[1] Tian X, Zeng A, Liu Z, et al. Carbon quantum dots: In vitro and in vivo studies on biocompatibility and biointeractions for optical imaging [J]. Int J Nanomedicine, 2020, 15:6519-6529. [2] Yadav P, Shah K, Kansara K, et al. Tissue-derived primary cell type dictates the endocytic uptake route of carbon quantum dots and in vivo uptake [J]. ACS Appl Bio Mater, 2023, 6(4):1629-1638. [3] Yao L, Zhao MM, Luo QW, et al. Carbon quantum dots-based nanozyme from coffee induces cancer cell ferroptosis to activate antitumor immunity [J]. ACS Nano,2022,16(6):9228-9239. [4] Wang H, Yang S, Chen L, et al. Tumor diagnosis using carbon-based quantum dots: Detection based on the hallmarks of cancer [J]. Bioact Mater, 2023, 33:174-222. [5] Majood M, Garg P, Chaurasia R, et al. Carbon quantum dots for stem cell imaging and deciding the fate of stem cell differentiation [J]. ACS Omega, 2022, 7(33):28685-28693. [6] Li J, Zhang L, Chen J, et al. One-step synthesized amphiphilic carbon dots for the super-resolution imaging of endoplasmic reticulum in live cells [J]. RSC Adv, 2022, 12(30):19424-19430. [7] Zhao C, Liao Z, Liu W, et al. Carbon quantum dots modified tubular g-C3N4 with enhanced photocatalytic activity for carbamazepine elimination: Mechanisms, degradation pathway and DFT calculation [J]. J Hazard Mater, 2020, 381:120957. [8] Liu B, Su Y, Wu S, et al. Local photothermal/photodynamic synergistic antibacterial therapy based on two-dimensional BP@CQDs triggered by single NIR light source [J]. Photodiagnosis Photodyn Ther, 2022, 39:102905. [9] Fu X, Ni Y, Wang G, et al. Synergistic and long-lasting wound dressings promote multidrug-resistant staphylococcus aureus-infected wound healing [J]. Int J Nanomedicine, 2023, 18:4663-4679. [10] Liu J, Lu S, Tang Q, et al. One-step hydrothermal synthesis of photoluminescent carbon nanodots with selective antibacterial activity against Porphyromonas gingivalis [J]. Nanoscale, 2017, 9(21):7135-7142. [11] Tang S, Zhang H, Mei L, et al. Fucoidan-derived carbon dots against Enterococcus faecalis biofilm and infected dentinal tubules for the treatment of persistent endodontic infections [J]. J Nanobiotechnology, 2022, 20(1):321. [12] Ostadhossein F, Moitra P, Altun E, et al. Function-adaptive clustered nanoparticles reverse Streptococcus mutans dental biofilm and maintain microbiota balance [J]. Commun Biol, 2021, 4(1):846. [13] Sheikh MA, Chandok RS, Abida K. High energy density storage, antifungal activity and enhanced bioimaging by green self-doped heteroatom carbon dots [J]. Discov Nano, 2023, 18(1):132. [14] Chen HH, Lin CJ, Anand A, et al. Development of antiviral carbon quantum dots that target the Japanese encephalitis virus envelope protein [J]. J Biol Chem, 2022, 298(6):101957. [15] Hao X, Huang L, Zhao C, et al. Antibacterial activity of positively charged carbon quantum dots without detectable resistance for wound healing with mixed bacteria infection [J]. Mater Sci Eng C Mater Biol Appl, 2021, 123:111971. [16] Li P, Yu M, Ke X, et al. Cytocompatible amphipathic carbon quantum dots as potent membrane-active antibacterial agents with low drug resistance and effective inhibition of biofilm formation [J]. ACS Appl Bio Mater, 2022, 5(7):3290-3299. [17] Cheng X, Chen H, Yang F, et al. All-small-molecule supramolecular hydrogels assembled from guanosine 5'-monophosphate disodium salt and tobramycin for the treatment of bacterial keratitis [J]. Bioact Mater, 2022, 16:293-300. [18] Zhao D, Li X, Xu M, et al. Preparations of antibacterial yellow-green-fluorescent carbon dots and carbon dots-lysozyme complex and their applications in bacterial imaging and bacteria/biofilm inhibition/clearance [J]. Int J Biol Macromol, 2023, 231:123303. [19] Jian HJ, Anand A, Lai JY, et al. In situ hybridization of polymeric curcumin to arginine-derived carbon quantum dots for synergistic treatment of bacterial infections [J]. ACS Appl Mater Interfaces, 2023, 15(22):26457-26471. [20] Liang G, Shi H, Qi Y, et al. Specific anti-biofilm activity of carbon quantum dots by destroying P. gingivalis biofilm related genes [J]. Int J Nanomedicine, 2020, 15:5473-5489. [21] Zhao C, Wang X, Yu L, et al. Quaternized carbon quantum dots with broad-spectrum antibacterial activity for the treatment of wounds infected with mixed bacteria [J]. Acta Biomater, 2022, 138:528-544. [22] Arif M, Sharaf M, Samreen, et al. Bacteria-targeting chitosan/carbon dots nanocomposite with membrane disruptive properties improve eradication rate of Helicobacter pylori [J]. J Biomater Sci Polym Ed, 2021, 32(18):2423-2447. [23] Li L, Cao S, Wu Z, et al. Modulating electron transfer in vanadium-based artificial enzymes for enhanced ROS-catalysis and disinfection [J]. Adv Mater, 2022, 34(17):e2108646. [24] Ferreira RL, Jr WM, Souza LEA, et al. Harnessing efficient ROS generation in carbon dots derived from methyl red for antimicrobial photodynamic therapy [J]. ACS Appl Bio Mater, 2023, 6(10):4345-4357. [25] Yu M, Guo X, Lu H. Carbon dots derived from folic acid as an ultra-succinct smart antimicrobial nanosystem for selective killing of S.aureus and biofilm eradication [J]. Carbon, 2022, 199: 395-406. [26] Cai H, Ma J, Xu X, et al. Sulfonated glycosaminoglycan bioinspired carbon dots for effective cellular labelling and promotion of the differentiation of mesenchymal stem cells [J]. J Mater Chem B, 2020, 8(26):5655-5666. [27] Chen R, Liu G, Sun X, et al. Chitosan derived nitrogen-doped carbon dots suppress osteoclastic osteolysis via downregulating ROS [J]. Nanoscale, 2020, 12(30):16229-16244. [28] Wang Z, Yang H, Bai Y, et al. rBMSC osteogenic differentiation enhanced by graphene quantum dots loaded with immunomodulatory layered double hydroxide nanoparticles [J]. Biomed Mater, 2022, 17(2). [29] Wan C, Hu M, Peng X, et al. Novel multifunctional dexamethasone carbon dots synthesized using the one-pot green method for anti-inflammatory, osteogenesis, and osteoimmunomodulatory in bone regeneration [J]. Biomater Sci, 2022, 10(21):6291-6306. [30] Ren C, Hao X, Wang L, et al. Metformin carbon dots for promoting periodontal bone regeneration via activation of ERK/AMPK pathway [J]. Adv Healthc Mater, 2021, 10(12):e2100196. [31] Rezaei A, Hashemi E. A pseudohomogeneous nanocarrier based on carbon quantum dots decorated with arginine as an efficient gene delivery vehicle [J]. Sci Rep, 2021, 11(1):13790. [32] Bu W, Xu X, Wang Z, et al. Ascorbic acid-PEI carbon dots with osteogenic effects as miR-2861 carriers to effectively enhance bone regeneration [J]. ACS Appl Mater Interfaces, 2020, 12(45):50287-50302. [33] Ghanbari M, Salavati-Niasari M, Mohandes F. Injectable hydrogels based on oxidized alginate-gelatin reinforced by carbon nitride quantum dots for tissue engineering [J]. Int J Pharm, 2021, 602:120660. [34] Ehtesabi M, Massah H. Improvement of hydrophilicity and cell attachment of polycaprolactone scaffolds using green synthesized carbon dots [J]. Materials Today Sustainability, 2021, 13:100075. [35] Wong PC, Kurniawan D, Wu JL, et al. Plasma-enabled graphene quantum dot hydrogel-magnesium composites as bioactive scaffolds for in vivo bone defect repair [J]. ACS Appl Mater Interfaces, 2023, 15(38):44607-44620. |