For: | Noshchenko A, Hoffecker L, Lindley EM, Burger EL, Cain CM, Patel VV, Bradford AP. Predictors of spine deformity progression in adolescent idiopathic scoliosis: A systematic review with meta-analysis. World J Orthop 2015; 6(7): 537-558 [PMID: 26301183 DOI: 10.5312/wjo.v6.i7.537] |
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URL: | https://www.wjgnet.com/2218-5836/full/v6/i7/537.htm |
Number | Citing Articles |
1 |
Ajit Jada, Charles E. Mackel, Steven W. Hwang, Amer F. Samdani, James H. Stephen, James T. Bennett, Ali A. Baaj. Evaluation and management of adolescent idiopathic scoliosis: a review. Neurosurgical Focus 2017; 43(4): E2 doi: 10.3171/2017.7.FOCUS17297
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2 |
Swasti Swarup Subudhi, Rajesh Kumar Mohanty. IMMEDIATE EFFECT OF CUSTOM-MADE BOSTON-TYPE THORACO-LUMBO-SACRAL ORTHOSIS ON BALANCE AND POSTURAL STABILITY IN ADOLESCENT IDIOPATHIC SCOLIOSIS. Biomedical Engineering: Applications, Basis and Communications 2024; 36(05) doi: 10.4015/S1016237224500248
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3 |
Ana San Román Gaitero, Andrej Shoykhet, Iraklis Spyrou, Martijn Stoorvogel, Lars Vermeer, Tom P. C. Schlösser. Imaging Methods to Quantify the Chest and Trunk Deformation in Adolescent Idiopathic Scoliosis: A Literature Review. Healthcare 2023; 11(10): 1489 doi: 10.3390/healthcare11101489
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4 |
Nathan J. Lee, Javier Z. Guzman, Jun Kim, Branko Skovrlj, Christopher T. Martin, Andrew J. Pugely, Yubo Gao, John M. Caridi, Sergio Mendoza-Lattes, Samuel K. Cho. A Comparative Analysis Among the SRS M&M, NIS, and KID Databases for the Adolescent Idiopathic Scoliosis. Spine Deformity 2016; 4(6): 420 doi: 10.1016/j.jspd.2016.05.005
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5 |
Yoji Ogura, Ikuyo Kou, Yohei Takahashi, Kazuki Takeda, Shohei Minami, Noriaki Kawakami, Koki Uno, Manabu Ito, Ikuho Yonezawa, Takashi Kaito, Haruhisa Yanagida, Kei Watanabe, Hiroshi Taneichi, Katsumi Harimaya, Yuki Taniguchi, Toshiaki Kotani, Taichi Tsuji, Teppei Suzuki, Hideki Sudo, Nobuyuki Fujita, Mitsuru Yagi, Kazuhiro Chiba, Michiaki Kubo, Yoichiro Kamatani, Masaya Nakamura, Morio Matsumoto, Kota Watanabe, Shiro Ikegawa, Sakuma Tsuyoshi, Kono Katsuki, Akazawa Tsutomu, Nishida Kotaro, Kakutani Kenichiro, Shigematsu Hideki, Iida Takahiro, Demura Satoru, Hosogane Naobumi, Okada Eijiro. A functional variant in MIR4300HG, the host gene of microRNA MIR4300 is associated with progression of adolescent idiopathic scoliosis. Human Molecular Genetics 2017; 26(20): 4086 doi: 10.1093/hmg/ddx291
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6 |
Alicia McCarthy, Michelle Kelly. Ahead of the Curve: Pediatric Scoliosis. The Journal for Nurse Practitioners 2020; 16(1): 34 doi: 10.1016/j.nurpra.2019.08.017
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7 |
Hong-Gui Yu, Hong-Qi Zhang, Zhen-Hai Zhou, Yun-Jia Wang. High Ghrelin Level Predicts the Curve Progression of Adolescent Idiopathic Scoliosis Girls. BioMed Research International 2018; 2018: 1 doi: 10.1155/2018/9784083
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8 |
Shu Yan NG, Ying Ling NG, Ka Ping Cheng, Wing Yan Chan, Tsz Ki Ho. Intervention versus Observation in Mild Idiopathic Scoliosis in Skeletally Immature Patients. The Open Orthopaedics Journal 2020; 14(1): 186 doi: 10.2174/1874325002014010186
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9 |
Tito Bassani, Andrea Cina, Dominika Ignasiak, Noemi Barba, Fabio Galbusera. Accounting for Biomechanical Measures from Musculoskeletal Simulation of Upright Posture Does Not Enhance the Prediction of Curve Progression in Adolescent Idiopathic Scoliosis. Frontiers in Bioengineering and Biotechnology 2021; 9 doi: 10.3389/fbioe.2021.703144
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10 |
Stefano Negrini, Francesca Di Felice, Francesco Negrini, Giulia Rebagliati, Fabio Zaina, Sabrina Donzelli. Predicting final results of brace treatment of adolescents with idiopathic scoliosis: first out-of-brace radiograph is better than in-brace radiograph—SOSORT 2020 award winner. European Spine Journal 2022; 31(12): 3519 doi: 10.1007/s00586-022-07165-3
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11 |
Federico Balagué, Ferran Pellisé. Adolescent idiopathic scoliosis and back pain. Scoliosis and Spinal Disorders 2016; 11(1) doi: 10.1186/s13013-016-0086-7
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12 |
Heng Jiang, Fu Yang, Tao Lin, Wei Shao, Yichen Meng, Jun Ma, Ce Wang, Rui Gao, Xuhui Zhou. Asymmetric expression of H19 and ADIPOQ in concave/convex paravertebral muscles is associated with severe adolescent idiopathic scoliosis. Molecular Medicine 2018; 24(1) doi: 10.1186/s10020-018-0049-y
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13 |
Qianyu Zhuang, Buqing Ye, Shangyi Hui, Ying Du, Robert Chunhua Zhao, Jing Li, Zhihong Wu, Na Li, Yanbin Zhang, Hongling Li, Shengru Wang, Yang Yang, Shugang Li, Hong Zhao, Zusen Fan, Guixing Qiu, Jianguo Zhang. Long noncoding RNA lncAIS downregulation in mesenchymal stem cells is implicated in the pathogenesis of adolescent idiopathic scoliosis. Cell Death & Differentiation 2019; 26(9): 1700 doi: 10.1038/s41418-018-0240-2
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14 |
Gisselle Pérez-Machado, Ester Berenguer-Pascual, Miquel Bovea-Marco, Pedro Antonio Rubio-Belmar, Eva García-López, María José Garzón, Salvador Mena-Mollá, Federico V. Pallardó, Teresa Bas, Juan R. Viña, José Luis García-Giménez. From genetics to epigenetics to unravel the etiology of adolescent idiopathic scoliosis. Bone 2020; 140: 115563 doi: 10.1016/j.bone.2020.115563
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15 |
Yuwen Wang, Zhicheng Dai, Zhichong Wu, Zhenhua Feng, Zhen Liu, Xu Sun, Leilei Xu, Yong Qiu, Zezhang Zhu. Genetic variant of MIR4300HG is associated with progression of adolescent idiopathic scoliosis in a Chinese population. Journal of Orthopaedic Surgery and Research 2021; 16(1) doi: 10.1186/s13018-021-02455-w
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16 |
Fatih Ugur, Kubra Topal, Mehmet Albayrak, Recep Taskin, Murat Topal. Preliminary Investigation into the Association between Scoliosis and Hypoxia: A Retrospective Cohort Study on the Impact of Eliminating Hypoxic Factors on Scoliosis Outcomes. Children 2024; 11(9): 1134 doi: 10.3390/children11091134
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17 |
Zhaoyang Liu, Ryan Scott Gray. The Genetics and Development of Scoliosis. 2018; : 107 doi: 10.1007/978-3-319-90149-7_5
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18 |
Sabrina Donzelli, Giulia Fregna, Fabio Zaina, Giulia Livetti, Maria Chiara Reitano, Stefano Negrini. Predictors of Clinically Meaningful Results of Bracing in a Large Cohort of Adolescents with Idiopathic Scoliosis Reaching the End of Conservative Treatment. Children 2023; 10(4): 719 doi: 10.3390/children10040719
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19 |
Eric C. Parent, Sabrina Donzelli, Maryna Yaskina, Alberto Negrini, Giulia Rebagliati, Claudio Cordani, Fabio Zaina, Stefano Negrini. Prediction of future curve angle using prior radiographs in previously untreated idiopathic scoliosis: natural history from age 6 to after the end of growth (SOSORT 2022 award winner). European Spine Journal 2023; 32(6): 2171 doi: 10.1007/s00586-023-07681-w
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20 |
Prudence Wing Hang Cheung, Jason Pui Yin Cheung. Sanders stage 7b: Using the appearance of the ulnar physis improves decision-making for brace weaning in patients with adolescent idiopathic scoliosis. The Bone & Joint Journal 2021; (1): 141 doi: 10.1302/0301-620X.103B1.BJJ-2020-1240.R1
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21 |
James Houston, Amy Chiang, Shahnawaz Haleem, Jason Bernard, Timothy Bishop, Darren F. Lui. Reproducibility and reliability analysis of the Luk Distal Radius and Ulna Classification for European patients with adolescent idiopathic scoliosis. Journal of Children's Orthopaedics 2021; 15(2): 166 doi: 10.1302/1863-2548.15.200251
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22 |
M Constantine Samaan, Paul Missiuna, Devin Peterson, Lehana Thabane. Understanding the role of the immune system in adolescent idiopathic scoliosis: Immunometabolic CONnections to Scoliosis (ICONS) study protocol. BMJ Open 2016; 6(7): e011812 doi: 10.1136/bmjopen-2016-011812
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23 |
Jiajun Zhang, Ka-yee Cheuk, Leilei Xu, Yujia Wang, Zhenhua Feng, Tony Sit, Ka-lo Cheng, Evguenia Nepotchatykh, Tsz-ping Lam, Zhen Liu, Alec L.H. Hung, Zezhang Zhu, Alain Moreau, Jack C.Y. Cheng, Yong Qiu, Wayne Y.W. Lee. A validated composite model to predict risk of curve progression in adolescent idiopathic scoliosis. eClinicalMedicine 2020; 18: 100236 doi: 10.1016/j.eclinm.2019.12.006
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24 |
Lester P. K. Wong, Prudence W. H. Cheung, Jason P. Y. Cheung. Curve type, flexibility, correction, and rotation are predictors of curve progression in patients with adolescent idiopathic scoliosis undergoing conservative treatment. The Bone & Joint Journal 2022; (4): 424 doi: 10.1302/0301-620X.104B4.BJJ-2021-1677.R1
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25 |
Shoji Seki, Mami Iwasaki, Hiroto Makino, Yasuhito Yahara, Miho Kondo, Katsuhiko Kamei, Hayato Futakawa, Makiko Nogami, Kenta Watanabe, Nguyen Tran Canh Tung, Tatsuro Hirokawa, Mamiko Tsuji, Yoshiharu Kawaguchi. Association of Ligamentum Flavum Hypertrophy with Adolescent Idiopathic Scoliosis Progression—Comparative Microarray Gene Expression Analysis. International Journal of Molecular Sciences 2022; 23(9): 5038 doi: 10.3390/ijms23095038
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26 |
Su-han Jang, Ji-eun Heo. Effectiveness Evaluation of Scanogram Using Longbone Detector. Journal of Radiological Science and Technology 2020; 43(4): 235 doi: 10.17946/JRST.2020.43.4.235
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27 |
Carrie T. Chan, Chris A Rees. Association between body mass index and posterior spine fusion among patients with adolescent idiopathic scoliosis. PLOS ONE 2023; 18(5): e0286001 doi: 10.1371/journal.pone.0286001
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28 |
P. T. T. Ng, L. Straker, K. Tucker, M. T. Izatt, A. Claus. Advancing Use of DEXA Scans to Quantitatively and Qualitatively Evaluate Lateral Spinal Curves, for Preliminary Identification of Adolescent Idiopathic Scoliosis. Calcified Tissue International 2023; 112(6): 656 doi: 10.1007/s00223-023-01075-2
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29 |
P.T.T. Ng, A. Claus, M.T. Izatt, P. Pivonka, K. Tucker. Is spinal neuromuscular function asymmetrical in adolescents with idiopathic scoliosis compared to those without scoliosis?: A narrative review of surface EMG studies. Journal of Electromyography and Kinesiology 2022; 63: 102640 doi: 10.1016/j.jelekin.2022.102640
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30 |
Godwin Abiola, Bryan Kevin Ward, Stephen Bowditch, Eva Katharina Ritzl, John Patrick Carey. Safe Intraoperative Neurophysiologic Monitoring During Posterior Spinal Fusion in a Patient With Cochlear Implants. Otology & Neurotology 2018; 39(5): e314 doi: 10.1097/MAO.0000000000001788
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31 |
Xin Li, Jie Shen, Juping Liang, Xuan Zhou, Yuqi Yang, Dexuan Wang, Shanshan Wang, Lixia Wang, Hong Wang, Qing Du. Effect of core-based exercise in people with scoliosis: A systematic review and meta-analysis. Clinical Rehabilitation 2021; 35(5): 669 doi: 10.1177/0269215520975105
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32 |
Edgar García-Cano, Fernando Arámbula Cosío, Luc Duong, Christian Bellefleur, Marjolaine Roy-Beaudry, Julie Joncas, Stefan Parent, Hubert Labelle. Prediction of spinal curve progression in Adolescent Idiopathic Scoliosis using Random Forest regression. Computers in Biology and Medicine 2018; 103: 34 doi: 10.1016/j.compbiomed.2018.09.029
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33 |
Amrit Gantaguru, Nandan Marathe, Alhad Mulkalwar, Abhinandan Reddy Mallepally. Prognostic Factors to Predict the Progression of Adolescent Idiopathic Scoliosis. Journal of Orthopaedic Diseases and Traumatology 2022; 5(3): 117 doi: 10.4103/jodp.jodp_36_22
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34 |
Firas A. Almomen, Abdullah M. Altaweel, Abdulhameed K. Abunadi, Abdullah E. Hashem, Rayan M. Alqarni, Abdulmonem M. Alsiddiky. Determining the correlation between Cobb angle severity and bone mineral density in women with adolescent idiopathic scoliosis. Journal of Taibah University Medical Sciences 2021; 16(3): 365 doi: 10.1016/j.jtumed.2020.12.019
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35 |
Yasuhito Yahara, Manami Tamura, Shoji Seki, Yohan Kondo, Hiroto Makino, Kenta Watanabe, Katsuhiko Kamei, Hayato Futakawa, Yoshiharu Kawaguchi. A deep convolutional neural network to predict the curve progression of adolescent idiopathic scoliosis: a pilot study. BMC Musculoskeletal Disorders 2022; 23(1) doi: 10.1186/s12891-022-05565-6
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36 |
Tao Lin, Tangbo Li, Heng Jiang, Jun Ma, Xuhui Zhou. Comparing Uniplanar and Multiaxial Pedicle Screws in the Derotation of Apical Vertebrae for Lenke V Adolescent Idiopathic Scoliosis: A Case-Controlled Study. World Neurosurgery 2018; 111: e608 doi: 10.1016/j.wneu.2017.12.135
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37 |
Kenneth Chu, Xihe Kuang, Prudence W. H. Cheung, Sofia Li, Teng Zhang, Jason Pui Yin Cheung. Predicting Progression in Adolescent Idiopathic Scoliosis at the First Visit by Integrating 2D Imaging and 1D Clinical Information. Global Spine Journal 2023; doi: 10.1177/21925682231211273
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38 |
Gabriel Li, Keith Compson, Joseph D. Stone, James O. Sanders, Craig R. Louer. Pathway for Implementation of Halo-Gravity Traction for the Treatment of Severe Spinal Deformities at a New Institution. Journal of the Pediatric Orthopaedic Society of North America 2021; 3(1): 227 doi: 10.55275/JPOSNA-2021-227
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39 |
Javier Pizones, Dong-Gune Chang, Se-Il Suk, Enrique Izquierdo. Current biomechanical theories on the etiopathogenesis of idiopathic scoliosis. Spine Deformity 2024; 12(2): 247 doi: 10.1007/s43390-023-00787-7
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40 |
Marlene Dufvenberg, Anastasios Charalampidis, Elias Diarbakerli, Birgitta Öberg, Hans Tropp, Anna Aspberg Ahl, Daphne Wezenberg, Henrik Hedevik, Hans Möller, Paul Gerdhem, Allan Abbott. Prognostic model development for risk of curve progression in adolescent idiopathic scoliosis: a prospective cohort study of 127 patients. Acta Orthopaedica 2024; 95 doi: 10.2340/17453674.2024.41911
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41 |
Henry Pang, Yi-shun Wong, Benjamin Hon-kei Yip, Alec Lik-hang Hung, Winnie Chiu-wing Chu, Kelly Ka-lee Lai, Yong-ping Zheng, Thomas Wai-hung Chung, Geeta Sharma, Jack Chun-yiu Cheng, Tsz-ping Lam. Using Ultrasound to Screen for Scoliosis to Reduce Unnecessary Radiographic Radiation: A Prospective Diagnostic Accuracy Study on 442 Schoolchildren. Ultrasound in Medicine & Biology 2021; 47(9): 2598 doi: 10.1016/j.ultrasmedbio.2021.05.020
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42 |
Yujia Wang, Huanxiong Chen, Jiajun Zhang, Tsz-ping Lam, A.L.H. Hung, J.C.Y. Cheng, W.Y.W. Lee. Potential Muscle-Related Biomarkers in Predicting Curve Progression to the Surgical Threshold in Adolescent Idiopathic Scoliosis—A Pilot Proteomic Study Comparing Four Non-Progressive vs. Four Progressive Patients vs. A Control Cohort. Journal of Clinical Medicine 2021; 10(21): 4927 doi: 10.3390/jcm10214927
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43 |
Lester P. K. Wong, Prudence W. H. Cheung, Jason P. Y. Cheung. Supine correction index as a predictor for brace outcome in adolescent idiopathic scoliosis. The Bone & Joint Journal 2022; (4): 495 doi: 10.1302/0301-620X.104B4.BJJ-2021-1220.R1
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44 |
Ming Guan, Huan Wang, Huang Fang, Chongyang Zhang, Shutao Gao, Yinshuang Zou. Association between IGF1 gene single nucleotide polymorphism (rs5742612) and adolescent idiopathic scoliosis: a meta-analysis. European Spine Journal 2017; 26(6): 1624 doi: 10.1007/s00586-016-4742-7
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45 |
Andreas Rosenhagen. Körperliche Aktivität und Gesundheit. 2017; : 123 doi: 10.1007/978-3-662-50335-5_9
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46 |
Max Prost, Jochaim Windolf, Markus Rafael Konieczny. Bovine-derived xenograft is a viable bone graft substitute in multilevel, instrumented, spinal fusion.. Orthopedic Reviews 2022; 14(3) doi: 10.52965/001c.37576
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47 |
Yuriy V. Shkatula, Yuriy О. Badion, Pavlo V. Rudenko. METHODS AND CAPABILITIES OF DETERMINATION OF ROTATIONAL-TORSIONAL CHANGES IN THE SPINE IN PATIENTS WITH SCOLIOTIC DISEASE. Eastern Ukrainian Medical Journal 2021; 9(3) doi: 10.21272/eumj.2021;9(3):209-218
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48 |
Yunjia Wang, Hongqi Zhang, Guanteng Yang, Lige Xiao, Jiong Li, Chaofeng Guo. Dysregulated Bone Metabolism Is Related to High Expression of miR-151a-3p in Severe Adolescent Idiopathic Scoliosis. BioMed Research International 2020; 2020: 1 doi: 10.1155/2020/4243015
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49 |
Yichen Meng, Tao Lin, Shulun Liang, Rui Gao, Heng Jiang, Wei Shao, Fu Yang, Xuhui Zhou. Value of DNA methylation in predicting curve progression in patients with adolescent idiopathic scoliosis. EBioMedicine 2018; 36: 489 doi: 10.1016/j.ebiom.2018.09.014
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50 |
Saba Pasha. 3D Deformation Patterns of S Shaped Elastic Rods as a Pathogenesis Model for Spinal Deformity in Adolescent Idiopathic Scoliosis. Scientific Reports 2019; 9(1) doi: 10.1038/s41598-019-53068-7
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51 |
Piotr Janusz, Małgorzata Chmielewska, Mirosław Andrusiewicz, Małgorzata Kotwicka, Tomasz Kotwicki. Methylation of Estrogen Receptor 1 Gene in the Paraspinal Muscles of Girls with Idiopathic Scoliosis and Its Association with Disease Severity. Genes 2021; 12(6): 790 doi: 10.3390/genes12060790
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52 |
Shivan Marya, Anant D. Tambe, Peter A. Millner, Athanasios I. Tsirikos. Adolescent idiopathic scoliosis. The Bone & Joint Journal 2022; (8): 915 doi: 10.1302/0301-620X.104B8.BJJ-2021-1638.R1
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53 |
Bart N. Green, Claire D. Johnson, Scott Haldeman, Erin Griffith, Michael B. Clay, Edward J. Kane, Juan M. Castellote, Shanmuganathan Rajasekaran, Matthew Smuck, Eric L. Hurwitz, Kristi Randhawa, Hainan Yu, Margareta Nordin, Qinhong Zhang. A scoping review of biopsychosocial risk factors and co-morbidities for common spinal disorders. PLOS ONE 2018; 13(6): e0197987 doi: 10.1371/journal.pone.0197987
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54 |
Lori A. Dolan, Stuart L. Weinstein, Mark F. Abel, Patrick P. Bosch, Matthew B. Dobbs, Tyler O. Farber, Matthew F. Halsey, M. Timothy Hresko, Walter F. Krengel, Charles T. Mehlman, James O. Sanders, Richard M. Schwend, Suken A. Shah, Kushagra Verma. Bracing in Adolescent Idiopathic Scoliosis Trial (BrAIST): Development and Validation of a Prognostic Model in Untreated Adolescent Idiopathic Scoliosis Using the Simplified Skeletal Maturity System. Spine Deformity 2019; 7(6): 890 doi: 10.1016/j.jspd.2019.01.011
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55 |
Patawut Bovonratwet, Evan D. Sheha, Nathaniel T. Ondeck, Rohil Malpani, Brian G. Smith, Jonathan N. Grauer. Safety and Effectiveness of Antifibrinolytics in Posterior Scoliosis Surgery for Adolescent Idiopathic Scoliosis. Clinical Spine Surgery: A Spine Publication 2020; 33(1): E26 doi: 10.1097/BSD.0000000000000836
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56 |
Peikai Chen, Yapeng Zhou, Zhijia Tan, Yunzhi Lin, Daniel Li-Liang Lin, Jingwei Wu, Zeluan Li, Hiu Tung Shek, Jianbin Wu, Yong Hu, Feng Zhu, Danny Chan, Kenneth Man-Chee Cheung, Michael Kai-Tsun To. Scoliosis in osteogenesis imperfecta: identifying the genetic and non-genetic factors affecting severity and progression from longitudinal data of 290 patients. Orphanet Journal of Rare Diseases 2023; 18(1) doi: 10.1186/s13023-023-02906-z
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57 |
Dina Nada, Alain Moreau. Pathogenesis of Idiopathic Scoliosis. 2018; : 99 doi: 10.1007/978-4-431-56541-3_5
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58 |
Juan Pablo Otto, Julio García Molina, Andrés Chahín. ESCOLIOSIS IDIOPÁTICA DEL ADOLESCENTE DE BAJO GRADO. Revista Médica Clínica Las Condes 2020; 31(5-6): 417 doi: 10.1016/j.rmclc.2020.08.001
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59 |
David Franciole Oliveira Silva, Karine Cavalcanti Maurício Sena-Evangelista, Clélia Oliveira Lyra, Lucia Fátima Campos Pedrosa, Ricardo Fernando Arrais, Severina Carla Vieira Cunha Lima. Motivations for weight loss in adolescents with overweight and obesity: a systematic review. BMC Pediatrics 2018; 18(1) doi: 10.1186/s12887-018-1333-2
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60 |
Majd Marrache, Andrew B. Harris, Varun Puvanesarajah, Paul D. Sponseller. Seasonal Variation in the Volume of Posterior Spinal Arthrodesis Procedures for Pediatric Scoliosis. Spine 2020; 45(18): 1293 doi: 10.1097/BRS.0000000000003517
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61 |
Maximilian Lenz, Stavros Oikonomidis, Arne Harland, Philipp Fürnstahl, Mazda Farshad, Jan Bredow, Peer Eysel, Max Joseph Scheyerer. Scoliosis and Prognosis—a systematic review regarding patient-specific and radiological predictive factors for curve progression. European Spine Journal 2021; 30(7): 1813 doi: 10.1007/s00586-021-06817-0
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62 |
Hiroko Matsumoto, Shay Warren, Matthew E. Simhon, Matthew W. Konigsberg, Michael W. Fields, Benjamin D. Roye, David P. Roye, Michael G. Vitale. It is not just about the frontal plane: sagittal parameters impact curve progression in AIS patients undergoing brace treatment. Spine Deformity 2020; 8(5): 921 doi: 10.1007/s43390-020-00122-4
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63 |
Nelson L. S. Tang, Matthew B. Dobbs, Christina A. Gurnett, Yong Qiu, T. P. Lam, Jack C. Y. Cheng, Nancy Hadley-Miller. A Decade in Review after Idiopathic Scoliosis Was First Called a Complex Trait—A Tribute to the Late Dr. Yves Cotrel for His Support in Studies of Etiology of Scoliosis. Genes 2021; 12(7): 1033 doi: 10.3390/genes12071033
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