[1] Yassir YA, McIntyre GT, Bearn DR. Orthodontic treatment and root resorption: An overview of systematic reviews [J]. Eur J Orthod, 2021, 43(4): 442-456. [2] Li H, Wu XP, Huang L, et al. Expert consensus on risk factors and clinical management recommendations for orthodontically induced external apical root resorption [J]. West China J Stomatol, 2022, 40(6): 629-637. [3] Patel S, Saberi N, Pimental T, et al. Present status and future directions: Root resorption [J]. Int Endod J, 2022, 55 Suppl 4(Suppl 4): 892-921. [4] Yuan W, Huang M, Chen W, et al. Reduced graphene oxide loaded with tetrahedral framework nucleic acids for combating orthodontically induced root resorption [J]. J Nanobiotechnology, 2024, 22(1): 700. [5] 王智,靳淑梅,张君.牙根吸收的原因与机制[J].国际口腔医学杂志,2010,37(1): 101-105. [6] 贺红,杜明远.对正畸诱导性牙根吸收生物层面的认识[J].口腔医学研究,2022,38(10): 907-912. [7] Liu T, Jiang L, Xiang Z, et al. Tereticornate A suppresses RANKL-induced osteoclastogenesis via the downregulation of c-Src and TRAF6 and the inhibition of RANK signaling pathways [J]. Biomed Pharmacother, 2022, 151: 113140. [8] Chen Z, Joseph D, Ding M, et al. Synthesis and evaluation of 2-NMPA derivatives as potential agents for prevention of osteoporosis in vitro and in vivo [J]. Eur J Med Chem, 2023, 260: 115767. [9] Sharab LY, Morford LA, Dempsey J, et al. Genetic and treatment-related risk factors associated with external apical root resorption (EARR) concurrent with orthodontia [J]. Orthod Craniofac Res, 2015, 18 Suppl 1(Suppl 1): 71-82. [10] Mirabella AD, Artun J. Prevalence and severity of apical root resorption of maxillary anterior teeth in adult orthodontic patients [J]. Eur J Orthod, 1995, 17(2): 93-99. [11] Sameshima GT, Sinclair PM. Predicting and preventing root resorption: Part Ⅰ. Diagnostic factors [J]. Am J Orthod Dentofacial Orthop, 2001, 119(5): 505-510. [12] He D, Kou X, Luo Q, et al. Enhanced M1/M2 macrophage ratio promotes orthodontic root resorption [J]. J Dent Res, 2015, 94(1): 129-139. [13] G K, Singh N, Yadav R, et al. Comparative analysis of the accuracy of periapical radiography and cone-beam computed tomography for diagnosing complex endodontic pathoses using a gold standard reference-A prospective clinical study [J]. Int Endod J, 2021, 54(9): 1448-1461. [14] Cotti E, Schirru E. Present status and future directions: Imaging techniques for the detection of periapical lesions [J]. Int Endod J, 2022, 55 Suppl 4: 1085-1099. [15] Buduneli N, Bıyıkolu B, Kinane DF. Utility of gingival crevicular fluid components for periodontal diagnosis [J]. Periodontol 2000, 2024, 95(1): 156-175. [16] Aman C, Azevedo B, Bednar E, et al. Apical root resorption during orthodontic treatment with clear aligners: A retrospective study using cone-beam computed tomography [J]. Am J Orthod Dentofacial Orthop, 2018, 153(6): 842-851. [17] Mohd Nasri FA, Zainal Ariffin SH, Karsani SA, et al. Label-free quantitative proteomic analysis of gingival crevicular fluid to identify potential early markers for root resorption [J]. BMC Oral Health, 2020, 20(1): 256. [18] Mohammed-Salih HS, Al-Lami HA, Saloom HF, et al. Detection of orthodontically induced inflammatory root resorption-associated biomarkers from the gingival crevicular fluid by proteomics analysis: a randomized-controlled clinical trial [J]. 3 Biotech, 2023, 13(5): 157. [19] Zhang ZH, Zhu R, Liu Y, et al. IL6-dependent PIEZO1 activation promotes M1-mediated orthodontic root resorption via CXCL12/CXCR4 [J]. J Dent Res, 2025, 104(7): 763-773. [20] Yong J, Gröger S, von Bremen J, et al. Immunorthodontics: PD-L1, a novel immunomodulator in cementoblasts, is regulated by HIF-1α under hypoxia [J]. Cells, 2022, 11(15):2350. [21] Zhou Y, Nishiura A, Morikuni H, et al. RANKL+ senescent cells under mechanical stress: a therapeutic target for orthodontic root resorption using senolytics [J]. Int J Oral Sci, 2023, 15(1): 20. [22] Jiang S, Sheng R, Qi X, et al. USP34 regulates tooth root morphogenesis by stabilizing NFIC [J]. Int J Oral Sci, 2021, 13(1): 7. [23] Jeong JK, Choi H, Kim TH, et al. Notum regulates tooth root morphogenesis by modulating wnt signaling [J]. J Dent Res, 2026, 105(7):938-948. [24] Yang X, Zheng F, Yan P, et al. S100A2 activation promotes interstitial fibrosis in kidneys by FoxO1-mediated epithelial-mesenchymal transition [J]. Cell Biol Toxicol, 2024, 40(1): 86. [25] Le Y, Zhang J, Lin Y, et al. S100A9 exacerbates the inflammation in rosacea through Toll-like receptor 4/MyD88/NF-κB signaling pathway [J]. J Invest Dermatol, 2024, 144(9): 1985-1993.e1. [26] Uriepero-Palma A, Márquez ME, Payque E, et al. Targeting S100A9-mediated inflammation: a novel therapeutic approach for CLL [J]. Blood Adv, 2025, 9(20): 5219-5233. [27] Zheng W, Lu X, Chen G, et al. The osteoclastic activity in apical distal region of molar mesial roots affects orthodontic tooth movement and root resorption in rats [J]. Int J Oral Sci, 2024, 16(1): 19. [28] Wang W, Wang Q, Sun S, et al. CD97 inhibits osteoclast differentiation via Rap1a/ERK pathway under compression [J]. Int J Oral Sci, 2024, 16(1): 12. [29] Franco SJ, Rodgers MA, Perrin BJ, et al. Calpain-mediated proteolysis of talin regulates adhesion dynamics [J]. Nat Cell Biol, 2004, 6(10): 977-983. [30] Glading A, Uberall F, Keyse SM, et al. Membrane proximal ERK signaling is required for M-calpain activation downstream of epidermal growth factor receptor signaling [J]. J Biol Chem, 2001, 276(26): 23341-23348. [31] Yao B, Wang J, Hou D, et al. Calpain-2 facilitates infection of the intracellular bacteria Listeria monocytogenes and invasion intestinal immune barrier by impairing nitric oxide homeostasis [J]. J Adv Res, 2026, 83:521-538. [32] Fang XY, Zhan YX, Zhou XM, et al. CXCL12/CXCR4 mediates orthodontic root resorption via regulating the M1/M2 ratio [J]. J Dent Res, 2022, 101(5): 569-579. |