Antonio Palazón-Bru, María M Rizo-Baeza, Asier Martínez-Segura, David M Folgado-de la Rosa, Vicente F Gil-Guillén, Ernesto Cortés-Castell
Journal: Clinical journal of sport medicine : official journal of the Canadian Academy of Sport Medicine 2018;28(2):168-173
PMID: 29271781
OBJECTIVE
Although 2 screening tests exist for having a high risk of muscle dysmorphia (MD) symptoms, they both require a long time to apply. Accordingly, we proposed the construction, validation, and implementation of such a test in a mobile application using easy-to-measure factors associated with MD.
DESIGN
Cross-sectional observational study.
SETTING
Gyms in Alicante (Spain) during 2013 to 2014.
PARTICIPANTS
One hundred forty-one men who engaged in weight training.
ASSESSMENT OF RISK FACTORS
The variables are as follows: age, educational level, income, buys own food, physical activity per week, daily meals, importance of nutrition, special nutrition, guilt about dietary nonadherence, supplements, and body mass index (BMI). A points system was constructed through a binary logistic regression model to predict a high risk of MD symptoms by testing all possible combinations of secondary variables (5035). The system was validated using bootstrapping and implemented in a mobile application.
MAIN OUTCOME MEASURES
High risk of having MD symptoms (Muscle Appearance Satisfaction Scale).
RESULTS
Of the 141 participants, 45 had a high risk of MD symptoms [31.9%, 95% confidence interval (CI), 24.2%-39.6%]. The logistic regression model combination providing the largest area under the receiver operating characteristic curve (0.76) included the following: age [odds ratio (OR) = 0.90; 95% CI, 0.84-0.97, P = 0.007], guilt about dietary nonadherence (OR = 2.46; 95% CI, 1.06-5.73, P = 0.037), energy supplements (OR = 3.60; 95% CI, 1.54-8.44, P = 0.003), and BMI (OR = 1.33, 95% CI, 1.12-1.57, P < 0.001). The points system was validated through 1000 bootstrap samples.
CONCLUSIONS
A quick, easy-to-use, 4-factor test that could serve as a screening tool for a high risk of MD symptoms has been constructed, validated, and implemented in a mobile application.
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