O Spinal Mouse como instrumento de análise da curvatura da coluna vertebral: um estudo bibliométrico
DOI:
https://doi.org/10.17267/2238-2704rpf.2025.e6288Palavras-chave:
Postura, Coluna Vertebral, Vértebras Torácicas, Bibliometria, Avaliação de Resultados, Cuidados de SaúdeResumo
INTRODUÇÃO: A preocupação global com a saúde da coluna vertebral tem vindo a aumentar devido ao número crescente de jovens afetados por condições como escoliose, hipercifose e hiperlordose, que podem provocar dor, rigidez, limitações funcionais e redução da qualidade de vida. OBJETIVO: Analisar as tendências globais da investigação científica relacionada com a utilização do Spinal Mouse na avaliação da postura e da curvatura da coluna vertebral, recorrendo a uma abordagem bibliométrica. MÉTODO: Foi realizado um estudo bibliométrico com base em documentos indexados nas bases de dados Web of Science e Scopus, abrangendo publicações até janeiro de 2025. As variáveis analisadas incluíram o ano de publicação, métricas de citação, revistas científicas, padrões de autoria e colaboração, bem como os países e instituições com maior produção científica. RESULTADOS: Foram analisadas 227 referências. A maioria das publicações sobre o Spinal Mouse corresponde a artigos científicos, registando-se uma taxa de crescimento anual de 6,33% e uma média de 12,09 citações por documento. Espanha e Japão foram os países com maior número de publicações, embora a colaboração internacional se tenha revelado limitada. CONCLUSÕES: O interesse pelo Spinal Mouse tem vindo a crescer, especialmente no contexto da avaliação não invasiva da postura e do alinhamento da coluna vertebral. Recomenda-se um reforço da colaboração internacional para fortalecer a investigação nesta área, dado o potencial do dispositivo, comprovado pela sua facilidade de utilização, precisão e aplicabilidade tanto em contextos clínicos como de investigação
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Referências
1. Merchán ÁA. Postural hygiene and prevention of back pain in schoolchildren. NPunto [Internet]. 2020;3(27):4–22. Available from: https://www.npunto.es/content/src/pdf-articulo/5ee22d3e553d3NPvolumen27-4-22.pdf
2. Oliveira-Costa E, Alonso-Fernandez D, Gutiérrez-Sánchez Á. Assessment of the prevalence of postural and behavioral habits in school environment. In: Arezes P, Baptista JS, Melo R, Barroso M, Branco JC, Carneiro P, et al. International Symposium on Occupational Safety and Hygiene: Proceedings Book of the SHO2023. Guimarães: SPOSHO; 2023. p. 196–205. https://doi.org/10.24840/978-989-54863-4-2
3. Azevedo N, Ribeiro JC, Machado L. Balance and posture in children and adolescents: A cross-sectional study. Sensors. 2022;22(13):4973. https://doi.org/10.3390/s22134973
4. Abelin-Genevois K. Sagittal balance of the spine. Orthop Traumatol Surg Res. 2021;107(1S):102769. Cited: PMID: 33321235
5. Arrondo ÁP. La postura corporal en Educación Física. Rev Arista Digit [Internet]. 2012 [cited 2025 Feb. 20];27:52–60. Available from: https://www.afapna.com/aristadigital/archivos_revista/2012_diciembre_0.pdf
6. Calvo-Muñoz I, Kovacs FM, Roqué M, Gago FI, Seco CJ. Risk factors for low back pain in childhood and adolescence: A systematic review. Clin J Pain. 2018;34(5):468–84. http://dx.doi.org/10.1097/AJP.0000000000000558
7. Carvalho AMS. Educação postural na criança em idade escolar: contributos para a prática de enfermagem de reabilitação [dissertação de mestrado] [Internet]. Santa Maria: Escola Superior de Saúde de Santa Maria; 2021. [cited 2025 Feb. 14]. Available from: http://hdl.handle.net/10400.26/48121
8. Lamartina C, Berjano P. Classification of sagittal imbalance based on spinal alignment and compensatory mechanisms. Eur Spine J. 2014;23(6):1177–89. http://dx.doi.org/10.1007/s00586-014-3227-9
9. Bueno GR, Garcia LF, Bertolini SMMG, Lucena TFR. The head down generation: Musculoskeletal symptoms and the use of smartphones among young university students. Telemed J E Health. 2019;25(11):1049–56. http://dx.doi.org/10.1089/tmj.2018.0231
10. Jenčíková K, Kasović M, Zvonař M. The effects of a schoolbag load carriage on gait kinematics in children: A school-based study. Kinesiology. 2024;56(2):189–97. http://dx.doi.org/10.26582/k.56.2.1
11. Kasović M, Zvonar M, Gomaz L, Bolčević F, Anton V. Influence of schoolbag carriage on pattern changes in plantar pressure during walking among first-grade schoolchildren. Kinesiology. 2018;50(2):188–93. http://dx.doi.org/10.26582/k.50.2.14
12. Aria M, Cuccurullo C. bibliometrix: An R-tool for comprehensive science mapping analysis. J Informetr [Internet]. 2017;11(4):959–75. Available from: https://www.sciencedirect.com/science/article/abs/pii/S1751157717300500
13. Mokhnacheva YV, Tsvetkova VA. Development of bibliometrics as a scientific field. Sci Tech Inf Process. 2020;47(3):158–63. http://dx.doi.org/10.3103/s014768822003003x
14. Donthu N, Kumar S, Mukherjee D, Pandey N, Lim WM. How to conduct a bibliometric analysis: An overview and guidelines. J Bus Res [Internet]. 2021;133:285–96. Available from: https://www.sciencedirect.com/science/article/pii/S0148296321003155
15. Barrett E, McCreesh K, Lewis J. Reliability and validity of non-radiographic methods of thoracic kyphosis measurement: a systematic review. Man Ther. 2014;19(1):10–7. Cited: PMID: 24246907
16. Belli G, Russo L, Mauro M, Toselli S, Latessa PM. Relation between photogrammetry and Spinal Mouse for lumbopelvic assessment in adolescents with thoracic kyphosis. Healthcare. 2024;12(7):738. http://dx.doi.org/10.3390/healthcare12070738
17. Belli G, Toselli S, Mauro M, Latessa PM, Russo L. Relation between photogrammetry and Spinal Mouse for sagittal imbalance assessment in adolescents with thoracic kyphosis. J Funct Morphol Kinesiol. 2023;8(2):68. http://dx.doi.org/10.3390/jfmk8020068
18. Belli G, Toselli S, Latessa PM, Mauro M. Evaluation of self-perceived body image in adolescents with mild idiopathic scoliosis. Eur J Investig Health Psychol Educ. 2022;12(3):319–33. http://dx.doi.org/10.3390/ejihpe12030023
19. Demir E, Guzel NA, Cobanoglu G, Kafa N. The reliability of measurements with the Spinal Mouse device in frontal and sagittal planes in asymptomatic female adolescents. Ann Clin Anal Med. 2020;11(2):146–49. http://dx.doi.org/10.4328/acam.6201
20. Domokos B, Beer L, Reuther S, Raschka C, Spang C. Immediate effects of isolated lumbar extension resistance exercise (ILEX) on spine posture and mobility measured with the IDIAG Spinal Mouse system. J Funct Morphol Kinesiol. 2023;8(2):60. http://dx.doi.org/10.3390/jfmk8020060
21. Dreischarf B, Koch E, Dreischarf M, Schmidt H, Pumberger M, Becker L. Comparison of three validated systems to analyse spinal shape and motion. Sci Rep. 2022;12(1):10222. http://dx.doi.org/10.1038/s41598-022-13891-x
22. Livanelioglu A, Kaya F, Nabiyev V, Demirkiran G, Fırat T. The validity and reliability of “Spinal Mouse” assessment of spinal curvatures in the frontal plane in pediatric adolescent idiopathic thoraco-lumbar curves. Eur Spine J. 2016;25(2):476–82. http://dx.doi.org/10.1007/s00586-015-3945-7
23. López-Miñarro PA, Vaquero-Cristóbal R, Alacid F, Isorna M, Muyor JM. Comparison of sagittal spinal curvatures and pelvic tilt in highly trained athletes from different sport disciplines. Kinesiology. 2017;49(1):109–16. http://dx.doi.org/10.26582/k.49.1.2
24. Roghani T, Zavieh MK, Rahimi A, Talebian S, Manshadi FD, Baghban AA, et al. The reliability of standing sagittal measurements of spinal curvature and range of motion in older women with and without hyperkyphosis using a skin-surface device. J Manipulative Physiol Ther. 2017;40(9):685–91. Cited: PMID: 29229059
25. Taş SA, Çankaya T. Effects of structured training on spinal posture and selective motor control in children with unilateral spastic cerebral palsy. Gait Posture. 2024;109:22–7. Cited: PMID: 38244393
26. Mannion AF, Knecht K, Balaban G, Dvorak J, Grob D. A new skin-surface device for measuring the curvature and global and segmental ranges of motion of the spine: reliability of measurements and comparison with data reviewed from the literature. Eur Spine J. 2004;13(2):122–36. http://dx.doi.org/10.1007/s00586-003-0618-8
27. Muyor JM, Alacid F, López-Miñarro PA. Sagittal Spinal Morphology in Young Highly-Trained Paddlers. Int J Morphol. 2011;29(3):1047–53. http://dx.doi.org/10.4067/s0717-95022011000300065
28. Muyor JM, López-Miñarro PA, Alacid F. The relationship between hamstring muscle extensibility and spinal postures varies with the degree of knee extension. J Appl Biomech. 2013;29(6):678–86. http://dx.doi.org/10.1123/jab.29.6.678
29. Muyor JM, Vaquero-Cristóbal R, Alacid F, López-Miñarro PA. Criterion-related validity of sit-and-reach and toe-touch tests as a measure of hamstring extensibility in athletes. J Strength Cond Res. 2014;28(2):546–55. http://dx.doi.org/10.1519/JSC.0b013e31829b54fb
30. Cohen L, Kobayashi S, Simic M, Dennis S, Refshauge K, Pappas E. Non-radiographic methods of measuring global sagittal balance: a systematic review. Scoliosis Spinal Disord. 2017;12:30. http://dx.doi.org/10.1186/s13013-017-0135-x
31. Topalidou A, Tzagarakis G, Souvatzis X, Kontakis G, Katonis P. Evaluation of the reliability of a new non-invasive method for assessing the functionality and mobility of the spine. Acta Bioeng Biomech. 2014;16(1):117-24. Cited: PMID: 24707905
32. Kokol P, Saranto K, Vošner HB. eHealth and health informatics competences: A systemic analysis of literature production based on bibliometrics. Kybernetes. 2018;47(5):1018–30. http://dx.doi.org/10.1108/k-09-2017-0338
33. Kapoor KK, Tamilmani K, Rana NP, Patil P, Dwivedi YK, Nerur S. Advances in social media research: Past, present and future. Inf Syst Front. 2018;20(3):531–58. Available from: http://dx.doi.org/10.1007/s10796-017-9810-y
34. Abu-Rumman A. Scopus Content Coverage Guide [Internet]. Elsevier; 2019. [Cited 2025 Feb. 1]. Available from: https://assets.ctfassets.net/o78em1y1w4i4/EX1iy8VxBeQKf8aN2XzOp/c36f79db25484cb38a5972ad9a5472ec/Scopus_ContentCoverage_Guide_WEB.pdf
35. Leblond H, L’Esperance M, Orsal D, Rossignol S. Treadmill locomotion in the intact and Spinal Mouse. J Neurosci. 2003;23(36):11411–9. http://dx.doi.org/10.1523/jneurosci.23-36-11411.2003
36. López-Miñarro PA, Muyor JM, Alacid F. Sagittal spinal curvatures and pelvic tilt in elite young kayakers. Medicina Dello Sport [Internet]. 2010;63(4):509–19. Available from: https://www.minervamedica.it/en/journals/medicina-dello-sport/article.php?cod=R26Y2010N04A0509&acquista=1
37. Muyor JM, López-Miñarro PA, Alacid F. Spinal posture of thoracic and lumbar spine and pelvic tilt in highly trained cyclists. J Sports Sci Med. 2011;10(2):355–61. Cited: PMID: 24149883
38. Muyor JM, López-Miñarro PA, Alacid F, López-Plaza D. Degree of hamstring extensibility and its relationship with pelvic tilt in professional cyclists. Appl Sci. 2024;14(9):3912. http://dx.doi.org/10.3390/app14093912
39. Guermazi M, Ghroubi S, Kassis M, Jaziri O, Keskes H, Kessomtini W, et al. Validity and reliability of Spinal Mouse® to assess lumbar flexion. Ann Readapt Med Phys. 2006;49(4):172–7. http://dx.doi.org/10.1016/j.annrmp.2006.03.001
40. Bautmans I, Van Arken J, Van Mackelenberg M, Mets T. Rehabilitation using manual mobilization for thoracic kyphosis in elderly postmenopausal patients with osteoporosis. J Rehabil Med. 2010;42(2):129–35. http://dx.doi.org/10.2340/16501977-0486
41. Masaki M, Aoyama T, Murakami T, Yanase K, Ji X, Tateuchi H, et al. Association of low back pain with muscle stiffness and muscle mass of the lumbar back muscles, and sagittal spinal alignment in young and middle-aged medical workers. Clin Biomech. 2017;49:128-33. http://dx.doi.org/10.1016/j.clinbiomech.2017.09.008
42. Kellis E, Adamou G, Tzilios G, Emmanouilidou M. Reliability of spinal range of motion in healthy boys using a skin-surface device. J Manipulative Physiol Ther. 2008;31(8):570–6. http://dx.doi.org/10.1016/j.jmpt.2008.09.001
43. Consmüller T, Rohlmann A, Weinland D, Druschel C, Duda GN, Taylor WR. Comparative evaluation of a novel measurement tool to assess lumbar spine posture and range of motion. Eur Spine J. 2012;21(11):2170–80. http://dx.doi.org/10.1007/s00586-012-2312-1
44. Vacari DA, Ulbricht L, Schneider FK, Neves EB. Main methods for posture diagnosis of the lumbar spine. Rev Educ Fis/UEM. 2013;24(2):305–15. Available from: https://www.scielo.br/j/refuem/a/mnSpB7hLfqJWm4KRWJDw8ss/?format=pdf&lang=pt
45. Casimiro-Andújar AJ, Artés-Rodríguez E, Díez-Fernández DM, Lirola MJ. Effects of a physical exercise programme through Service-Learning methodology on physical activity, physical fitness and perception of physical fitness and health in university students from Spain: A preliminary study. Int J Environ Res Public Health. 2023;20(4):3377. http://dx.doi.org/10.3390/ijerph20043377
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Copyright (c) 2025 Ercília Oliveira-Costa, Diego Alonso-Fernández, Águeda Gutiérrez-Sánchez

Este trabalho está licenciado sob uma licença Creative Commons Attribution 4.0 International License.
Esta obra está licenciada com uma Licença Creative Commons Atribuição 4.0 Internacional.
