[1] |
Y Z, X H, D Z.Study of bone remodeling in corticotomy-assisted orthodontic tooth movement in rats[J].Journal of cellular biochemistry, 2019, 120(9):15952-15962
|
[2] |
Kurt G K, Eri H, Ki Ni Ci R.Rapid Tooth Movement and Orthodontic Treatment Using Dentoalveolar Distraction (DAD)[J]. Angle Orthodontist, 80(3):597-606.
|
[3] |
Po-Jung C, H C J, H D E, et al.The effect of alveolar decortication on orthodontically induced root resorption.[J]. The Angle orthodontist, 2020.
|
[4] |
Santinoni C D S, Oliveira H F F, de Souza Batista V E, et al.Influence of low-level laser therapy on the healing of human bone maxillofacial defects: A systematic review[J]. Journal of Photochemistry & Photobiology, B: Biology, 2017.
|
[5] |
Zhou Y, He X, Zhang D.Study of bone remodeling in corticotomy‐assisted orthodontic tooth movement in rats[J]. Journal of Cellular Biochemistry, 2019, 120(9).
|
[6] |
Wilcko M T, Wilcko W M, Bissada N F.An Evidence-Based Analysis of Periodontally Accelerated Orthodontic and Osteogenic Techniques: A Synthesis of Scientific Perspectives[J]., 14(4):316.
|
[7] |
Wilcko W M, Wilcko T, Bouquot J E, et al.Rapid orthodontics with alveolar reshaping: Two case reports of decrowding[J].International Journal of Periodontics & Restorative Dentistry, 2001, 21(1):9-19
|
[8] |
Murakami-Malaquias-Silva F, Rosa E P, Almeida P A, et al.Evaluation of the effects of photobiomodulation on orthodontic movement of molar verticalization with mini-implant: A randomized double-blind protocol study[J]. Medicine, 2020, 99(99).
|
[9] |
A A, à R, E J, et al.Corticotomy in orthodontic treatment: systematic review[J].Heliyon, 2020, 6(5):e4013-
|
[10] |
S D, Jd S, J S.Piezocision: a minimally invasive,periodontally accelerated orthodontic tooth movement procedure[J].Compendium of continuing education in dentistry (Jamesburg, N.J.), 2009, 30(6):342-344
|
[11] |
Y W, H Z, W S, et al.Macrophages mediate corticotomy-accelerated orthodontic tooth movement[J].Scientific reports, 2018, 8(1):16788-
|
[12] |
D H, F L, S C, et al.Mechanical load-induced HS production by periodontal ligament stem cells activates M1 macrophages to promote bone remodeling and tooth movement via STAT1[J].Stem cell research & therapy, 2020, 11(1):112-
|
[13] |
Yuanyuan Z, Yulou T, Xiaofeng Y, et al.MicroRNA?21 serves an important role during PAOO?facilitated orthodontic tooth movement.[J]. Molecular medicine reports, 2020.
|
[14] |
O G, My H, B B.Efficacy of piezocision-based flapless corticotomy in the orthodontic correction of severely crowded lower anterior teeth: a randomized controlled trial[J].European journal of orthodontics, 2019, 41(2):188-195
|
[15] |
C C, G L, N J, et al.Piezocision-assisted orthodontic treatment using CADCAM customized orthodontic appliances: a randomized controlled trial in adults[J].European journal of orthodontics, 2019, 41(5):495-501
|
[16] |
Maryam O, Mehrdad R, Majid A, et al.Evaluating the Efficacy of a Modified Piezo-Puncture Method on the Rate of Tooth Movement in Orthodontic Patients: A Clinical Study.[J]. Turkish journal of orthodontics, 2020, 33(1).
|
[17] |
Teixeira C C, Khoo E, Tran J, et al.Cytokine Expression and Accelerated Tooth Movement[J]. Journal of Dental Research, 2010, 89(10).
|
[18] |
Y Z, Y T, X Y, et al.MicroRNA?21 serves an important role during PAOO?facilitated orthodontic tooth movement[J].Molecular medicine reports, 2020, 22(1):474-482
|
[19] |
T S, M Y, M S, et al.Micro-osteoperforations accelerate orthodontic tooth movement by stimulating periodontal ligament cell cycles[J].American journal of orthodontics and dentofacial orthopedics : official publication of the American Association of Orthodontists, its constituent societies, and the American Board of Orthodontics, 2018, 154(6):788-796
|
[20] |
N B, S A, P S.Effect of mini-screw-facilitated micro-osteoperforation on the rate of orthodontic tooth movement: a single-center,split-mouth,randomized,controlled trial[J].Progress in orthodontics, 2020, 21(1):7-
|
[21] |
Mani A, Markos R, Billie Z, et al.Effect of micro-osteoperforations on the rate of tooth movement.[J]. American journal of orthodontics and dentofacial orthopedics : official publication of the American Association of Orthodontists, its constituent societies, and the American Board of Orthodontics, 2013, 144(5).
|
[22] |
Amal A, Emad A, Hisham A, et al.Three-dimensional assessment of the effect of micro-osteoperforations on the rate of tooth movement during canine retraction in adults with Class II malocclusion: A randomized controlled clinical trial[J]. American Journal of Orthodontics & Dentofacial Orthopedics, 153(6):771-785.
|
[23] |
Masood F, Dana Z, Majid H, et al.The use of micro-osteoperforation concept for accelerating differential tooth movement[J]. Journal of the World Federation of Orthodontists, 7(2):56-60.
|
[24] |
Shik J W, Yeol L J, Woo C J.Large-Scale Study of Long-Term Vertical Skeletal Stability in a Surgery-First Orthognathic Approach Without Presurgical Orthodontic Treatment: Part II.[J]. The Journal of craniofacial surgery, 2018, 29(4).
|
[25] |
Liou E J W, Chen P, Wang Y, et al.Surgery-First Accelerated Orthognathic Surgery: Postoperative Rapid Orthodontic Tooth Movement[J]. Journal of Oral and Maxillofacial Surgery, 2010, 69(3).
|
[26] |
J B S, A B D.Oral surgeons' considerations in surgical orthodontic treatment.[J]. Dental clinics of North America, 1988, 32(3).
|
[27] |
Shik J W, Yeol L J, Woo C J.Large-Scale Study of Long-Term Anteroposterior Stability in a Surgery-First Orthognathic Approach Without Presurgical Orthodontic Treatment.[J]. The Journal of craniofacial surgery, 2017, 28(8).
|
[28] |
Hernández-Alfaro F, Guijarro-Martínez R.On a definition of the appropriate timing for surgical intervention in orthognathic surgery[J]. International Journal of Oral & Maxillofacial Surgery, 2014, 43(7).
|
[29] |
Sugawara J, Aymach Z, Nagasaka D H, et al.quot;Surgery first" orthognathics to correct a skeletal class II malocclusion with an impinging bite[J].J Clin Orthod, 2010, 44(7):429-438
|
[30] |
黄丹青,康非吾,周小康,等.下颌截骨术对兔颌骨非术区骨改建的影响[J].口腔颌面外科杂志, 2016, 26(02):83-87
|
[31] |
Li W, Zhao J, Sun W, et al.Osteocytes promote osteoclastogenesis via autophagy-mediated RANKL secretion under mechanical compressive force[J]. Archives of Biochemistry and Biophysics, 2020, 694.
|
[32] |
Zou Y, Xu L, Lin H.Stress overload‐induced periodontal remodelling coupled with changes in high mobility group protein B1 during tooth movement: an in‐vivo study[J]. European Journal of Oral Sciences, 2019, 127(5).
|
[33] |
He D, Liu F, Cui S, et al.Mechanical load-induced H2S production by periodontal ligament stem cells activates M1 macrophages to promote bone remodeling and tooth movement via STAT1[J]. Stem Cell Research & Therapy, 2020, 11(5).
|
[34] |
Gil A P S, Haas O L, Méndez-Manjón I, et al.Alveolar corticotomies for accelerated orthodontics: A systematic review[J]. Journal of Cranio-Maxillo-Facial Surgery, 2018, 46(3).
|
[35] |
Miles P.Accelerated orthodontic treatment ‐ what' s the evidence?[J]. Australian Dental Journal, 2017, 62.
|
[36] |
Peron A P L M, Johann A C B R, Papalexiou V, et al.Tissue responses resulting from tooth movement surgically assisted by corticotomy and corticision in rats[J]. Angle Orthodontist, 2016:102731-102915.
|
[37] |
Y Z, L X, H L.Stress overload-induced periodontal remodelling coupled with changes in high mobility group protein B1 during tooth movement: an in-vivo study[J].European journal of oral sciences, 2019, 127(5):396-407
|
[38] |
Y J, L D, Z D, et al.Tensile force-induced PDGF-BBPDGFRβ signals in periodontal ligament fibroblasts activate JAK2STAT3 for orthodontic tooth movement[J].Scientific reports, 2020, 10(1):11269-
|
[39] |
W L, J Z, W S, et al.Osteocytes promote osteoclastogenesis via autophagy-mediated RANKL secretion under mechanical compressive force[J].Archives of biochemistry and biophysics, 2020, 694:108594-
|