External oblique activation is augmented with a water-filled resistance training implement compared to a static load

Main Article Content

Dylan Cho
Joshua A. Kidwell
https://orcid.org/0009-0009-4301-0835
Trent Yamamoto
https://orcid.org/0009-0007-5451-6570
Sean Taylor
Joshua Thomas
https://orcid.org/0009-0006-8137-9818
Nathan Truneh
Jacob J. Bright
https://orcid.org/0009-0005-6023-5498
Joseph Hoang
https://orcid.org/0009-0000-7700-9853
Vishruth Shatagopam
Phillip Goldman
Eric V. Neufeld
https://orcid.org/0000-0002-7247-7671
Brett A. Dolezal
https://orcid.org/0000-0003-0405-608X

Abstract

This study investigated the effects of a water-filled resistance training device (WTD) compared to a static training load on core muscle activation in the rectus abdominis (RA) and external obliques (EO) during a rotational core exercise. Twelve college-aged male participants with moderate resistance training experience performed 4 sets of 12 repetitions on each side of the Russian twist exercise using both the WTD and a static-weight control in a randomized crossover design on two separate days. Surface electromyography (sEMG) was used to measure muscle activation in both conditions. Results indicated that the WTD condition elicited greater mean and peak muscle activation in both muscle groups compared to the control. EO activation was 85% higher in mean (p = .002, d = 0.95) and 77% greater in peak (p = .002, d = 1.59) values, while no significant difference in RA activation was identified between groups. These findings suggest that the WTD enhances activation of the external obliques relative to a static load, supporting its potential use in instability-based training for moderately trained males.

Article Details

How to Cite
Cho, D., Kidwell, J. A., Yamamoto, T., Taylor, S., Thomas, J., Truneh, N., … Dolezal, B. A. (2026). External oblique activation is augmented with a water-filled resistance training implement compared to a static load. Scientific Journal of Sport and Performance, 5(3), 542–551. https://doi.org/10.55860/CEMI8585
Section
Performance Analysis of Sport and Physical Conditioning
Author Biographies

Dylan Cho, University of California, Los Angeles

Airway and UC Fit Digital Health-Exercise Physiology Laboratory. David Geffen School of Medicine.

Joshua A. Kidwell, University of California, Los Angeles

Airway and UC Fit Digital Health-Exercise Physiology Laboratory. David Geffen School of Medicine. University of California Los Angeles.

Creighton University School of Medicine.

Trent Yamamoto, University of California, Los Angeles

Airway and UC Fit Digital Health-Exercise Physiology Laboratory. David Geffen School of Medicine. University of California Los Angeles.

Chobanian and Avedisian School of Medicine. Boston University.

Sean Taylor, University of California, Los Angeles

Airway and UC Fit Digital Health-Exercise Physiology Laboratory. David Geffen School of Medicine.

Joshua Thomas, University of California, Los Angeles

Airway and UC Fit Digital Health-Exercise Physiology Laboratory. David Geffen School of Medicine.

Nathan Truneh, University of California, Los Angeles

Airway and UC Fit Digital Health-Exercise Physiology Laboratory. David Geffen School of Medicine.

Jacob J. Bright, University of California, Los Angeles

Airway and UC Fit Digital Health-Exercise Physiology Laboratory. David Geffen School of Medicine.

Joseph Hoang, University of California, Los Angeles

Airway and UC Fit Digital Health-Exercise Physiology Laboratory. David Geffen School of Medicine.

Vishruth Shatagopam, University of California, Los Angeles

Airway and UC Fit Digital Health-Exercise Physiology Laboratory. David Geffen School of Medicine.

Eric V. Neufeld, Long Island Jewish Medical Center

Northwell Orthopedics.

Long Island Jewish Medical Center/North Shore University Hospital.

Brett A. Dolezal, University of California, Los Angeles

Airway and UC Fit Digital Health-Exercise Physiology Laboratory. David Geffen School of Medicine.

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