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Contributions of neural tone to in vivo passive muscle--tendon unit biomechanical properties in a rat rotator cuff animal model.

Publication ,  Journal Article
Mannava, S; Wiggins, WF; Saul, KR; Stitzel, JD; Smith, BP; Koman, LA; Smith, TL; Tuohy, CJ
Published in: Ann Biomed Eng
July 2011

Passive viscoelastic properties of muscle-tendon units are key determinants of intra- and post-operative success. Atrophied, retracted, and stiff muscle-tendon units are technically challenging to manipulate and perform poorly after surgical repair. This study employs botulinum neurotoxin A (BoNT-A)-mediated inhibition of presynaptic acetylcholine release to examine in vivo neural contributions to soft-tissue biomechanical properties. In vivo load-relaxation and active muscle contractile force testing protocols were performed in the rat rotator cuff model. The passive properties were assessed using linear regression analysis and Fung's quasi-linear viscoelastic (QLV) model. BoNT-A injected muscle--tendon units had a significant reduction in force of contraction (p = 0.001). When compared to saline injected controls, the BoNT-A significantly decreased parameter 'A' of the QLV model, which represents the linear elastic response (p = 0.032). The viscous properties in the BoNT-A treatment group were not significantly different from saline injected controls, as determined by comparison of QLV model parameters 'C,' 'τ(1),' and 'τ(2).' In conclusion, neural tone contributes significantly to muscle-tendon unit passive biomechanical properties. Pre-surgical treatment with BoNT-A may improve the rehabilitation of muscle by altering its passive elastic properties. Accordingly, pharmacological modulation of skeletal muscle stiffness with BoNT-A increases flexibility, potentially improving function. Chemical denervation with BoNT-A may also improve the manipulation of stiff and difficult to mobilize muscles during surgical procedures.

Duke Scholars

Published In

Ann Biomed Eng

DOI

EISSN

1573-9686

Publication Date

July 2011

Volume

39

Issue

7

Start / End Page

1914 / 1924

Location

United States

Related Subject Headings

  • Tensile Strength
  • Synaptic Transmission
  • Stress, Mechanical
  • Rotator Cuff
  • Rats, Sprague-Dawley
  • Rats
  • Neuromuscular Junction
  • Muscle Tonus
  • Muscle Contraction
  • Models, Biological
 

Citation

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Mannava, S., Wiggins, W. F., Saul, K. R., Stitzel, J. D., Smith, B. P., Koman, L. A., … Tuohy, C. J. (2011). Contributions of neural tone to in vivo passive muscle--tendon unit biomechanical properties in a rat rotator cuff animal model. Ann Biomed Eng, 39(7), 1914–1924. https://doi.org/10.1007/s10439-011-0301-x
Mannava, Sandeep, Walter F. Wiggins, Katherine R. Saul, Joel D. Stitzel, Beth P. Smith, L Andrew Koman, Thomas L. Smith, and Christopher J. Tuohy. “Contributions of neural tone to in vivo passive muscle--tendon unit biomechanical properties in a rat rotator cuff animal model.Ann Biomed Eng 39, no. 7 (July 2011): 1914–24. https://doi.org/10.1007/s10439-011-0301-x.
Mannava S, Wiggins WF, Saul KR, Stitzel JD, Smith BP, Koman LA, et al. Contributions of neural tone to in vivo passive muscle--tendon unit biomechanical properties in a rat rotator cuff animal model. Ann Biomed Eng. 2011 Jul;39(7):1914–24.
Mannava, Sandeep, et al. “Contributions of neural tone to in vivo passive muscle--tendon unit biomechanical properties in a rat rotator cuff animal model.Ann Biomed Eng, vol. 39, no. 7, July 2011, pp. 1914–24. Pubmed, doi:10.1007/s10439-011-0301-x.
Mannava S, Wiggins WF, Saul KR, Stitzel JD, Smith BP, Koman LA, Smith TL, Tuohy CJ. Contributions of neural tone to in vivo passive muscle--tendon unit biomechanical properties in a rat rotator cuff animal model. Ann Biomed Eng. 2011 Jul;39(7):1914–1924.
Journal cover image

Published In

Ann Biomed Eng

DOI

EISSN

1573-9686

Publication Date

July 2011

Volume

39

Issue

7

Start / End Page

1914 / 1924

Location

United States

Related Subject Headings

  • Tensile Strength
  • Synaptic Transmission
  • Stress, Mechanical
  • Rotator Cuff
  • Rats, Sprague-Dawley
  • Rats
  • Neuromuscular Junction
  • Muscle Tonus
  • Muscle Contraction
  • Models, Biological