The central hypothesis is that, while both groups will benefit from the exercise session, participants with obesity will exhibit greater gains in cognitive control, relative to healthy weight adults. Additionally, it is anticipated that the benefits of a single bout of exercise for cognitive control will be mediated by changes in exercise-induced myokines. These hypotheses will be tested by accomplishing three aims: Aim 1: Elucidate the changes in cognitive control following an acute bout of exercise, relative to a sedentary condition, in persons with and without obesity. Aim 2: To examine the effect of a single bout of exercise, relative to a sedentary condition, on myokines known to have neuroprotective effects i.e., BDNF and CTSB in both healthy weight and individuals with obesity. Aim 3: To link changes in exercise-induced myokines (i.e., BDNF and CTSB) to changes in cognitive function, following a single bout of exercise.
18 adults with healthy weight (BMI 18.5-25.0kg/m2) and 18 adults with obesity (BMI 30.0kg/m2) will be asked to complete a counter-balanced crossover trial. After initial baseline testing, participants will be asked to complete either an acute exercise bout or sedentary control session in a counter-balanced order. A cognitive testing battery accompanied by an electroencephalogram (EEG) will be administered following each session. Blood samples will be collected prior to, during, and following each throughout each testing condition.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
PREVENTION
Masking
NONE
Enrollment
26
36 minutes of Exercise
University of Illinois at Urbana-Champaign
Urbana, Illinois, United States
Circulating Cathepsin B (CTSB) Myokine
Changes in peripheral myokine concentration
Time frame: 3 hours
Attentional Inhibition Accuracy
Behavioral performance measured as accuracy (%) during Flanker task
Time frame: 3 hours
Attentional Inhibition Reaction Time
Behavioral performance measured as response time (ms) during Flanker task
Time frame: 3 hours
Attentional Resource Allocation
Changes in P3 event related potential amplitude (microvolts) using a computerized flanker task
Time frame: 3 hours
Attentional Processing Speed
Changes in P3 event related potential latency (ms) using a computerized flanker task
Time frame: 3 hours
Relational Memory
Accuracy during a spatial reconstruction task
Time frame: 3 hours
Brain derived neurotrophic factor (BDNF)
Changes in peripheral BDNF concentration
Time frame: 3 hours
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