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ZIF-8 修饰的黑磷纳米片掺入可注射双组份水凝胶中以增强光热抗菌和成骨活性。

ZIF-8-Modified Black Phosphorus Nanosheets Incorporated into Injectable Dual-Component Hydrogels for Enhanced Photothermal Antibacterial and Osteogenic Activities.

机构信息

Emergency Department, The State Key Laboratory for Complex, Severe, and Rare Diseases, Peking Union Medical College Hospital, Chinese Academy of Medical Science and Peking Union Medical College, Beijing 100730, China.

Research Unit of Island Emergency Medicine, Chinese Academy of Medical Sciences (No. 2019RU013), Hainan Medical University, Haikou 571199, China.

出版信息

ACS Appl Mater Interfaces. 2024 Jun 26;16(25):32058-32077. doi: 10.1021/acsami.4c05298. Epub 2024 Jun 13.

Abstract

The development of growth factor-free biomaterials for bone tissue regeneration with anti-infection and anti-inflammatory activities remains challenging. Black phosphorus nanosheets (BPNs), with distinctive attributes, including photothermal conversion and calcium ion chelation, offer potential for use in bone tissue engineering and infection prevention. However, BPNs are prone to oxidation and degradation in aqueous environments, and methods to stabilize BPNs for long-term bone repair remain insufficient. Herein, zeolitic imidazolate framework-8 (ZIF-8) was used to stabilize BPNs via in situ crystallization onto the surface of BPNs (BP@ZIF-8 nanocomposite). A novel injectable dual-component hydrogel comprising gelatin methacryloyl (GelMA) and methacrylate-modified hyaluronic acid (HAMA) was used as a BP@ZIF-8 nanocomposite carrier (GelMA/HAMA/BP@ZIF-8). The BP@ZIF-8 nanocomposite could effectively protect internal BPNs from oxidation and enhance the long-term photothermal performance of the hydrogel in both in vitro and in vivo settings. The GelMA/HAMA/BP@ZIF-8 hydrogel was injectable and exhibited outstanding performance for photothermal conversion, mechanical strength, and biodegradability, as well as excellent photothermal antibacterial activity against and in vitro and in an in vivo rat model. The GelMA/HAMA/BP@ZIF-8 hydrogel also provided a microenvironment conducive to osteogenic differentiation, promoting the transformation of M2 macrophages and inhibiting inflammatory responses. Furthermore, the hydrogel promoted bone regeneration and had a synergistic effect with near-infrared irradiation in a rat skull-defect model. Transcriptome sequencing analysis revealed that the PI3K-AKT- and calcium-signaling pathways may be involved in promoting osteogenic differentiation induced by the GH-BZ hydrogel. This study presents an innovative, multifaceted solution to the challenges of bone tissue regeneration with antibacterial and anti-inflammatory effects, providing insights into the design of smart biomaterials with dual therapeutic capabilities.

摘要

用于骨组织再生的无生长因子生物材料的开发具有抗感染和抗炎活性,这仍然具有挑战性。黑磷纳米片(BPNs)具有独特的属性,包括光热转换和钙离子螯合作用,为骨组织工程和感染预防提供了潜力。然而,BPNs 在水介质中容易氧化和降解,并且用于长期骨修复的稳定 BPNs 的方法仍然不足。在此,沸石咪唑酯骨架-8(ZIF-8)通过在 BPNs 表面原位结晶被用于稳定 BPNs(BP@ZIF-8 纳米复合材料)。一种新型的可注射双组分水凝胶,由明胶甲基丙烯酰基(GelMA)和甲基丙烯酸改性透明质酸(HAMA)组成,被用作 BP@ZIF-8 纳米复合材料载体(GelMA/HAMA/BP@ZIF-8)。BP@ZIF-8 纳米复合材料可以有效地保护内部 BPNs 免受氧化,并增强水凝胶在体外和体内的长期光热性能。GelMA/HAMA/BP@ZIF-8 水凝胶是可注射的,具有出色的光热转换、机械强度和生物降解性能,以及出色的体外和体内光热抗菌活性,可对抗 和 。GelMA/HAMA/BP@ZIF-8 水凝胶还提供了有利于成骨分化的微环境,促进 M2 巨噬细胞的转化并抑制炎症反应。此外,水凝胶在大鼠颅骨缺损模型中促进了骨再生,并与近红外辐射具有协同作用。转录组测序分析表明,PI3K-AKT-和钙信号通路可能参与促进 GH-BZ 水凝胶诱导的成骨分化。本研究提出了一种创新的、多方面的解决方案,用于具有抗菌和抗炎作用的骨组织再生,为具有双重治疗能力的智能生物材料的设计提供了思路。

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