Key result
Anticipation of resistive breathing activated the ventrolateral periaqueductal gray, while the resistive breathing challenge itself was associated with activity in the lateral periaqueductal gray.
p-value: p=0.021
The study reveals spatially and temporally distinct functions within the human periaqueductal gray, with the lateral PAG involved in sensorimotor responses to breathlessness and the ventrolateral PAG operating within the threat perception network for impending breathlessness.
Does not alter clinical dyspnea management; leaves open distinct PAG subregion roles in breathlessness for targeted studies.
The sensation of breathlessness is the most threatening symptom of respiratory disease. The different subdivisions of the midbrain periaqueductal gray (PAG) are intricately (and differentially) involved in integrating behavioural responses to threat in animals, while the PAG has previously only been considered as a single entity in human research. Here we investigate how these individual PAG columns are differently involved with respiratory threat. Eighteen healthy subjects were conditioned to associate shapes with certain or uncertain impending respiratory load, and scanned the following day during anticipation and application of inspiratory loading using 7 T functional MRI. We showed activity in the ventrolateral PAG (vlPAG) during anticipation of resistive loading, with activity in the lateral PAG (lPAG) during resistive loading, revealing spatially and temporally distinct functions within this structure. We propose that lPAG is involved with sensorimotor responses to breathlessness, while the vlPAG operates within the threat perception network for impending breathlessness.
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Faull et al. (2016) studied Healthy volunteers (n=18). Conditioned anticipation and application of inspiratory resistive loading vs. Anticipation of no loading / baseline was evaluated on BOLD signal changes in the periaqueductal gray (PAG) subdivisions (p=0.021). Anticipation of resistive breathing activated the ventrolateral periaqueductal gray, while the resistive breathing challenge itself was associated with activity in the lateral periaqueductal gray.
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