Brief Summary: The aim of this project is to examine: 1. The effects of a community based square stepping exercise programme on cognitive and physical functions in older adults. 2. The effects of a community based square stepping exercise programme on neuroplasticity in older adults. 3. The effects of a community based square stepping exercise programme on structural and functional brain changes in older adults. 4. The relationship between exercise-induced changes in neuroplasticity, structural and functional brain activations, and cognitive and physical gains in older adults.
It is well known regular exercise produces both physical and cognitive benefits. Emerging evidence suggests that physical movements or exercise that have concurrent cognitive demands may have more profound effects on cognitive and brain health outcomes. One training program that incorporates these components is the square stepping exercise (SSE). First demonstrated in Japan, this community-based paradigm has already shown to reduce falls risk and presents as a convenient exercise modality for older adults, that can be conducted in a group setting or even the home. The current project aims to examine the efficacy of this SSE community programme in a Singapore context on cognitive and physical health in older adults. This study also aims to quantify the neural correlates underpinning any observed improvements in cognitive and physical function. Specifically, this project will measure indices of neuroplasticity via structural and functional magnetic resonance imaging, transcranial magnetic stimulation, and electroencephalography. Sample size estimation: n=80 for behavioural primary outcome measures and n=40 subset of larger sample for neuroimaging and neuroplasticity secondary outcome measures \[anticipated\].
Study Type
INTERVENTIONAL
Allocation
NON_RANDOMIZED
Purpose
BASIC_SCIENCE
Masking
DOUBLE
Enrollment
93
Square stepping exercise
Nanyang Technological University
Singapore, Singapore
Go-No-Go task change
Error rate: Number of "Go" responses on "No-Go" trials.
Time frame: Baseline (week 0), mid-intervention (week 7 after session 12), post-intervention (week 13 after session 24)
Stroop task colour words and colour blocks
Average response time (reaction time) for the correct colour word incongruent trials.
Time frame: Baseline (week 0), mid-intervention (week 7 after session 12), post-intervention (week 13 after session 24)
N-Back task change
Number of correct responses (hits)
Time frame: Baseline (week 0), mid-intervention (week 7 after session 12), post-intervention (week 13 after session 24)
Trail Making Test ((TMT) change
B:A: Divide the time taken for TMT B by TMT A
Time frame: Baseline (week 0), mid-intervention (week 7 after session 12), post-intervention (week 13 after session 24)
Digit Span task change
Maximum accurate span length for Digit Span Forward Maximum accurate span length for Digit Span Reverse
Time frame: Baseline (week 0), mid-intervention (week 7 after session 12), post-intervention (week 13 after session 24)
Modified Card Sorting task change
Total number of perseverative errors
Time frame: Baseline (week 0), mid-intervention (week 7 after session 12), post-intervention (week 13 after session 24)
Static balance (single leg) change
Duration required to perform single leg stance on left and right legs
Time frame: Baseline (week 0), post-intervention (week 13 after session 24)
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Temporal gait parameters change
11-meter gait test to examine gait speed
Time frame: Baseline (week 0), post-intervention (week 13 after session 24)
Motor learning change
Probabilistic Serial Reaction Time Task: learning index, computed using reaction time
Time frame: Baseline (week 0), post-intervention (week 13 after session 24)
Change in cortical thickness
T1 and T2 weighted images
Time frame: Baseline (week 0), post-intervention (week 13 after session 24)
Change in grey matter volume
T1 and T2 weighted images
Time frame: Baseline (week 0), post-intervention (week 13 after session 24)
Change in structural topography
T1 and T2 weighted images
Time frame: Baseline (week 0), post-intervention (week 13 after session 24)
Change in white matter integrity
Diffusion Tensor Imaging
Time frame: Baseline (week 0), post-intervention (week 13 after session 24)
Change in white matter connectivity
Diffusion Tensor Imaging
Time frame: Baseline (week 0), post-intervention (week 13 after session 24)
Change in functional connectivity
Resting state functional magnetic resonance imaging
Time frame: Baseline (week 0), post-intervention (week 13 after session 24)
Brain plasticity changes
Changes in transcranial magnetic stimulation (TMS) induced motor evoked potential amplitudes in response to theta-burst stimulation protocol
Time frame: Baseline (week 0), post-intervention (week 13 after session 24)
Brain plasticity changes
Changes in transcranial magnetic stimulation (TMS)-evoked potentials recorded from electroencephalography (EEG)
Time frame: Baseline (week 0), post-intervention (week 13 after session 24)
Brain plasticity changes
Changes in power spectral density and coherence recorded from electroencephalography (EEG)
Time frame: Baseline (week 0), post-intervention (week 13 after session 24)