Literature DB >> 31913244

Neuromuscular versus Mechanical Stretch-induced Changes in Contralateral versus Ipsilateral Muscle.

Emiliano Cè, Giuseppe Coratella1, Angela Valentina Bisconti, Massimo Venturelli, Eloisa Limonta1, Christian Doria1, Susanna Rampichini1, Stefano Longo1, Fabio Esposito.   

Abstract

PURPOSE: Whether or not the homologous contralateral muscle (CM) undergoes stretch-induced force reduction as the stretched muscle (SM) is still unclear. The neuromuscular and mechanical factors underlying the force reduction in CM and SM were investigated.
METHODS: Twenty-one participants underwent unilateral knee extensors passive stretching. In both CM and SM, before, immediately after (POST), 5 (POST5), and 10 min (POST10) after passive stretching, maximum voluntary contraction (MVC), peak force (pF), and voluntary activation (VA) were measured. During MVC, the electromyographic and mechanomyographic root mean square (EMG RMS and MMG RMS, respectively) was calculated in rectus femoris, vastus lateralis, and vastus medialis, together with M-wave. The total electromechanical delay (EMD), divided in time delay (Δt) EMG-MMG and Δt MMG-F was calculated.
RESULTS: In CM at POST, the decrease in MVC (-11%; 95% confidence interval [CI], -13 to -9; effect size [ES], -2.27) was accompanied by a fall in VA (-7%; 95% CI, -9 to -4; ES, -2.29), EMG RMS (range, -22% to -11%; ES, -3.92 to -2.25), MMG RMS (range, -10% to -8%; ES, -0.52 to -0.39) and an increase in Δt EMG-MMG (≈+10%; ES, 0.73 to 0.93). All changes returned to baseline at POST5. In SM, decrease in MVC (-19%; 95% CI, -24 to -18; ES, -3.08), pF (-25%; 95% CI, -28 to -22; ES, -4.90), VA (-10%; 95% CI, -11 to -9; ES, -5.71), EMG RMS (≈-33%; ES, -5.23 to -3.22) and rise in MMG RMS (range, +25% to +32%; ES, 4.21 to 4.98) and EMD (≈+28%; ES, 1.59 to 1.77) were observed at POST and persisted at POST10. No change in M-wave occurred.
CONCLUSIONS: The contralateral central motor drive stretch-induced inhibition seems to account for the force reduction in CM. In SM, both central inhibition and mechanical factors concurred.

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Year:  2020        PMID: 31913244     DOI: 10.1249/MSS.0000000000002255

Source DB:  PubMed          Journal:  Med Sci Sports Exerc        ISSN: 0195-9131            Impact factor:   5.411


  3 in total

1.  Non-local Acute Passive Stretching Effects on Range of Motion in Healthy Adults: A Systematic Review with Meta-analysis.

Authors:  David G Behm; Shahab Alizadeh; Saman Hadjizadeh Anvar; Ben Drury; Urs Granacher; Jason Moran
Journal:  Sports Med       Date:  2021-01-18       Impact factor: 11.136

Review 2.  Non-local acute stretching effects on strength performance in healthy young adults.

Authors:  David G Behm; Shahab Alizadeh; Ben Drury; Urs Granacher; Jason Moran
Journal:  Eur J Appl Physiol       Date:  2021-03-14       Impact factor: 3.078

3.  Training and Detraining Effects Following a Static Stretching Program on Medial Gastrocnemius Passive Properties.

Authors:  Masatoshi Nakamura; Kaoru Yahata; Shigeru Sato; Ryosuke Kiyono; Riku Yoshida; Taizan Fukaya; João Pedro Nunes; Andreas Konrad
Journal:  Front Physiol       Date:  2021-04-01       Impact factor: 4.566

  3 in total

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