School of Traditional Chinese Pharmacy, China Pharmaceutical University, Nanjing 210009, China.
School of Biomedical Sciences, Faculty of Medicine, The Chinese University of Hong Kong, Hong Kong Special Administrative Region.
J Colloid Interface Sci. 2025 Jan;677(Pt B):1061-1074. doi: 10.1016/j.jcis.2024.08.129. Epub 2024 Aug 17.
The development of bacterial resistance significantly contributes to the persistence of infections. Although previous studies have highlighted the benefits of metal-doped positive carbon nanodots in managing bacterial wound infections, their mechanism of action is relatively simple and they may pose potential hazards to human cells. Therefore, it is essential to develop a one-stop carbon dot nanoplatform that offers high biocompatibility, antibacterial properties, and anti-inflammatory activities for wound infection management. This study explores the antibacterial efficacy, without detectable resistance, and wound-healing potential of nitrogen-doped (N-doped) negatively charged carbon dots (TPP-CDs). These carbon dots are synthesized using tannic acid (TA), polyethylene polyamine, and polyethylene glycol (PEG) as precursors, with a focus on their biocompatibility. Numerous systematic studies have shown that TPP-CDs can effectively destroy bacterial biofilms and deoxyribonucleic acid (DNA), while also inducing oxidative stress, leading to a potent antimicrobial effect. TPP-CDs also demonstrate the ability to scavenge excess free radicals, promote cellular proliferation, and inhibit inflammatory factors, all of which contribute to improved wound healing. TPP-CDs also demonstrate favorable cell imaging capabilities. These findings suggest that N-doped negatively charged TPP-CDs hold significant potential for treating bacterial infections and offer practical insights for their application in the medical field.
细菌耐药性的发展是感染持续存在的主要原因。虽然先前的研究强调了金属掺杂正碳点在治疗细菌感染伤口方面的优势,但它们的作用机制相对简单,并且可能对人体细胞存在潜在危害。因此,开发一种集高生物相容性、抗菌性能和抗炎活性于一体的碳点纳米平台来管理伤口感染至关重要。本研究探讨了氮掺杂(N 掺杂)带负电荷的碳点(TPP-CDs)的抗菌功效、无耐药性和伤口愈合潜力。这些碳点是使用单宁酸(TA)、聚乙烯多胺和聚乙二醇(PEG)作为前体制备的,重点研究了它们的生物相容性。大量系统研究表明,TPP-CDs 可以有效破坏细菌生物膜和脱氧核糖核酸(DNA),同时诱导氧化应激,从而产生强大的抗菌作用。TPP-CDs 还具有清除过多自由基、促进细胞增殖和抑制炎症因子的能力,所有这些都有助于改善伤口愈合。TPP-CDs 还具有良好的细胞成像能力。这些发现表明,N 掺杂带负电荷的 TPP-CDs 在治疗细菌感染方面具有重要的应用潜力,并为其在医学领域的应用提供了实用的见解。