East Carolina University
Greenville, North Carolina, 27834, United States
Location status: Recruiting
NCT Number: NCT05117463
The purpose of this study is to investigate brain activity during current visual and auditory tasks for balance control. The participants will perform cognitive, gait, and balance measures before the data collection to exclude people with neurological disorders. The participants will wear VR headset which provides visual tasks. The participants will need to maintain balance while performing concurrent visual and auditory tasks. The brain activities, reaction time, and eye-tracking data will be collected during doing our experimental tasks.
Interested in participating?
Request Info25 year–85 year
All sexes
Observational
Greenville, North Carolina, 27834, United States
Location status: Recruiting
Virtual reality (VR), defined as an interactive system including computers and media peripherals, creates an environment similar to a real-world and also provides audio and video feedback to users. Recently, the virtual reality technology is able to make a headset displaying 360 degrees VR environment and locate the headset in the space. This improvement of VR technology significantly reduces the cost of VR equipment and enhances the application of VR technology in the field of balance assessment and treatment.
Optic flow (OF) has been used to study the effect of visual input on balance control. Most of the studies displayed OF on a screen rather than using 360 degrees visual field environment. Therefore, the subjects could obtain reference inputs for balance adjustment. The new VR headset makes it possible to play OF in a 360-degree visual field in which the subject will not able to obtain any reference inputs rather than using somatosensory and/or vestibular systems. It is unclear how the effect of aging and attention relocation affects postural control with concurrent visual and auditory attention tasks. In this study, fNIRS will be used to detect the brain activity of healthy adults in the prefrontal and temporal-parietal junction as they complete concurrent cognitive and visual tasks displayed by a VR headset. This work will focus on age and test positions (sitting vs standing). As age can play a role in brain activation levels, the investigators will compare results among younger adults (25-35 years), older adults (65-85 years), and older adults with the risk of falls. All the subjects will undergo concurrent auditory reaction time tasks and visual tracking tasks. The investigators will compare the brain images from the test conditions between the age groups and investigate if brain activity differs during the performance of reaction time tasks and visual tacking tasks. The goal of this study is to examine the effect of concurrent visual and auditory tasks on brain activation and postural control.
Healthy volunteers accepted: Yes
Only the study team can determine whether someone qualifies for participation.
Inclusion criteria
Exclusion criteria
The optic flow will be displayed at different speeds. The subject will need to look at the center of the optic flow.
Two different pitches of tones will be played. The participants will need to press a button on the right or left hand based on the pitch of the tone.
Time frame: 30 minutes
The functional Near-Infrared Spectroscopy (fNIRS) will be used to collect the brain activity in the region of interest. The fNIRS is a non-invasive neuroimaging technology that has been used to study brain activation during dynamic conditions.
Time frame: 30 minutes
A forceplate will be used to measure the postural sway during static standing conditions.
Time frame: 30 minutes
The auditory choice reaction time task will be used to measure the reaction time. The participant will need to push a button on right hand when hearing a lower pitch of tone and left hand when hearing a higher pitch of tone.
Contact information is provided by the study sponsor or research team.
Brian Sylcott, PhD
CONTACT
Chia-Cheng Lin, PhD
CONTACT
Chia-Cheng Lin, PhD, PT, MSPT
Other
Characterizing Brain Activation and Postural Response During Concurrent Cognitive Tasks in the Presence of Optic Flow Stimulation: A Functional Near-Infrared Spectroscopy Study
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