仿生共价有机框架纳米复合涂层用于综合增强可生物降解镁支架的防腐防污性能

IF 9.4 1区 医学 Q1 ENGINEERING, BIOMEDICAL Acta Biomaterialia Pub Date : 2024-05-01 DOI:10.1016/j.actbio.2024.04.012
Rui Zan , Hao Wang , Sheng Shen , Shi Yang , Han Yu , Xiyue Zhang , Xian Zhang , Xiang Chen , Mengxuan Shu , Xiao Lu , Jiazeng Xia , Yaqi Gu , Houbao Liu , Yongping Zhou , Xiaonong Zhang , Tao Suo
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引用次数: 0

摘要

利用可生物降解的镁(Mg)合金制造临时性非血管支架是生物医学工程领域的创新趋势。然而,这些生物材料的不同降解特性,以及可能引发感染或狭窄并发症的潜在细菌定植,都是阻碍其广泛临床应用的关键因素。为了克服这些局限性,本研究应用生物仿生学原理,特别是荷叶的疏水和防污特性,率先创造出纳米复合涂层。这些涂层将聚三亚甲基碳酸酯(PTMC)与共价有机框架(COFs)结合在一起,以改变支架的表面特性。对涂层的形貌、孔隙率和自抛光能力进行战略性设计的共同目的是减缓降解过程并最大限度地减少生物粘附。通过体外动态胆汁试验和体内新西兰兔胆道模型的严格测试,证明了涂层的保护特性。这些试验的经验性发现证实,基于 COF 的纳米复合涂层可有效强化镁植入物,增强其抗生物腐蚀性和抗生物污染性,并改善其在体内环境中的生物相容性。这项研究的成果为防止支架腐蚀和堵塞的多方面策略提供了一个全面的框架,从而为系统性地构思一类新型可靠的 COF 衍生表面改性技术描绘了一条远景路径,这种技术有望提高镁基支架的功效。我们的研究受莲花的启发,开发了一种纳米复合涂层,将聚三亚甲基碳酸酯与共价有机框架(COF)结合在一起。该涂层在镁基底上实现了自抛光特性和最佳表面能,从而减缓了支架降解并减少了生物膜的形成。利用动态胆汁模拟和新西兰兔胆道模型植入进行的综合评估显示,涂层提高了支架的耐用性和寿命。这些研究结果表明了基于 COF 的镁合金支架表面处理的潜力,以及在临床应用中提高支架性能和耐久性的飞跃。
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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Biomimicking covalent organic frameworks nanocomposite coating for integrated enhanced anticorrosion and antifouling properties of a biodegradable magnesium stent

The utilization of biodegradable magnesium (Mg) alloys in the fabrication of temporary non-vascular stents is an innovative trend in biomedical engineering. However, the heterogeneous degradation profiles of these biomaterials, together with potential bacterial colonization that could precipitate infectious or stenotic complications, are critical obstacles precluding their widespread clinical application. In pursuit of overcoming these limitations, this study applies the principles of biomimicry, particularly the hydrophobic and anti-fouling characteristics of lotus leaves, to pioneer the creation of nanocomposite coatings. These coatings integrate poly-trimethylene carbonate (PTMC) with covalent organic frameworks (COFs), to modify the stent's surface property. The strategic design of the coating's topography, porosity, and self-polishing capabilities collectively aims to decelerate degradation processes and minimize biological adhesion. The protective qualities of the coatings were substantiated through rigorous testing in both in vitro dynamic bile tests and in vivo New Zealand rabbit choledochal models. Empirical findings from these trials confirmed that the implementation of COF-based nanocomposite coatings robustly fortifies Mg implantations, conferring heightened resistance to both biocorrosion and biofouling as well as improved biocompatibility within bodily environments. The outcomes of this research elucidate a comprehensive framework for the multifaceted strategies against stent corrosion and fouling, thereby charting a visionary pathway toward the systematic conception of a new class of reliable COF-derived surface modifications poised to amplify the efficacy of Mg-based stents.

Statement of Significance

Biodegradable magnesium (Mg) alloys are widely utilized in temporary stents, though their rapid degradation and susceptibility to bacterial infection pose significant challenges. Our research has developed a nanocomposite coating inspired by the lotus, integrating poly-trimethylene carbonate with covalent organic frameworks (COF). The coating achieved self-polishing property and optimal surface energy on the Mg substrate, which decelerates stent degradation and reduces biofilm formation. Comprehensive evaluations utilizing dynamic bile simulations and implantation in New Zealand rabbit choledochal models reveal that the coating improves the durability and longevity of the stent. The implications of these findings suggest the potential COF-based Mg alloy stent surface treatments and a leap forward in advancing stent performance and endurance in clinical applications.

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来源期刊
Acta Biomaterialia
Acta Biomaterialia 工程技术-材料科学:生物材料
CiteScore
16.80
自引率
3.10%
发文量
776
审稿时长
30 days
期刊介绍: Acta Biomaterialia is a monthly peer-reviewed scientific journal published by Elsevier. The journal was established in January 2005. The editor-in-chief is W.R. Wagner (University of Pittsburgh). The journal covers research in biomaterials science, including the interrelationship of biomaterial structure and function from macroscale to nanoscale. Topical coverage includes biomedical and biocompatible materials.
期刊最新文献
Editorial Board Editorial Board Erratum to “Anti-fibrotic and anti-stricture effects of biodegradable biliary stents braided with dexamethasone-impregnated sheath/core structured monofilaments” [Acta Biomaterialia. Volume 178, 1 April 2024, Pages 137-146] Corrigendum to “Optimizing the cell compatibility and mechanical properties in TiZrNbTa medium-entropy alloy/β-Ti composites through phase transformation” [Acta Biomaterialia. Volume 181, June 2024, Pages 469-482] Association between neural stem/progenitor cells and biomaterials in spinal cord injury therapies: A systematic review and network meta-analysis
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