Low-load blood flow restriction reduces time-to-minimum single motor unit discharge rate
3
Select Physical Therapy, Spring, USA
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Publication type: Journal Article
Publication date: 2023-10-24
scimago Q3
wos Q4
SJR: 0.637
CiteScore: 3.7
Impact factor: 1.6
ISSN: 00144819, 14321106
PubMed ID:
37874365
General Neuroscience
Abstract
Resistance training with low loads in combination with blood flow restriction (BFR) facilitates increases in muscle size and strength comparable with high-intensity exercise. We investigated the effects of BFR on single motor unit discharge behavior throughout a sustained low-intensity isometric contraction. Ten healthy individuals attended two experimental sessions: one with, the other without, BFR. Motor unit discharge rates from the tibialis anterior (TA) were recorded with intramuscular fine-wire electrodes throughout the duration of a sustained fatigue task. Three 5-s dorsiflexion maximal voluntary contractions (MVC) were performed before and after the fatigue task. Each participant held a target force of 20% MVC until endurance limit. A significant decrease in motor unit discharge rate was observed in both the non-BFR condition (from 13.13 ± 0.87 Hz to 11.95 ± 0.43 Hz, P = 0.03) and the BFR condition (from 12.95 ± 0.71 Hz to 10.9 ± 0.75 Hz, P = 0.03). BFR resulted in significantly shorter endurance time and time-to-minimum discharge rates and greater end-stage motor unit variability. Thus, low-load BFR causes an immediate steep decline in motor unit discharge rate that is greater than during contractions performed without BFR. This shortened neuromuscular response of time-to-minimum discharge rate likely contributes to the rapid rate of neuromuscular fatigue observed during BFR.
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8
Total citations:
8
Citations from 2024:
7
(87.5%)
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GOST
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Lowe T. W. et al. Low-load blood flow restriction reduces time-to-minimum single motor unit discharge rate // Experimental Brain Research. 2023. Vol. 241. No. 11-12. pp. 2795-2805.
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Lowe T. W., Tenan M. S., Shah K., GRIFFIN L. D. Low-load blood flow restriction reduces time-to-minimum single motor unit discharge rate // Experimental Brain Research. 2023. Vol. 241. No. 11-12. pp. 2795-2805.
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RIS
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TY - JOUR
DO - 10.1007/s00221-023-06720-8
UR - https://doi.org/10.1007/s00221-023-06720-8
TI - Low-load blood flow restriction reduces time-to-minimum single motor unit discharge rate
T2 - Experimental Brain Research
AU - Lowe, Timothy W.
AU - Tenan, Matthew S.
AU - Shah, Kena
AU - GRIFFIN, LISA D.
PY - 2023
DA - 2023/10/24
PB - Springer Nature
SP - 2795-2805
IS - 11-12
VL - 241
PMID - 37874365
SN - 0014-4819
SN - 1432-1106
ER -
Cite this
BibTex (up to 50 authors)
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@article{2023_Lowe,
author = {Timothy W. Lowe and Matthew S. Tenan and Kena Shah and LISA D. GRIFFIN},
title = {Low-load blood flow restriction reduces time-to-minimum single motor unit discharge rate},
journal = {Experimental Brain Research},
year = {2023},
volume = {241},
publisher = {Springer Nature},
month = {oct},
url = {https://doi.org/10.1007/s00221-023-06720-8},
number = {11-12},
pages = {2795--2805},
doi = {10.1007/s00221-023-06720-8}
}
Cite this
MLA
Copy
Lowe, Timothy W., et al. “Low-load blood flow restriction reduces time-to-minimum single motor unit discharge rate.” Experimental Brain Research, vol. 241, no. 11-12, Oct. 2023, pp. 2795-2805. https://doi.org/10.1007/s00221-023-06720-8.