Taking the body off the mind: Decreased functional connectivity between somatomotor and default‐mode networks following Floatation‐REST
Obada Al Zoubi, Masaya Misaki, Jerzy Bodurka, Rayus Kuplicki, Colleen Wohlrab, William A. Schoenhals, Hazem H. Refai, Sahib S. Khalsa, Murray B. Stein, Martin P. Paulus, Justin S. Feinstein
Human Brain Mapping April 9, 2021 DOI: 10.1002/hbm.25429 via OpenAlex
Summary
AI-generated from the abstractA single 90-minute session of Floatation-REST, which minimizes sensory input, reduces resting-state functional connectivity within and between posterior hubs of the default-mode network and somatomotor cortices extending into the posterior insula. A control condition of resting in a zero-gravity chair produced a similar pattern of reduced connectivity. The findings suggest that reducing nervous system stimulation is reflected by decreased connectivity in brain networks that construct and map the sense of self.
Study at a glance
| Characteristics | Randomized controlled trial Peer reviewed |
|---|---|
| Population | Healthy participants |
| Duration | 90-minute session |
| Topics | Default mode network |
| Keywords | Resting State FMRI Neuroscience Psychology Sensory stimulation therapy |
| Citations | 39 |
| Key finding | Floatation-REST and a zero-gravity chair control condition both reduce resting-state functional connectivity within and between posterior default-mode network hubs and somatomotor cortices extending into the posterior insula. |
Abstract
Abstract Floatation‐Reduced Environmental Stimulation Therapy (REST) is a procedure that reduces stimulation of the human nervous system by minimizing sensory signals from visual, auditory, olfactory, gustatory, thermal, tactile, vestibular, gravitational, and proprioceptive channels, in addition to minimizing musculoskeletal movement and speech. Initial research has found that Floatation‐REST can elicit short‐term reductions in anxiety, depression, and pain, yet little is known about the brain networks impacted by the intervention. This study represents the first functional neuroimaging investigation of Floatation‐REST, and we utilized a data‐driven exploratory analysis to determine whether the intervention leads to altered patterns of resting‐state functional connectivity (rsFC). Healthy participants underwent functional magnetic resonance imaging (fMRI) before and after 90 min of Floatation‐REST or a control condition that entailed resting supine in a zero‐gravity chair for an equivalent amount of time. Multivariate Distance Matrix Regression (MDMR), a statistically‐stringent whole‐brain searchlight approach, guided subsequent seed‐based connectivity analyses of the resting‐state fMRI data. MDMR identified peak clusters of rsFC change between the pre‐ and post‐float fMRI, revealing significant decreases in rsFC both within and between posterior hubs of the default‐mode network (DMN) and a large swath of cortical tissue encompassing the primary and secondary somatomotor cortices extending into the posterior insula. The control condition, an active form of REST, showed a similar pattern of reduced rsFC. Thus, reduced stimulation of the nervous system appears to be reflected by reduced rsFC within the brain networks most responsible for creating and mapping our sense of self.