Key result
Hypnosis significantly reduced respiratory amplitude compared to normal state (12.79 vs 14.23 mm, p=0.0350) and altered neural activity in cognitive, executive, and sensorimotor brain regions.
Why the study?
Does hypnosis alter respiratory amplitude and neural activity in healthy subjects?
Observational (n=8)
Does hypnosis alter respiratory amplitude and neural activity in healthy subjects?
Absolute Event Rate: 12.79% vs 14.23%
p-value: p=0.0350
Hypnosis reduces respiratory amplitude and alters neural activity in cognitive and sensorimotor regions, suggesting a potential mechanism for respiratory control during radiotherapy.
Hypnosis-related brain changes warrant caution before radiotherapy use; leaves open neural targets for respiratory control trials.
Respiratory control is essential for treatment effect of radiotherapy due to the high dose, especially for thoracic-abdomen tumor, such as lung and liver tumors. As a noninvasive and comfortable way of respiratory control, hypnosis has been proven effective as a psychological technology in clinical therapy. In this study, the neural control mechanism of hypnosis for respiration was investigated by using functional magnetic resonance imaging (fMRI). Altered spontaneous brain activity as well as neural correlation of respiratory motion was detected for eight healthy subjects in normal state (NS) and hypnosis state (HS) guided by a hypnotist. Reduced respiratory amplitude was observed in HS (mean ± SD: 14.23 ± 3.40 mm in NS, 12.79 ± 2.49 mm in HS, p=0.0350 ), with mean amplitude deduction of 9.2%. Interstate difference of neural activity showed activations in the visual cortex and cerebellum, while deactivations in the prefrontal cortex and precuneus/posterior cingulate cortex (PCu/PCC) in HS. Within these regions, negative correlations of neural activity and respiratory motion were observed in visual cortex in HS. Moreover, in HS, voxel-wise neural correlations of respiratory amplitude demonstrated positive correlations in cerebellum anterior lobe and insula, while negative correlations were shown in the prefrontal cortex and sensorimotor area. These findings reveal the involvement of cognitive, executive control, and sensorimotor processing in the control mechanisms of hypnosis for respiration, and shed new light on hypnosis performance in interaction of psychology, physiology, and cognitive neuroscience.
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Liu et al. (2018) conducted an observational in Healthy subjects (n=8). Hypnosis vs. Normal state was evaluated on Respiratory amplitude (p=0.0350). Hypnosis significantly reduced respiratory amplitude compared to normal state (12.79 vs 14.23 mm, p=0.0350) and altered neural activity in cognitive, executive, and sensorimotor brain regions.
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