[1] Reznikov N, Shahar R, Weiner S. Bone hierarchical structure in three dimensions [J]. Acta Biomaterialia, 2014, 10 (9): 3815-3826.
[2] Laurencin C, Khan Y, El-Amin S F. Bone graft substitutes [J]. Expert Review of Medical Devices, 2006, 3 (1): 49-57.
[3] Wang X H, Ao Q, Tian X H, et al. 3D bioprinting technologies for hard tissue and organ engineering [J]. Materials, 2016, 9 (10): 802.
[4] Roy S, Wang S H, Ullah Z, et al. Defect-engineered biomimetic piezoelectric nanocomposites with enhanced ROS production, macrophage re-polarization, and Ca²⁺ channel activation for therapy of MRSA-infected wounds and osteomyelitis [J]. Small, 2025, 21 (10): 2411906.
[5] Koons G L, Diba M, Mikos A G. Materials design for bone-tissue engineering [J]. Nature Reviews Materials, 2020, 5 (8): 584-603.
[6] Ying D, Zhang T S, Qi M L, et al. Artificial bone materials for infected bone defects: advances in antimicrobial functions [J]. ACS Biomaterials Science & Engineering, 2025, 11 (4): 2008-2036.
[7] Eliaz N, Metoki N. Calcium phosphate bioceramics: a review of their history, structure, properties, coating technologies and biomedical applications [J]. Materials, 2017, 10 (4): 334.
[8] Hoppe A, Güldal N S, Boccaccini A R. A review of the biological response to ionic dissolution products from bioactive glasses and glass-ceramics [J]. Biomaterials, 2011, 32 (11): 2757-2774.
[9] 胡庆。用于牙髓损伤修复的新型微纳米生物活性玻璃的仿生制备及性能研究 [D]. 广州:华南理工大学,2014: 40-52.
[10] Cong V T, Gaus K, Tilley R D, et al. Rod-shaped mesoporous silica nanoparticles for nanomedicine: Recent progress and perspectives [J]. Expert Opinion on Drug Delivery, 2018, 15 (9): 881-892.
[11] Wu C T, Zhou Y H, Xu M C, et al. Copper-containing mesoporous bioactive glass scaffolds with multifunctional properties of angiogenesis capacity, osteostimulation and antibacterial activity [J]. Biomaterials, 2013, 34 (2): 422-433.
[12] Fernandes J S, Gentile P, Pires R A, et al. Multifunctional bioactive glass and glass-ceramic biomaterials with antibacterial properties for repair and regeneration of bone tissue [J]. Acta Biomaterialia, 2017, 59: 2-11.
[13] Nawaz Q, Rehman M A U, Burkovski A, et al. Synthesis and characterization of manganese containing mesoporous bioactive glass nanoparticles for biomedical applications [J]. Journal of Materials Science: Materials in Medicine, 2018, 29 (5): 64.
[14] Bari A, Bloise N, Fiorilli S, et al. Copper-containing mesoporous bioactive glass nanoparticles as multifunctional agent for bone regeneration [J]. Acta Biomaterialia, 2017, 55: 493-504.
[15] Huang J M, Huang J Z, Zhang X X, et al. A bioactive multifunctional dressing with simultaneous visible monitoring of pH values and H₂O₂ concentrations for promoting diabetic wound healing [J]. Materials Horizons, 2025, 12 (1): 267-283.
[16] Zheng K, Balasubramanian P, Paterson T E, et al. Ag modified mesoporous bioactive glass nanoparticles for enhanced antibacterial activity in 3D infected skin model [J]. Materials Science and Engineering: C, 2019, 103: 109764.
[17] 李国恒,王金涛,石卫平,等。金属类化合物在抗菌领域的应用现状及展望 [J]. 南京中医药大学学报,2024, 40 (8): 864-874.
[18] Alasvand N, Simorgh S, Malekzadeh Kebria M, et al. Copper/cobalt doped strontium-bioactive glasses for bone tissue engineering applications [J]. Open Ceramics, 2023, 14: 100358.
[19] Bokov D, Turki Jalil A, Chupradit S, et al. Nanomaterial by sol-gel method: Synthesis and application [J]. Advances in Materials Science and Engineering, 2021, 2021 (1): 5102014.
[20] Kokubo T, Takadama H. How useful is SBF in predicting in vivo bone bioactivity?[J]. Biomaterials, 2006, 27 (15): 2907-2915.
[21] Mariz M, Murta J, Gil M H, et al. An ocular insert with zero-order extended delivery: Release kinetics and mathematical models [J]. European Journal of Pharmaceutics and Biopharmaceutics, 2022, 181: 79-87.
[22] Jakobek L, Ištuk J, Barron A R, et al. Bioactive phenolic compounds from apples during simulated in vitro gastrointestinal digestion: Kinetics of their release [J]. Applied Sciences, 2023, 13 (14): 8434.
[23] Zhao N, Zhu L, Liu M C, et al. Enzyme-responsive lignin nanocarriers for triggered delivery of abamectin to control plant root-knot nematodes (meloidogyne incognita)[J]. Journal of Agricultural and Food Chemistry, 2023, 71 (8): 3790-3799.
[24] Yari K, Akbari I, Baniasadi H. Ibuprofen nanoparticles-loaded sodium alginate/psyllium seed mucilage beads: Evaluation the effect of different parameters on release and swelling rate [J]. Polymer Bulletin, 2023, 80 (3): 2911-2927.
[25] Dash S, Murthy P N, Nath L, et al. Kinetic modeling on drug release from controlled drug delivery systems [J]. Acta Poloniae Pharmaceutica, 2010, 67 (3): 217-223.
[26] Kaur G, Pandey O P, Singh K, et al. Combined and individual doxorubicin/vancomycin drug loading, release kinetics and apatite formation for the CaO-CuO-P₂O₅-SiO₂-B₂O₃ mesoporous glasses [J]. RSC Advances, 2016, 6 (56): 51046-51056.
[27] 王晨迪。介孔生物活性玻璃复合载药体系的构建和性能研究 [D]. 扬州:扬州大学,2024: 39-42.
[28] 庞力斌,王德平。介孔硼硅酸盐玻璃微球药物载体的制备及其性能表征 [J]. 无机材料学报,2022, 37 (7): 780-786.
[29] 李雨晴。球形生物活性玻璃的制备及载盐酸阿霉素性能研究 [D]. 焦作:河南理工大学,2023: 38-39.
[30] 郭敏,张红梅,吴梦,等。树枝状介孔生物活性玻璃的制备及表征 [J]. 精细化工,2020, 37 (4): 710-714.
[31] 田丹蕾。生物活性玻璃纳米粒 / 壳聚糖复合水凝胶及其药物释放研究 [D]. 武汉:华中科技大学,2022: 23-25.
[32] You Y Y, He L Z, Ma B, et al. High-drug-loading mesoporous silica nanorods with reduced toxicity for precise cancer therapy against nasopharyngeal carcinoma [J]. Advanced Functional Materials, 2017, 27 (42): 1703313.
[33] Kaur G, Sriranganathan N, Waldrop S G, et al. Effect of copper on the up-regulation/down-regulation of genes, cytotoxicity and ion dissolution for mesoporous bioactive glasses [J]. Biomedical Materials, 2017, 12 (4): 045020.
[34] Fiehn L A, Kunisch E, Saur M, et al. A comparative in vitro and in vivo analysis of the impact of copper substitution on the cytocompatibility, osteogenic, and angiogenic properties of a borosilicate bioactive glass [J]. Journal of Biomedical Materials Research Part A, 2024, 112 (10): 1740-1759.