“Small dots, multiple functions” : unveiling the veil of a bioactive quercetin carbon dot and its multifaceted antibacterial and osteogenesis mechanisms for infectious bone defect repair
Chen, Qianglong and Ma, Jinjin and Yu, Shiyu and Su, Yan and Guo, Haobo and Jiang, Hao and He, Hui and Hu, Jie and Liu, Yisi and Yao, Liwei and Meng, Bin and Yuan, Zhangqin and Shu, Wenmiao and Wang, Lijie and Mao, Haijiao and Zhang, Ming and Li, Bin and Han, Fengxuan (2025) “Small dots, multiple functions” : unveiling the veil of a bioactive quercetin carbon dot and its multifaceted antibacterial and osteogenesis mechanisms for infectious bone defect repair. Advanced Functional Materials, 35 (46). 2507840. ISSN 1616-3028 (https://doi.org/10.1002/adfm.202507840)
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Abstract
In infectious bone injury microenvironments, an ideal material should possess antibacterial, osteogenic, and angiogenic functions simultaneously. However, relying on a single material to achieve the above goals is challenging. In this study, a quercetin carbon dot (QCD) is developed with multiple functions. The structure of QCDs are analysed, and the results of molecular docking and cellular thermal-shift assay confirmed RTKs as potential targets. Then the QCDs are incorporated into methacryloylated polyglutamic acid grafted with aminophenylboronic acid hydrogel with reactive oxygen species-responsive properties. The QCDs can activate the Rap1 pathway in bone marrow mesenchymal stem cells, which can promote angiogenesis and translocation of β-catenin to promote osteogenesis. Moreover, the Rap1 can also activate PI3K-AKT pathway related to cell proliferation. For killing bacteria, the QCDs inhibit the gene expression of dapE, phoP, and secA2, which can disrupt the bacterial wall, inhibit drug resistance, and interfere with energy metabolism. This study reveals the chemical structure of QCDs, and finds they can interact with RTKs and thus activate the Rap1 signaling pathway to promote bone regeneration and kill bacteria by destroying their walls and interfering with energy metabolism, thus providing insights for developing a simplified component with multiple functions for repairing infectious bone defects.
ORCID iDs
Chen, Qianglong, Ma, Jinjin, Yu, Shiyu, Su, Yan, Guo, Haobo, Jiang, Hao, He, Hui, Hu, Jie, Liu, Yisi, Yao, Liwei, Meng, Bin, Yuan, Zhangqin, Shu, Wenmiao
ORCID: https://orcid.org/0000-0002-1220-361X, Wang, Lijie, Mao, Haijiao, Zhang, Ming, Li, Bin and Han, Fengxuan;
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Item type: Article ID code: 93359 Dates: DateEvent12 November 2025Published29 May 2025Published Online6 May 2025Accepted27 March 2025SubmittedSubjects: Medicine > Biomedical engineering. Electronics. Instrumentation Department: Faculty of Engineering > Biomedical Engineering Depositing user: Pure Administrator Date deposited: 03 Jul 2025 11:04 Last modified: 13 Aug 2026 00:19 Related URLs: URI: https://strathprints.strath.ac.uk/id/eprint/93359
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