PMMA骨水泥AgNP@CDs纳米复合材料用于感染控制和炎症缓解。

IF 8.1 1区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Regenerative Biomaterials Pub Date : 2025-08-14 eCollection Date: 2025-01-01 DOI:10.1093/rb/rbaf086
Ihsan Ullah, Jian Ju, Yapei Song, Siyi Chen, Mengshi Chen, Siran Wang, Wenzhen Zhang, Wenhui Chen, Zhifeng You, Huaqiong Li, Feng Wen, Wei Zuo
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引用次数: 0

摘要

生物惰性聚甲基丙烯酸甲酯(PMMA)作为骨水泥材料广泛应用于骨科和创伤外科;然而,其对细菌感染的易感性和生物惰性限制了其临床应用。在这项研究中,我们开发了一种基于pmma的骨水泥,其中含有银纳米颗粒-碳点(AgNP@CDs)纳米复合材料(~ 70 nm),浓度为2 wt%,杨氏模量(324.74±7.08 MPa),可以同时抵抗细菌感染,最大限度地减少细胞毒性并支持组织再生。CDs稳定和功能化AgNPs,改善其分散性和生物利用度,同时通过与骨水泥结合实现抗菌离子的可控和持续释放。对复合材料的抗菌效果进行了全面评估,揭示了其破坏细菌细胞膜、产生活性氧和抑制细菌生长的能力。在体外和体内研究中,这些机制共同有助于显著减少细菌生长高达90%。AgNP@CDs的掺入确保了持续的抗菌活性,通过控制银离子的浸出来防止细菌定植。生物相容性评估显示,与纯PMMA骨水泥相比,PMMA复合材料(PMMA@2Ag-CDs)显著改善了细胞增殖、粘附和迁移。此外,组织学分析显示,PMMA组纤维层厚度为699±35.32µm,表明炎症,而PMMA@2Ag-CDs组纤维层厚度从第7天的301.18±22.42µm减少到第14天的198.07±15.21µm,炎症明显减轻。PMMA@2Ag-CDs复合材料表现出更好的组织整合,有组织的胶原沉积和增强的血管生成,表明更有效的组织再生。减少炎症和改善组织重塑表明,该复合材料促进了更有利的组织再生环境,并最大限度地减少了并发症。这项研究表明,PMMA@2Ag-CDs复合材料为预防感染和减轻炎症反应提供了一个有希望的解决方案。银纳米颗粒-碳点纳米复合材料的骨水泥功能化是一种很有前途的策略,在骨科和创伤外科中具有潜在的实际应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

PMMA bone cement with AgNP@CDs nanocomposite for infection control and inflammation mitigation.

PMMA bone cement with AgNP@CDs nanocomposite for infection control and inflammation mitigation.

PMMA bone cement with AgNP@CDs nanocomposite for infection control and inflammation mitigation.

PMMA bone cement with AgNP@CDs nanocomposite for infection control and inflammation mitigation.

Bioinert poly(methyl methacrylate) (PMMA) is widely employed as a bone cement material in orthopedic and trauma surgery applications; however, its susceptibility to bacterial infection and bioinert nature limits its clinical applications. In this study, we developed a PMMA-based bone cement incorporating a silver nanoparticle-carbon dots (AgNP@CDs) nanocomposite (∼70 nm) at concentrations (2 wt%) with a Young's modulus (324.74 ± 7.08 MPa) to simultaneously combat bacterial infections, minimize cytotoxicity and support tissue regeneration. The CDs stabilize and functionalize AgNPs, improving their dispersion and bioavailability while enabling the controlled and sustained release of antimicrobial ions through incorporation with bone cement. The antibacterial efficacy of the composite was thoroughly evaluated, revealing its ability to disrupt bacterial cell membranes, generate reactive oxygen species and inhibit bacterial growth. These mechanisms collectively contribute to a significant reduction in bacterial growth of up to ∼90% in both in vitro and in vivo studies. The incorporation of AgNP@CDs ensures sustained antimicrobial activity, preventing bacterial colonization by controlling the leaching of Ag ions. Biocompatibility assessments showed that the PMMA composite (PMMA@2Ag-CDs) significantly improved cell proliferation, adhesion and migration compared with pure PMMA bone cement. Additionally, histological analysis revealed that the PMMA group showed a fibrous layer thickness of 699 ± 35.32 µm, indicative of inflammation, while the PMMA@2Ag-CDs group reduced this thickness from 301.18 ± 22.42 µm on day 7 to 198.07 ± 15.21 µm on day 14, significantly decreasing inflammation. The PMMA@2Ag-CDs composite demonstrated better tissue integration, with organized collagen deposition and enhanced angiogenesis, indicating more efficient tissue regeneration. The reduced inflammation and improved tissue remodeling suggest that this composite promotes a more favorable tissue regeneration environment and minimizes complications. This study demonstrates that the PMMA@2Ag-CDs composite offers a promising solution for the prevention of infections and mitigation of inflammatory responses. Functionalization of bone cement through the incorporation of Ag nanoparticle-carbon dot nanocomposites is a promising strategy with potential practical applications in orthopedic and trauma surgery.

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来源期刊
Regenerative Biomaterials
Regenerative Biomaterials Materials Science-Biomaterials
CiteScore
7.90
自引率
16.40%
发文量
92
审稿时长
10 weeks
期刊介绍: Regenerative Biomaterials is an international, interdisciplinary, peer-reviewed journal publishing the latest advances in biomaterials and regenerative medicine. The journal provides a forum for the publication of original research papers, reviews, clinical case reports, and commentaries on the topics relevant to the development of advanced regenerative biomaterials concerning novel regenerative technologies and therapeutic approaches for the regeneration and repair of damaged tissues and organs. The interactions of biomaterials with cells and tissue, especially with stem cells, will be of particular focus.
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