为和热性能。酶降解研究确定了生物降解性,而细胞毒性测试则确定了体外生物相容性。共聚物被电纺成纳米纤维,扫描电子显微镜(SEM)用于分析其形态:结果:PDF-DLF 的机械和热性能显示出较高的存储模量和两个主要的温度转变。酶降解研究和细胞毒性评估证实了其生物降解性和体外生物相容性。电纺丝成功地将共聚物转化为直径在 500 纳米到 700 纳米之间的纳米纤维:这项研究极大地推动了我们对具有多功能加工能力的可持续聚酯的了解。电纺丝的成功突显了其作为医疗工程可生物降解支架的潜力,同时还具有生物相容性和足够的机械性能。它为包括组织工程在内的关键生物医学产业中的可持续材料开辟了新的机遇。
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Enzymatic synthesis of furan-based copolymers: Material characterization and potential for biomedical applications.

Background: Today's growing demand for advanced and sustainable polyester materials is driven by an increasing awareness of the environmental impact of traditional materials, emphasizing the need for eco-friendly alternatives. Sustainability has become central in materials development, including the biomedical area, where biobased and environmentally friendly solutions are a rapidly growing field.

Objectives: This research aims to comprehensively evaluate a new enzymatically catalyzed furan-based copolymer, poly(decamethylene furanoate)-co-(dilinoleic furanoate) (PDF-DLF), with a 70-30 wt% hard-to-soft segment ratio. Then, its performance across medical applications is explored, with a particular focus on its potential as a nanofibrous scaffolding material.

Material and methods: PDF-DLF was synthesized from biobased monomers using Candida antarctica lipase B (CAL-B) as the biocatalyst. Material characterization included dynamic mechan‑ical thermal analysis (DMTA) to assess the mechanical behavior and thermal properties. Enzymatic degradation studies determined biodegradability, while cytotoxicity tests established in vitro biocompatibility. The copolymer was electrospun into nanofibers, with scanning electron microscopy (SEM) employed to analyze their morphology.

Results: PDF-DLF displays mechanical and thermal properties indicating high storage modulus and 2 main temperature transitions. Enzymatic degradation studies and cytotoxicity assessments confirm biodegradability and in vitro biocompatibility. Electrospinning successfully transformed the copolymer into nanofibers with diameters ranging from 500 nm to 700 nm.

Conclusions: This study significantly advances our understanding of sustainable polyesters with versatile processing capabilities. The successful electrospinning highlights its potential as a biodegradable scaffold for medical engineering, supported by biocompatibility and sufficient mechanical properties. It opens new opportunities for sustainable materials in critical biomedical industries, including tissue engineering.

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来源期刊
Polimery w medycynie
Polimery w medycynie Medicine-Medicine (all)
CiteScore
3.30
自引率
0.00%
发文量
9
审稿时长
53 weeks
期刊最新文献
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