The Relationship of Trunk Muscle Activation and Core Stability: A Biomechanical Analysis of Pilates-Based Stabilization Exercise
<p>Knee stretch exercise. (<b>A</b>) Starting position (left) and end position (right) of the extended back with an anteriorly tilted pelvis (EAP) position. (<b>B</b>) Starting position (left) and end position (right) of the round back with a posteriorly tilted pelvis (RPP) position. (<b>C</b>) Starting position (left) and end position (right) of the flat back with a neutral pelvis (FNP) position.</p> "> Figure 2
<p>The diagram of 3D motion capture system and electromyography for kinematic data.</p> ">
Abstract
:1. Introduction
2. Materials and Methods
2.1. Subjects
2.2. Pilates-Based Stabilization Exercise
2.3. Data Collection
2.4. Statistical Analysis
3. Results
3.1. Muscle Activity during Knee Stretch Exercise
3.2. Kinematic Analysis of the Knee Stretch Exercise
3.3. Correlation between Muscle Activation and Kinematic Data
4. Discussion
5. Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Kibler, W.B.; Press, J.; Sciascia, A. The role of core stability in athletic function. Sports Med. 2006, 36, 189–198. [Google Scholar] [CrossRef] [PubMed]
- Vasseljen, O.; Unsgaard-Tondel, M.; Westad, C.; Mork, P.J. Effect of core stability exercises on feed-forward activation of deep abdominal muscles in chronic low back pain: A randomized controlled trial. Spine 2012, 37, 1101–1108. [Google Scholar] [CrossRef] [PubMed]
- Barr, K.P.; Griggs, M.; Cadby, T. Lumbar stabilization: A review of core concepts and current literature, part 2. Am. J. Phys. Med. Rehabil. 2007, 86, 72–80. [Google Scholar] [CrossRef] [Green Version]
- Bergmark, A. Stability of the lumbar spine. A study in mechanical engineering. Acta Orthop. Scand. Suppl. 1989, 230, 1–54. [Google Scholar] [CrossRef] [PubMed]
- Stokes, I.A.; Gardner-Morse, M.G.; Henry, S.M. Abdominal muscle activation increases lumbar spinal stability: Analysis of contributions of different muscle groups. Clin. Biomech. 2011, 26, 797–803. [Google Scholar] [CrossRef] [Green Version]
- MacDonald, D.A.; Lorimer Moseley, G.; Hodges, P.W. The lumbar multifidus: Does the evidence support clinical beliefs? Manual Ther. 2006, 11, 254–263. [Google Scholar] [CrossRef]
- Akuthota, V.; Ferreiro, A.; Moore, T.; Fredericson, M. Core stability exercise principles. Curr. Sports Med. Rep. 2008, 7, 39–44. [Google Scholar] [CrossRef]
- Hodges, P.W.; Richardson, C.A. Delayed postural contraction of transversus abdominis in low back pain associated with movement of the lower limb. J. Spinal Disord. 1998, 11, 46–56. [Google Scholar] [CrossRef]
- Hodges, P.W.; Richardson, C.A. Inefficient muscular stabilization of the lumbar spine associated with low back pain. A motor control evaluation of transversus abdominis. Spine 1996, 21, 2640–2650. [Google Scholar] [CrossRef]
- Lee, K. Investigation of electromyographic activity of pelvic floor muscles in different body positions to prevent urinary incontinence. Med. Sci. Monit. 2019, 25, 9357–9363. [Google Scholar] [CrossRef]
- Beazell, J.R.; Grindstaff, T.L.; Hart, J.M.; Magrum, E.M.; Cullaty, M.; Shen, F.H. Changes in lateral abdominal muscle thickness during an abdominal drawing-in maneuver in individuals with and without low back pain. Res. Sports Med. 2011, 19, 271–282. [Google Scholar] [CrossRef] [PubMed]
- de Paula Lima, P.O.; de Oliveira, R.R.; Costa, L.O.; Laurentino, G.E. Measurement properties of the pressure biofeedback unit in the evaluation of transversus abdominis muscle activity: A systematic review. Physiotherapy 2011, 97, 100–106. [Google Scholar] [CrossRef]
- Jung, S.; Lee, K.; Kim, M.; Song, C. Audiovisual biofeedback-based trunk stabilization training using a pressure biofeedback system in stroke patients: A randomized, single-blinded study. Stroke Res. Treat. 2017, 2017, 6190593. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Barbosa, A.W.; Guedes, C.A.; Bonifácio, D.N.; de Fátima Silva, A.; Martins, F.L.; Almeida Barbosa, M.C. The pilates breathing technique increases the electromyographic amplitude level of the deep abdominal muscles in untrained people. J. Bodyw. Mov. Ther. 2015, 19, 57–61. [Google Scholar] [CrossRef] [PubMed]
- Endleman, I.; Critchley, D.J. Transversus abdominis and obliquus internus activity during pilates exercises: Measurement with ultrasound scanning. Arch. Phys. Med. Rehabil. 2008, 89, 2205–2212. [Google Scholar] [CrossRef] [PubMed]
- Marques, N.R.; Morcelli, M.H.; Hallal, C.Z.; Gonçalves, M. Emg activity of trunk stabilizer muscles during centering principle of pilates method. J. Bodyw. Mov. Ther. 2013, 17, 185–191. [Google Scholar] [CrossRef]
- Batibay, S.; Kulcu, D.G.; Kaleoglu, O.; Mesci, N. Effect of pilates mat exercise and home exercise programs on pain, functional level, and core muscle thickness in women with chronic low back pain. J. Orthop. Sci. 2021, 26, 979–985. [Google Scholar] [CrossRef]
- Yang, C.Y.; Tsai, Y.A.; Wu, P.K.; Ho, S.Y.; Chou, C.Y.; Huang, S.F. Pilates-based core exercise improves health-related quality of life in people living with chronic low back pain: A pilot study. J. Bodyw. Mov. Ther. 2021, 27, 294–299. [Google Scholar] [CrossRef]
- Alves de Araujo, M.E.; Bezerra da Silva, E.; Bragade Mello, D.; Cader, S.A.; Shiguemi Inoue Salgado, A.; Dantas, E.H. The effectiveness of the pilates method: Reducing the degree of non-structural scoliosis, and improving flexibility and pain in female college students. J. Bodyw. Mov. Ther. 2012, 16, 191–198. [Google Scholar] [CrossRef]
- Barbosa, A.C.; Vieira, E.R.; Silva, A.F.; Coelho, A.C.; Martins, F.M.; Fonseca, D.S.; Barbosa, M.A.; Bordachar, D. Pilates experience vs. Muscle activation during abdominal drawing-in maneuver. J. Bodyw. Mov. Ther. 2018, 22, 467–470. [Google Scholar] [CrossRef] [PubMed]
- Panhan, A.C.; Gonçalves, M.; Eltz, G.D.; Villalba, M.M.; Cardozo, A.C.; Bérzin, F. Co-contraction of the core muscles during pilates exercise on the wunda chair. J. Back Musculoskelet. Rehabil. 2020, 33, 719–725. [Google Scholar] [CrossRef] [PubMed]
- Stevens, V.K.; Bouche, K.G.; Mahieu, N.N.; Coorevits, P.L.; Vanderstraeten, G.G.; Danneels, L.A. Trunk muscle activity in healthy subjects during bridging stabilization exercises. BMC Musculoskelet. Disord. 2006, 7, 75. [Google Scholar] [CrossRef] [Green Version]
- Marshall, P.; Murphy, B. The validity and reliability of surface emg to assess the neuromuscular response of the abdominal muscles to rapid limb movement. J. Electromyogr. Kinesiol. 2003, 13, 477–489. [Google Scholar] [CrossRef]
- Hodges, P.W. Is there a role for transversus abdominis in lumbo-pelvic stability? Man. Ther. 1999, 4, 74–86. [Google Scholar] [CrossRef] [Green Version]
- Panhan, A.C.; Gonçalves, M.; Eltz, G.D.; Villalba, M.M.; Cardozo, A.C.; Bérzin, F. Neuromuscular efficiency of the multifidus muscle in pilates practitioners and non-practitioners. Complement. Ther. Med. 2018, 40, 61–63. [Google Scholar] [CrossRef]
- Moon, J.H.; Hong, S.M.; Kim, C.W.; Shin, Y.A. Comparison of deep and superficial abdominal muscle activity between experienced pilates and resistance exercise instructors and controls during stabilization exercise. J. Exerc. Rehabil. 2015, 11, 161–168. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Shahvarpour, A.; Gagnon, D.; Preuss, R.; Henry, S.M.; Lariviere, C. Trunk postural balance and low back pain: Reliability and relationship with clinical changes following a lumbar stabilization exercise program. Gait Posture 2018, 61, 375–381. [Google Scholar] [CrossRef] [PubMed]
Variables | Experienced (n = 16) | Non-Experienced (n = 16) | t | p |
---|---|---|---|---|
Age (years) | 26.75 ± 8.87 | 25.88 ± 4.85 | 0.346 | 0.732 |
Height (cm) | 162.75 ± 5.09 | 162.63 ± 4.93 | 0.070 | 0.944 |
Weight (kg) | 52.69 ± 5.73 | 53.19 ± 6.26 | −0.235 | 0.815 |
Body mass index (kg/m2) | 19.83 ± 1.18 | 20.06 ± 1.06 | −0.460 | 0.648 |
Variables | EAP (A) | RPP (B) | FNP (C) | Group | Position | Interaction | |
---|---|---|---|---|---|---|---|
F(p) | F(p) | F(p) | |||||
IO | Experienced | 26.77 ± 19.73 | 33.35 ± 26.14 | 27.87 ± 22.27 | 12.261 | 0.515 | 2.272 |
Non-experienced | 12.71 ± 5.30 | 9.84 ± 2.46 | 11.06 ± 4.15 | (0.000) | (0.600) B|AC | (0.112) | |
RA | Experienced | 2.88 ± 1.69 | 3.41 ± 3.73 | 3.59 ± 3.16 | 0.404 | 0.386 | 0.870 |
Non-experienced | 2.89 ± 1.28 | 3.04 ± 2.19 | 2.57 ± 1.40 | (0.530) | (0.681) | (0.424) | |
IO/RA | Experienced | 9.10 ± 2.90 | 12.25 ± 6.78 | 8.43 ± 3.20 | 21.604 | 1.385 | 4.804 |
Non-experienced | 5.25 ± 3.73 | 4.40 ± 2.39 | 5.61 ± 3.84 | (0.000) | (0.258) | (0.012) | |
MU | Experienced | 9.62 ± 7.07 | 7.65 ± 6.12 | 8.51 ± 3.75 | 0.887 | 1.112 | 2.226 |
Non-experienced | 6.95 ± 4.92 | 7.40 ± 5.22 | 6.54 ± 3.56 | (0.354) | (0.335) | (0.117) | |
IL | Experienced | 9.23 ± 5.73 | 5.16 ± 3.96 | 6.78 ± 2.73 | 1.465 | 32.123 | 2.164 |
Non-experienced | 10.97 ± 7.05 | 6.42 ± 4.27 | 10.16 ± 6.80 | (0.236) | (0.000) | (0.133) | |
A|BC | |||||||
MU/IL | Experienced | 1.06 ± 0.54 | 1.72 ± 0.99 | 1.42 ± 0.89 | 7.967 | 15.176 | 4.102 |
Non-experienced | 0.64 ± 0.15 | 1.19 ± 0.41 | 0.73 ± 0.27 | (0.009) | (0.000) | (0.027) | |
B|AC |
Variables | EAP (A) | RPP (B) | FNP (C) | Group | Position | Interaction | |||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
F(p) | F(p) | F(p) | |||||||||||
Pelvic stability | Experienced | 94.50 | ± | 56.46 | 64.88 | ± | 35.78 | 61.13 | ± | 26.34 | 8.741 | 6.772 | 1.349 |
(number) | Non-experienced | 130.00 | ± | 60.24 | 90.50 | ± | 34.72 | 117.50 | ± | 65.38 | (0.006) | (0.002) | (0.267) |
A|B|C | |||||||||||||
Trunk stability | Experienced | 7.80 | ± | 1.80 | 9.48 | ± | 2.64 | 7.42 | ± | 1.62 | 7.698 | 4.119 | 1.560 |
(angle) | Non-experienced | 9.33 | ± | 2.39 | 13.81 | ± | 7.50 | 12.56 | ± | 9.09 | (0.009) | (0.021) | (0.219) |
B|AC | |||||||||||||
Carriage back angle | Experienced | 13.98 | ± | 6.18 | 19.32 | ± | 4.95 | 14.18 | ± | 6.80 | 6.444 | 37.187 | 0.141 |
(degree) | Non-experienced | 8.33 | ± | 7.02 | 14.42 | ± | 7.01 | 8.66 | ± | 6.48 | (0.017) | (0.000) | (0.869) |
B|AC | |||||||||||||
Knee stretch angle | Experienced | 31.91 | ± | 4.60 | 28.70 | ± | 4.87 | 33.95 | ± | 5.10 | 8.848 | 12.947 | 5.173 |
(angle) | Non-experienced | 26.90 | ± | 5.60 | 25.59 | ± | 5.79 | 26.71 | ± | 5.74 | (0.006) | (0.000) | (0.008) |
B|C |
Pelvic Stability | Trunk Stability | Carriage Back Angle | Knee Stretch Angle | |
---|---|---|---|---|
IO | −0.145 | −0.064 | 0.444 * | 0.506 * |
RA | −0.188 | −0.302 * | 0.518 * | 0.274 * |
IO/RA | −0.419 * | −0.222 * | 0.167 | 0.281 * |
MU | −0.244 * | −0.142 | 0.133 | 0.027 |
IL | −0.299 * | −0.010 | 0.174 | 0.090 |
MU/IL | −0.134 | −0.081 | 0.055 | 0.241 * |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2021 by the author. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Lee, K. The Relationship of Trunk Muscle Activation and Core Stability: A Biomechanical Analysis of Pilates-Based Stabilization Exercise. Int. J. Environ. Res. Public Health 2021, 18, 12804. https://doi.org/10.3390/ijerph182312804
Lee K. The Relationship of Trunk Muscle Activation and Core Stability: A Biomechanical Analysis of Pilates-Based Stabilization Exercise. International Journal of Environmental Research and Public Health. 2021; 18(23):12804. https://doi.org/10.3390/ijerph182312804
Chicago/Turabian StyleLee, Kyeongjin. 2021. "The Relationship of Trunk Muscle Activation and Core Stability: A Biomechanical Analysis of Pilates-Based Stabilization Exercise" International Journal of Environmental Research and Public Health 18, no. 23: 12804. https://doi.org/10.3390/ijerph182312804
APA StyleLee, K. (2021). The Relationship of Trunk Muscle Activation and Core Stability: A Biomechanical Analysis of Pilates-Based Stabilization Exercise. International Journal of Environmental Research and Public Health, 18(23), 12804. https://doi.org/10.3390/ijerph182312804