[1] 傅民魁,张丁,王邦康,等.中国25392名儿童与青少年错牙合畸形患病率的调查[J].中华口腔医学杂志,2002,37(5):51-53. [2] 贺红,赵婷婷.儿童错牙合畸形的早期矫治[J].口腔医学研究,2020,36(12): 1083-1086. [3] Wei RY, Atresh A, Ruellas A, et al. Three-dimensional condylar changes from Herbst appliance and multibracket treatment: A comparison with matched Class Ⅱ elastics [J]. Am J Orthod Dentofacial Orthop, 2020, 158(4):505-517. [4] Bock NC, Jost J, Ruf S. Outcome quality of Class Ⅱ division 1 Herbst-multibracket appliance treatment: influence of pretreatment Class Ⅱ severity and skeletal maturity [J]. Eur J Orthod, 2021, 43(4):424-431. [5] Santamaría-Villegas A, Manrique-Hernandez R, Alvarez-Varela E, et al. Effect of removable functional appliances on mandibular length in patients with class Ⅱ with retrognathism: systematic review and meta-analysis [J]. BMC Oral Health, 2017, 17(1):52. [6] Mohammed H, Čirgić E, Rizk MZ, et al. Effectiveness of prefabricated myofunctional appliances in the treatment of Class Ⅱ division 1 malocclusion: a systematic review [J]. Eur J Orthod, 2020, 42(2):125-134. [7] Felsenthal N, Zelzer E. Mechanical regulation of musculoskeletal system development [J]. Development, 2017, 144(23):4271-4283. [8] Nickel JC, Iwasaki LR, Gonzalez YM, et al. Mechanobehavior and ontogenesis of the temporomandibular joint [J]. J Dent Res, 2018, 97(11):1185-1192. [9] Roberts WE, Stocum DL. Part Ⅱ: Temporomandibular joint (TMJ)-regeneration, degeneration, and adaptation [J]. Curr Osteoporos Rep, 2018, 16(4):369-379. [10] Orajárvi M, Laaksonen S, Hauru R, et al. Changes in type Ⅰ and type Ⅱ collagen expression in rat mandibular condylar cartilage associated with aging and dietary loading [J]. J Oral Facial Pain Headache, 2018, 32(3):258-265. [11] Yu J, Laaksonen S, Mursu E, et al. Effects of estrogen level, dietary loading, and aging on types Ⅰ, Ⅱ, and Ⅹ collagen expression and structure of rat mandibular condylar cartilage [J]. J Oral Facial Pain Headache, 2020, 34(4):331-340. [12] Souki BQ, Vilefort PLC, Oliveira DD, et al. Three-dimensional skeletal mandibular changes associated with Herbst appliance treatment [J]. Orthod Craniofac Res, 2017, 20(2):111-118. [13] 邵佳琪,张佳男,卢海平.Runx2基因表达与正畸牙移动牙周改建[J].口腔医学,2020,40(9): 851-854. [14] Komori T. Regulation of proliferation, differentiation and functions of osteoblasts by Runx2 [J]. Int J Mol Sci, 2019, 20(7):1694. [15] Du W, Bhojwani A, Hu JK. FACEts of mechanical regulation in the morphogenesis of craniofacial structures [J]. Int J Oral Sci, 2021, 13(1):4. [16] Zhao C, Jiang W, Zhou N, et al. Sox9 augments BMP2-induced chondrogenic differentiation by downregulating Smad7 in mesenchymal stem cells (MSCs) [J]. Genes Dis, 2017, 4(4):229-239. [17] Utreja A, Dyment NA, Yadav S, et al. Cell and matrix response of temporomandibular cartilage to mechanical loading [J]. Osteoarthr Cartil, 2016, 24(2):335-344. [18] Betti BF, Everts V, Ket JCF, et al. Effect of mechanical loading on the metabolic activity of cells in the temporomandibular joint: a systematic review [J]. Clin Oral Investig, 2018, 22(1):57-67. [19] Cheib Vilefort PL, Farah LO, Gontijo HP, et al. Condyle-glenoid fossa relationship after Herbst appliance treatment during two stages of craniofacial skeletal maturation: A retrospective study [J]. Orthod Craniofac Res, 2019, 22(4):345-353. [20] 阮国宪,高丽卿,邓立.周期性压应力诱导髁突软骨细胞分泌促破骨因子的研究[J].口腔医学研究,2019,35(4):372-376. [21] Sun L, Zhao J, Wang H, et al. Mechanical stress promotes matrix synthesis of mandibular condylar cartilage via the RKIP-ERK pathway [J]. J Mol Histol, 2017, 48(5-6):437-446. [22] D'Andrea CR, Alfraihat A, Singh A, et al. Part 2. Review and meta-analysis of studies on modulation of longitudinal bone growth and growth plate activity: A micro-scale perspective [J]. J Orthop Res, 2021, 39(5):919-928. [23] 宋锦璘,罗颂椒,樊瑜波,等.静张应力对大鼠髁突软骨细胞增殖效应调节研究[J].华西口腔医学,2003,10(1): 57-60. [24] Lee D, Erickson A, Dudley AT, et al. Mechanical stimulation of growth plate chondrocytes: Previous approaches and future directions [J]. Exp Mech, 2019, 59(9):1261-1274. [25] Fan Y, Schneider P, Matthews H, et al. 3D assessment of mandibular skeletal effects produced by the Herbst appliance [J]. BMC Oral Health, 2020, 20(1):117. [26] Su X, Wang J, Kang H, et al. Effects of dynamic radial tensile stress on fibrocartilage differentiation of bone marrow mesenchymal stem cells [J]. Biomed Eng Online, 2020, 19(1):8. [27] Zhao Y, Xie L. An update on mesenchymal stem cell-centered therapies in temporomandibular joint osteoarthritis [J]Stem Cells Int, 2021, 2021:6619527. [28] Yang J, Li Y, Liu Y, et al. Role of the SDF-1/CXCR4 signaling pathway in cartilage and subchondral bone in temporomandibular joint osteoarthritis induced by overloaded functional orthopedics in rats [J]. J Orthop Surg Res, 2020, 15(1):330. [29] Briolay A, El Jamal A, Arnolfo P, et al. Enhanced BMP-2/BMP-4 ratio in patients with peripheral spondyloarthritis and in cytokine- and stretch-stimulated mouse chondrocytes [J]. Arthritis Res Ther, 2020, 22(1):234. [30] Wildman BJ, Godfrey TC, Rehan M, et al. MICROmanagement of Runx2 function in skeletal cells [J]. Curr Mol Biol Rep, 2019, 5(1):55-64. [31] Komori T. Molecular mechanism of Runx2-dependent bone development [J]. Mol Cells, 2020, 43(2):168-175. [32] Kim JM, Yang YS, Park KH, et al . A RUNX2 stabilization pathway mediates physiologic and pathologic bone formation [J]. Nat Commun, 2020, 11(1):2289. [33] Qin X, Jiang Q, Nagano K, et al. Runx2 is essential for the transdifferentiation of chondrocytes into osteoblasts [J]. PLoS Genet, 2020, 16(11):e1009169. [34] Huang L, Cai X, Li H, et al. The effects of static pressure on chondrogenic and osteogenic differentiation in condylar chondrocytes from temporomandibular joint [J]. Arch Oral Biol, 2015, 60(4): 622-630. [35] Liao L, Zhang S, Zhou GQ, et al. Deletion of Runx2 in condylar chondrocytes disrupts TMJ tissue homeostasis [J]. J Cell Physiol, 2019, 234(4):3436-3444. [36] Du W, Bhojwani A, Hu JK. FACEts of mechanical regulation in the morphogenesis of craniofacial structures [J]. Int J Oral Sci, 2021, 13(1):4. [37] Kim HJ, Kim WJ, Ryoo HM. Post-translational regulations of transcriptional activity of RUNX2 [J]. Mol Cells, 2020, 43(2):160-167. [38] Jing Y, Wang Z, Li H, et al. Chondrogenesis defines future skeletal patterns via cell transdifferentiation from chondrocytes to bone cells [J]. Curr Osteoporos Rep, 2020, 18(3):199-209. [39] Soltz MA, Basalo IM, Ateshian GA. Hydrostatic pressurization and depletion of trapped lubricant pool during creep contact of a rippled indenter against a biphasic articular cartilage layer [J]. J Biomech Eng, 2003, 125(5): 585-593. [40] Dy P, Wang W, Bhattaram P, et al. Sox9 directs hypertrophic maturation and blocks osteoblast differentiation of growth plate chondrocytes [J]. Dev Cell, 2012, 22(3):597-609. [41] Komori T. Regulation of bone development and extracellular matrix protein genes by Runx2 [J]. Cell Tissue Res, 2010, 339(1):189-195. |