国际口腔医学杂志 ›› 2026, Vol. 53 ›› Issue (5): 742-752.doi: 10.7518/gjkq.2026602

• 综述 • 上一篇    

纳米颗粒在预防正畸釉质脱矿中的应用进展

屈玥(),姜欢,孙月,徐丞靖,胡敏()   

  1. 吉林大学口腔医院正畸科 长春 130021
  • 收稿日期:2025-03-26 修回日期:2026-01-14 出版日期:2026-09-01 发布日期:2026-08-28
  • 通讯作者: 胡敏
  • 作者简介:屈玥,硕士,Email:quyue23@mails.jlu.edu.cn
  • 基金资助:
    吉林省产业技术研究与开发项目(2022C043-3)

Research progress of nanoparticles in the prevention of enamel demineralization during orthodontics

Yue Qu(),Huan Jiang,Yue Sun,Chengjing Xu,Min Hu()   

  1. Dept. of Orthodontics, Hospital of Stomatology, Jilin University, Changchun 130021, China
  • Received:2025-03-26 Revised:2026-01-14 Online:2026-09-01 Published:2026-08-28
  • Contact: Min Hu
  • Supported by:
    Industry Technology Research and Development Project of Jilin Province(2022C043-3)

摘要:

釉质脱矿是正畸治疗中最常见的并发症之一,如未及时干预和处理,可进展形成龋齿,进而影响口腔健康和功能。因此,釉质脱矿是正畸治疗过程中亟待解决的问题。纳米颗粒(NPs)因体积小,表面体积比大,可与釉质充分接触,从而高效地发挥作用,在釉质脱矿的预防中具有显著优势,成为近年来的研究热点。NPs预防釉质脱矿的作用原理主要为抗菌或再矿化,其应用形式包括以混合、涂覆或载体等形式与正畸矫治器结合。不同类型的NPs在预防釉质脱矿方面的应用潜力已得到证实,但仍需进一步研究以明确其生物安全性、长期稳定性等问题。本研究从NPs的分类、应用形式等方面展开介绍,以梳理NPs在预防釉质脱矿方面的研究进展,探讨后续的研究方向。

关键词: 纳米颗粒, 釉质脱矿, 白垩斑, 正畸治疗, 正畸矫治器

Abstract:

Enamel demineralization is a prevalent complication in orthodontic treatment. If not addressed and treated promptly, it will progress to caries formation and negatively affect oral health and function. Therefore, enamel deminera-lization is an urgent problem that needs to be addressed during orthodontic treatment. Nanoparticles (NPs), with their small size and large surface-to-volume ratio, can achieve complete contact with enamel and function effectively, offering advantages in the prevention of enamel demineralization. Therefore, it has become a hot spot in recent years. The mechanism of action of NPs applied to prevent enamel demineralization is either antimicrobial or remineralization, whereas the forms of application include combination with orthodontic devices in the forms of blends, coatings, and carriers. The potential application of different types of NPs in preventing enamel demineralization has been demonstrated widely, but further studies are needed to prove their biosafety and long-term stability. In this paper, we will introduce the classification and application forms of NPs to clarify the existing research results and subsequent research directions of NPs in preven-ting enamel demineralization.

Key words: nanoparticles, enamel demineralization, white spot lesions, orthodontic treatment, orthodontic appliances

中图分类号: 

  • R783.5

表 1

纳米颗粒按功能分类及其特性、应用形式"

功能种类特性应用形式
抗菌金属(银、金)纳米颗粒抗菌性强,但对人体存在潜在的毒副作用混合、涂覆
金属氧化物(氧化锌、二氧化钛)纳米颗粒可介导抗菌光动力疗法混合、涂覆
天然材料(香草醛、壳聚糖)纳米颗粒来源广,毒性低,但易受环境影响,个体间存在差异混合
再矿化羟磷灰石、无定形磷酸钙参与仿生矿化,生物相容性好,但无定形磷酸钙单独存在时不稳定混合
双功能氟化物纳米颗粒预防釉质脱矿的金标准,但可能产生急慢性氟中毒等不良反应混合
生物活性玻璃纳米颗粒单独添加到正畸粘接材料时抗菌效果不明显混合
双功能复合材料合成较复杂,成本高混合、载体

图 1

非经典结晶理论指导的釉质结晶过程A、B:钙磷离子聚集形成ACP;C:釉原蛋白稳定钙磷离子成簇状结构;D:釉原蛋白引导ACP定向形成束状羟磷灰石;E:成熟后形成釉柱。"

[1] Sabouni W, Mansour M, Gandedkar NH. Scope of clear aligner therapy (CAT) in phaseⅠ (early) ortho-dontic treatment[J]. Semin Orthod, 2023, 29(2): 216-236.
[2] Sardana D, Schwendicke F, Kosan E, et al. White spot lesions in orthodontics: consensus statements for prevention and management[J]. Angle Orthod, 2023, 93(6): 621-628.
[3] Ludovichetti FS, Stellini E, Zuccon A, et al. Prevention of white spot lesions induced by fixed orthodontic therapy: a literature review[J]. Dent J, 2025, 13(3): 103.
[4] Lamorgese M, Veiga N, Correia MJ, et al. White spot lesion treatment options: a systematic review of different techniques for masking these lesions[J]. Gels, 2025, 11(5): 371.
[5] Xia LG, Zhou CC, Mei P, et al. Expert consensus on the prevention and treatment of enamel deminera-lization in orthodontic treatment[J]. Int J Oral Sci, 2025, 17(1): 13.
[6] Missier MS. Application of nanoparticles in dentistry[J]. Bioinformation, 2023, 19(1): 14-18.
[7] Padmanabhan S. Nanotechnology in orthodontics[J]. Semin Orthod, 2023, 29(1): 79-84.
[8] Ahuja D, Singh AK, Batra P. Antibacterial efficacy of nanoparticles on orthodontic materials: a systema-tic review and Meta-analysis[J]. Int Orthod, 2025, 23(1): 100955.
[9] Dias M, Zhang R, Lammers T, et al. Clinical translation and landscape of silver nanoparticles[J]. Drug Deliv Transl Res, 2025, 15(3): 789-797.
[10] Tristán-López JD, Niño-Martínez N, Kolosovas-Machuca ES, et al. Application of silver nanoparticles to improve the antibacterial activity of orthodontic adhesives: an in vitro study[J]. Int J Mol Sci, 2023, 24(2): 1401.
[11] Bahador A, Ayatollahi B, Akhavan A, et al. Antimicrobial efficacy of silver nanoparticles incorporated in an orthodontic adhesive: an animal study[J]. Front Dent, 2020, 17(14): 1-8.
[12] Noga M, Milan J, Frydrych A, et al. Toxicological aspects, safety assessment, and green toxicology of silver nanoparticles (AgNPs)— critical review: state of the art[J]. Int J Mol Sci, 2023, 24(6): 5133.
[13] Ferdous Z, Nemmar A. Health impact of silver na-noparticles: a review of the biodistribution and to-xicity following various routes of exposure[J]. Int J Mol Sci, 2020, 21(7): 2375.
[14] Abdussalam-Mohammed W, Edbey K, Farhat HE, et al. Facile green synthesis of novel AgNPs using Hyoscyamus leaf extract as capping agent: characterization and their potential antibacterial activities[J]. Inorg Chem Commun, 2025, 173: 113893.
[15] Rajput SK, Banerjee S, Sharma V, et al. A facile and greener approach for synthesis of lignin capped-silver nanoparticles (LS-AgNPs) and assessment of their antibacterial and antioxidant properties[J]. J Mol Struct, 2025, 1322: 140515.
[16] da Conceição Tavares de Lima MH, Avelino MEL, Cavalcanti MRN, et al. Unraveling applications of gold nanoparticles in dentistry: a scoping review[J]. J Dent, 2025, 156: 105685.
[17] Al-Fahham BM, Mohamed RA, Al-Talqani JMT, et al. Evaluating antimicrobial effectiveness of gold nanoparticles against Streptococcus oralis [J]. Int J Dent, 2023, 2023: 9935556.
[18] Ghoreishi SM, Mortazavi-Derazkola S. Eco-friendly synthesis of gold nanoparticles via tangerine peel extract: unveiling their multifaceted biological and catalytic potentials[J]. Heliyon, 2025, 11(1): e40104.
[19] Solanki LA, Sundari KS, Rajeshkumar S. In-vitro cytotoxicity evaluation of green synthesized gold na-noparticles and its indigenous mouthwash[J]. J Pure Appl Microbiol, 2021, 15(2): 735-742.
[20] Bahrami R, Pourhajibagher M, Badiei A, et al. Evaluation of the cell viability and antimicrobial effects of orthodontic bands coated with silver or zinc oxide nanoparticles: an in vitro study[J]. Korean J Orthod, 2023, 53(1): 16-25.
[21] Anita P, Sathyanarayana HP, Kumar K, et al. Antimicrobial efficacy of zinc oxide nanoparticle-coated aligners on Streptococcus mutans and Candida albicans [J]. Am J Orthod Dentofacial Orthop, 2023, 163(3): 338-346.
[22] Mollabashi V, Soleymani M, Arabestani MR, et al. Evaluation of nano TiO2 modified orthodontic composite effects on S. mutans population and enamel demineralization in fixed orthodontic patients; a split mouth randomized controlled clinical trial[J]. Biol Trace Elem Res, 2023, 201(10): 4657-4666.
[23] Ahmed MK, Alsaleem NR, AlSamak S. The effect of vanillin nanoparticles on antimicrobial and mechanical properties of an orthodontic adhesive[J]. J Orthod Sci, 2023, 12: 46.
[24] Mohammed RR, Rafeeq RA. Evaluation of the shear bond strength of chitosan nanoparticles-containing orthodontic primer: an in vitro study[J]. Int J Dent, 2023: 9246297.
[25] Imani Z, Sodagar A, Pourhajibagher M, et al. Eva-luation of antibacterial effect of the orthodontic composite containing propolis nanoparticles in rat as an animal model[J]. Folia Med, 2023, 65(1): 131-139.
[26] Bahrami R, Sodagar A, Pourhajibagher M, et al. The effect of different concentration of emodin na-noparticles, as an antibacterial agent, on the flexural resistance of acrylic resin used in orthodontics: an in vitro study[J]. Int Orthod, 2023, 21(4): 100811.
[27] 牛丽娜. 牙釉质仿生矿化研究新进展[J]. 口腔材料器械杂志, 2025, 34(1): 5-10.
Niu LN. Recent advances in biomimetic mineralization of enamel[J]. Chin J Dent Mater Dev, 2025, 34(1): 5-10.
[28] Yan JR, Yang HY, Luo T, et al. Application of amorphous calcium phosphate agents in the prevention and treatment of enamel demineralization[J]. Front Bioeng Biotechnol, 2022, 10: 853436.
[29] Rahmanpanah S, Seifi M, Gharavi Z, et al. Evaluation of shear bond strength and enamel reminerali-zing effect of experimental orthodontic composite containing nano-hydroxyapatite: an in vitro study[J]. Int Orthod, 2023, 21(1): 100725.
[30] Madhubala MM, Jayasree R, Kumar TSS, et al. Evaluation of enamel remineralization potential and anticariogenic efficacy of polydopamine coated biogenic amorphous calcium phosphate[J]. Clin Oral Invest, 2025, 29(6): 302.
[31] Golzio Navarro Cavalcante B, Schulze Wenning A, Szabó B, et al. Combined casein phosphopeptide-amorphous calcium phosphate and fluoride is not superior to fluoride alone in early carious lesions: a Meta-analysis[J]. Caries Res, 2024, 58(1): 1-16.
[32] Moslehitabar Z, Bagheri H, Rangrazi A, et al. Efficacy of an experimental CPP-ACP and fluoride too-thpaste in prevention of enamel demineralization: an in vitro study on bovine enamel[J]. Int J Dent, 2025: 5598592.
[33] 李爽, 胡敏. 关于正畸固定矫治中牙釉质脱矿的研究进展[J]. 口腔医学研究, 2021, 37(8): 685-688.
Li S, Hu M. A review of enamel demineralization in orthodontic treatment with fixed appliances[J]. J Oral Sci Res, 2021, 37(8): 685-688.
[34] Yan JR, Cao LY, Luo T, et al. In vitro evaluation of a novel fluoride-coated clear aligner with antibacterial and enamel remineralization abilities[J]. Clin Oral Invest, 2023, 27(10): 6027-6042.
[35] Xu YD, Sun Y, Liu W, et al. Effects of an orthodontic primer containing amorphous fluorinated cal-cium phosphate nanoparticles on enamel white spot lesions[J]. J Mech Behav Biomed Mater, 2023, 137: 105567.
[36] Lazar L, Vlasa A, Beresescu L, et al. White spot lesions (WSLs)-post-orthodontic occurrence, management and treatment alternatives: a narrative review[J]. J Clin Med, 2023, 12(5): 1908.
[37] Manoharan S, Ashfaq SS, Perumal E. MicroRNAs in fluorosis pathogenesis: impact on dental, skeletal, and soft tissues[J]. Arch Toxicol, 2024, 98(12): 3913-3932.
[38] Hussein AH, Yassir YA. A novel graphite fluoride/bioactive glass-containing orthodontic primer with antibacterial and remineralization properties: an in-vitro study[J]. J Adhes Dent, 2024, 26: 253-262.
[39] Raszewski Z, Chojnacka K, Mikulewicz M. Investigating bioactive-glass-infused gels for enamel re-mineralization: an in vitro study[J]. J Funct Biomater, 2024, 15(5): 119.
[40] Wanitwisutchai T, Monmaturapoj N, Srisatjaluk R, et al. Buffering capacity and antibacterial properties among bioactive glass-containing orthodontic adhesives[J]. Dent Mater J, 2021, 40(5): 1169-1176.
[41] de Oliveira Roma FRV, de Oliveira TJL, Bauer J, et al. Resin-modified glass ionomer enriched with BIOGLASS: ion-release, bioactivity and antibacte-rial effect[J]. J Biomed Mater Res, 2023, 111(4): 903-911.
[42] MacIel PP, de Medeiros ELG, Figueiredo LRF, et al. Ion release, cytocompatibility and microbial inhibition of a novel varnish containing fluoride-doped bioactive glass ceramics: an in vitro study[J]. Clin Oral Invest, 2025, 29(2): 132.
[43] Nagasaki R, Nagano K, Nezu T, et al. Synthesis and characterization of bioactive glass and zinc oxide nanoparticles with enamel remineralization and antimicrobial capabilities[J]. Materials (Basel), 2023, 16(21): 6878.
[44] Tian J, Wu ZY, Wang Y, et al. Multifunctional dental resin composite with antibacterial and reminera-lization properties containing nMgO-BAG[J]. J Me-ch Behav Biomed Mater, 2023, 141: 105783.
[45] Chen XH, Liu HY, Zhang QQ, et al. Carboxymethyl chitosan stabilized AuNPs/ACP nanohybrids in ena-mel white spot lesions[J]. Front Bioeng Biotechnol, 2024, 12: 1421887.
[46] Guo HL, Wang N, Ye X, et al. Preparation of CMC/ACP/PHMB nanocomposites and preliminary study on their antibacterial and remineralization functions[J]. Dent Mater J, 2025, 44(1): 60-72.
[47] Garma NMH, Ibrahim AI. Development of a remi-neralizing calcium phosphate nanoparticle-contai-ning self-etching system for orthodontic bonding[J]. Clin Oral Invest, 2022, 27(4): 1483-1497.
[48] Sánchez-Tito M, Castañeda-Vía J, Tay L. Raman microscopy evaluation of the preventive effect of a modified orthodontic adhesive with silver nanoparticles on the formation of white spot lesions[J]. J Clin Exp Dent, 2023: e706-e713.
[49] Sánchez-Tito M, Tay LY. Effect of the addition of silver nanoparticles on the mechanical properties of an orthodontic adhesive[J]. Saudi Dent J, 2024, 36(2): 359-363.
[50] Tavakolinejad Z, Mohammadi Kamalabadi Y, Salehi A. Comparison of the shear bond strength of ortho-dontic composites containing silver and amorphous tricalcium phosphate nanoparticles: an ex vivo study[J]. J Dent (Shiraz), 2023, 24(3): 285-292.
[51] Seifi M, Eskandarloo F, Amdjadi P, et al. Investigation of mechanical properties, remineralization, antibacterial effect, and cellular toxicity of composite orthodontic adhesive combined with silver-contai-ning nanostructured bioactive glass[J]. BMC Oral Heal, 2024, 24: 650.
[52] Taher BB, Rasheed TA. The impact of adding chitosan nanoparticles on biofilm formation, cytotoxicity, and certain physical and mechanical aspects of directly printed orthodontic clear aligners[J]. Nanomaterials, 2023, 13(19): 2649.
[53] Shi YY, Zhang NN, Liu JJ, et al. Preparation of na-nocomposites for antibacterial orthodontic invisible appliance based on piezoelectric catalysis[J]. Sensors, 2023, 23(11): 5336.
[54] Puspitasari R, Irnawati D, Widjijono. The effect of zinc oxide (ZnO) nanoparticle concentration on the adhesion of mucin and Streptococcus mutans to heat-cured acrylic resin[J]. Dent Mater J, 2023, 42(6): 791-799.
[55] Soleymanijadidi P, Moradi M, Hamedirad F, et al. Nanocurcumin release from self-cured acrylic re-sins; effects on antimicrobial action and flexural strength[J]. Bioengineering, 2023, 10(5): 559.
[56] Shirazi M, Qazvini FF, Mohamadrezaie S. Antimicrobial properties of glass-ionomer cement incor-porated with zinc oxide nanoparticles against mutans streptococci and lactobacilli under orthodontic bands: an in vivo split-mouth study[J]. Dent Res J (Isfahan), 2023, 20: 45.
[57] Gompers E. A comparison of the effects of chlorhe-xidine hexametaphosphate and silver nanoparticle antimicrobials on the mechanical and esthetic pro-perties of elastomeric chain[D]. Buffalo: State University of New York at Buffalo, 2023.
[58] Abraham KS, Jagdish N, Kailasam V, et al. Streptococcus mutans adhesion on nickel titanium (NiTi) and copper-NiTi archwires: a comparative prospective clinical study[J]. Angle Orthod, 2017, 87(3): 448-454.
[59] Al-Fadhily ZM, Abdul-Hadi M. A novel coating of orthodontic archwires with chlorhexidine hexametaphosphate nanoparticles[J]. Int J Biomater, 2023, 2023: 9981603.
[60] Anand BG, Shejale KP, Rajesh Kumar R, et al. Bioactivation of an orthodontic wire using multifunctional nanomaterials to prevent plaque accumulation[J]. Biomater Adv, 2023, 148: 213346.
[61] Yu DS, Miao KF, Li Y, et al. Sputter-deposited TaCuN films: structure, tribological and biomedical properties[J]. Appl Surf Sci, 2021, 567: 150796.
[62] Tawakal MS, Abdelghany Metwally AM, El-Wassefy NA, et al. Static friction, surface roughness, and antibacterial activity of orthodontic brackets coated with silver and silver chitosan nanoparticles[J]. J World Fed Orthod, 2023, 12(6): 260-268.
[63] Łyczek J, Bończak B, Krzymińska I, et al. Gold-oxoborate nanocomposite-coated orthodontic brac-kets gain antibacterial properties while remaining safe for eukaryotic cells[J]. J Biomed Mater Res B Appl Biomater, 2023, 111(5): 996-1004.
[64] Liu JR, Qi J, Li JD, et al. Antimicrobial and remine-ralization of carboxymethyl chitosan and xylitol functionalized carbon dots coating on orthodontic brackets[J]. Int J Nanomed, 2024, 19: 13823-13838.
[65] Song XW, Ji MZ, Shu XY, et al. Drug delivery systems loaded with plant-derived natural products for dental caries prevention and treatment[J]. J Mater Chem B, 2025, 13(6): 1920-1934.
[66] Jeong GJ, Rather MA, Khan F, et al. pH-responsive polymeric nanomaterials for the treatment of oral biofilm infections[J]. Colloids Surf B Biointerfaces, 2024, 234: 113727.
[67] Nunziata G, Nava M, Lacroce E, et al. Thermo-responsive polymer-based nanoparticles: from chemical design to advanced applications[J]. Macromol Rapid Commun, 2025, 46(9): 2401127.
[68] Sun GW, Huang S, Wang SF, et al. Nanomaterial-based drug-delivery system as an aid to antimicro-bial photodynamic therapy in treating oral biofilm[J]. Futur Microbiol, 2024, 19(8): 741-759.
[69] An JL, Shen X, Peng TH, et al. Formulation of arginine-loaded mesoporous silica nanoparticles (Arg@ MSNs) modified orthodontic adhesive[J]. J Dent, 2024, 145: 104992.
[70] Wang SP, Fang LX, Zhou HX, et al. Silica nanoparticles containing nano-silver and chlorhexidine respond to pH to suppress biofilm acids and modulate biofilms toward a non-cariogenic composition[J]. Dent Mater, 2024, 40(2): 179-189.
[71] Cao LY, Yan JR, Luo T, et al. Antibacterial and fluorescent clear aligner attachment resin modified with chlorhexidine loaded mesoporous silica nanoparticles and zinc oxide quantum dots[J]. J Mech Behav Biomed Mater, 2023, 141: 105817.
[1] 胡凯,张延晓,毛丙永,唐鑫,王跃岩,潘月,张秋香,崔树茂. 青少年正畸患者釉质脱矿的发生与口腔菌群及分泌型免疫球蛋白A的关系[J]. 国际口腔医学杂志, 2025, 52(5): 614-620.
[2] 姚曼曼,仇永乐,刘铁军,路月亭,路华林,尚宏悦,董博. 微小RNA200a/141-信号转导和转录激活因子4轴在口腔鳞状细胞癌进展中的作用研究[J]. 国际口腔医学杂志, 2025, 52(4): 473-483.
[3] 勾俊卓,朱亚芬,姜定卓,吴志芳. 替牙期正畸治疗对牙根发育影响的研究进展[J]. 国际口腔医学杂志, 2024, 51(6): 662-668.
[4] 潘珮玥,周婧,黄超,于乐,唐甜. 埋伏牙正畸治疗的研究进展[J]. 国际口腔医学杂志, 2024, 51(6): 669-676.
[5] 李榕,赵青. 基于颞下颌关节思考成人安氏Ⅱ2分类错 畸形的治疗[J]. 国际口腔医学杂志, 2024, 51(6): 687-698.
[6] 李娇娇,刘钧. 外伤牙早期固定正畸治疗的研究进展[J]. 国际口腔医学杂志, 2024, 51(4): 498-504.
[7] 王楠楠,贺红,花放. 正畸相关釉质脱矿危险因素的研究进展[J]. 国际口腔医学杂志, 2024, 51(1): 91-98.
[8] 王启秋,支清惠. 釉质白垩斑治疗方法的研究进展[J]. 国际口腔医学杂志, 2022, 49(6): 717-723.
[9] 王路明,曹潇,仵琳悦,李蕴聪,雷波,牛林. 掺锌生物活性玻璃纳米颗粒对复合树脂力学性能影响的实验研究[J]. 国际口腔医学杂志, 2022, 49(4): 404-411.
[10] 周梦琪,陈学鹏,傅柏平. 正畸治疗中牙槽骨骨开窗骨开裂的预防和应对策略[J]. 国际口腔医学杂志, 2021, 48(5): 600-608.
[11] 朱俊瑾,王剑. 钛种植体表面银纳米颗粒负载方法的进展[J]. 国际口腔医学杂志, 2021, 48(3): 334-340.
[12] 刘玲,龚仁国,董秀华,刘入梦. 正畸联合双颌手术治疗前牙区严重骨性开长期稳定性的Meta分析[J]. 国际口腔医学杂志, 2021, 48(2): 173-179.
[13] 赵玉洁,管晓燕,李小兰,陈琦君,王倩,刘建国. 巨噬细胞极化参与正畸牙移动的研究进展[J]. 国际口腔医学杂志, 2020, 47(4): 478-483.
[14] 郑丹,易俭如,李宇,赵志河. 新型正畸转矩簧夹装式门形辅弓及其临床应用[J]. 国际口腔医学杂志, 2020, 47(4): 491-496.
[15] 陈艺尹,刘俊圻,李承浩. 牙槽突裂的裂隙特点及正畸治疗对唇腭裂患者牙槽突植骨术的影响[J]. 国际口腔医学杂志, 2020, 47(3): 345-350.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!