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Use of real-time ultrasound imaging for biofeedback of diaphragm motion during normal breathing in healthy subjects

  • Cho, Ji-Eun (Department of Physical Therapy, Graduate School, Sahmyook University) ;
  • Hwang, Dal-Yeon (Department of Rehabilitation Medicine, Myongji Choonhye Rehabilitation Hospital) ;
  • Hahn, Joohee (Department of Physical Therapy, Graduate School, Sahmyook University) ;
  • Lee, Wan-Hee (Department of Physical Therapy, College of Health Science, Sahmyook University)
  • Received : 2018.03.21
  • Accepted : 2018.04.20
  • Published : 2018.09.30

Abstract

Objective: To determine if the provision of visual biofeedback using real-time rehabilitative ultrasound imaging (RUSI) enhances the acquisition and retention of diaphragm muscle recruitment during exercise. Design: Two group pretest posttest design. Methods: Thirty healthy subjects were randomly assigned to the verbal feedback group (VG, n=15) or the visual and verbal feedback group (VVG, n=15). The VG performed breathing exercises 10 times with verbal feedback, and the VVG also performed breathing exercises 10 times with verbal feedback and visual feedback with the use of RUSI to measure changes in diaphragm thickness (DT). For DT, the mid-axillary lines between ribs 8 and 9 on both sides were measured in standing, and then the chest wall was perpendicularly illuminated using a linear transducer with the patients in supine to observe the region between rib 8 and 9 and to obtain 2-dimensional images. DT was measured as the distance between the two parallel lines that appeared bright in the middle of the pleura and the peritoneum. After one week, three repetitions (follow-up session) were performed to confirm retention effects. Intra- and between- group percent changes in diaphragm muscle thickness were assessed. Results: In the VVG, the intervention value had a medium effect size compared to the baseline value, but the follow-up value decreased to a small effect size. In the between-group comparisons, during the intervention session, the VVG showed no significant effect on percent change of DT but had a medium effect size compared to the VG (p=0.050, Cohen's d=0.764). During the follow-up session, retention effect did not persist (p=0.311, Cohen's d=0.381). Conclusions: RUSI can be used to provide visual biofeedback and improve performance and retention in the ability to activate the diaphragm muscle in healthy subjects. Future research needs to establish a protocol for respiratory intervention to maintain the effect of diaphragmatic breathing training using RUSI with visual feedback.

Keywords

References

  1. Harper CJ, Shahgholi L, Cieslak K, Hellyer NJ, Strommen JA, Boon AJ. Variability in diaphragm motion during normal breathing, assessed with B-mode ultrasound. J Orthop Sports Phys Ther 2013;43:927-31. https://doi.org/10.2519/jospt.2013.4931
  2. Hodges PW, Gandevia SC. Activation of the human diaphragm during a repetitive postural task. J Physiol 2000;522:165-75. https://doi.org/10.1111/j.1469-7793.2000.t01-1-00165.xm
  3. Hodges PW, Cresswell AG, Daggfeldt K, Thorstensson A. In vivo measurement of the effect of intra-abdominal pressure on the human spine. J Biomech 2001;34:347-53. https://doi.org/10.1016/S0021-9290(00)00206-2
  4. Hodges PW, Gandevia SC. Changes in intra-abdominal pressure during postural and respiratory activation of the human diaphragm. J Appl Physiol (1985) 2000;89:967-76. https://doi.org/10.1152/jappl.2000.89.3.967
  5. Shirley D, Hodges PW, Eriksson AE, Gandevia SC. Spinal stiffness changes throughout the respiratory cycle. J Appl Physiol (1985) 2003;95:1467-75. https://doi.org/10.1152/japplphysiol.00939.2002
  6. Kolar P, Sulc J, Kyncl M, Sanda J, Cakrt O, Andel R, et al. Postural function of the diaphragm in persons with and without chronic low back pain. J Orthop Sports Phys Ther 2012;42:352-62. https://doi.org/10.2519/jospt.2012.3830
  7. O'Sullivan PB, Beales DJ, Beetham JA, Cripps J, Graf F, Lin IB, et al. Altered motor control strategies in subjects with sacroiliac joint pain during the active straight-leg-raise test. Spine (Phila Pa 1976) 2002;27:E1-8. https://doi.org/10.1097/00007632-200201010-00015
  8. Cho JE, Lee HJ, Kim MK, Lee WH. The improvement in respiratory function by inspiratory muscle training is due to structural muscle changes in patients with stroke: a randomized controlled pilot trial. Top Stroke Rehabil 2017;25:37-43.
  9. Zivkovic V, Lazovic M, Vlajkovic M, Slavkovic A, Dimitrijevic L, Stankovic I, et al. Diaphragmatic breathing exercises and pelvic floor retraining in children with dysfunctional voiding. Eur J Phys Rehabil Med 2012;48:413-21.
  10. Cho JE, Cho KH, Yoo JS, Lee SJ, Lee WH. Reliability and validity of a dual-probe personal computer-based muscle viewer for measuring the pennation angle of the medial gastrocnemius muscle in patients who have had a stroke. Top Stroke Rehabil 2017;25:6-12.
  11. Van K, Hides JA, Richardson CA. The use of real-time ultrasound imaging for biofeedback of lumbar multifidus muscle contraction in healthy subjects. J Orthop Sports Phys Ther 2006;36:920-5. https://doi.org/10.2519/jospt.2006.2304
  12. Henry SM, Westervelt KC. The use of real-time ultrasound feedback in teaching abdominal hollowing exercises to healthy subjects. J Orthop Sports Phys Ther 2005;35:338-45. https://doi.org/10.2519/jospt.2005.35.6.338
  13. Richardson C, Hodges P, Hides J. Therapeutic exercise for lumbopelvic stabilization: a motor control approach for the treatment and prevention of low back pain. New York, NY: Churchill Livingstone; 2004.
  14. Kim T, Pollock S, Lee D, O'Brien R, Keall P. Audiovisual biofeedback improves diaphragm motion reproducibility in MRI. Med Phys 2012;39:6921-8. https://doi.org/10.1118/1.4761866
  15. Cohen J. Statistical power analysis for the behavioral sciences. 2nd ed. Hillsdale: Erlbaum Associates; 1988.
  16. Parkhurst TM, Burnett CN. Injury and proprioception in the lower back. J Orthop Sports Phys Ther 1994;19:282-95. https://doi.org/10.2519/jospt.1994.19.5.282
  17. Oh D, Kim G, Lee W, Shin MM. Effects of inspiratory muscle training on balance ability and abdominal muscle thickness in chronic stroke patients. J Phys Ther Sci 2016;28:107-11. https://doi.org/10.1589/jpts.28.107
  18. Kandel ER, Schwartz JH, Jessell TM. Principles of neural science. 4th ed. New York, NY: McGraw-hill; 2000.
  19. Fitts PM, Posner MI. Human performance. Belmont: Brooks/Cole; 1967. p. 7-16.
  20. Salmoni AW, Schmidt RA, Walter CB. Knowledge of results and motor learning: a review and critical reappraisal. Psychol Bull 1984;95:355-86. https://doi.org/10.1037/0033-2909.95.3.355
  21. Dietz HP. Ultrasound imaging of the pelvic floor. Part I: two-dimensional aspects. Ultrasound Obstet Gynecol 2004;23:80-92. https://doi.org/10.1002/uog.939

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