Key result
Blockade of Ca2+-dependent vesicular release mechanisms in NTS astrocytes by virally driven expression of dnSNARE increased baroreflex sensitivity by 70% in conscious rats.
Why the study?
Although the neurophysiology of autonomic cardiorespiratory reflexes is well understood, the mechanisms and functional significance of autonomic circuit modulation by glial cells remain largely unknown.
Effect estimate: 70% increase
p-value: p=<0.001
Astrocytes in the nucleus of the solitary tract actively modulate baroreflex sensitivity via Ca2+-dependent release of ATP acting on P2Y1 receptors, suggesting a mechanism for autonomic dysfunction in pathological conditions.
NTS astrocytic ATP signaling may modulate baroreflex gain; leaves open therapeutic targeting in human autonomic disorders.
Maintenance of cardiorespiratory homeostasis depends on autonomic reflexes controlled by neuronal circuits of the brainstem. The neurophysiology and neuroanatomy of these reflex pathways are well understood, however, the mechanisms and functional significance of autonomic circuit modulation by glial cells remain largely unknown. In the experiments conducted in male laboratory rats we show that astrocytes of the nucleus of the solitary tract (NTS), the brain area that receives and integrates sensory information from the heart and blood vessels, respond to incoming afferent inputs with [Ca 2+ ] i elevations. Astroglial [Ca 2+ ] i responses are triggered by transmitters released by vagal afferents, glutamate acting at AMPA receptors and 5-HT acting at 5-HT 2A receptors. In conscious freely behaving animals blockade of Ca 2+ -dependent vesicular release mechanisms in NTS astrocytes by virally driven expression of a dominant-negative SNARE protein (dnSNARE) increased baroreflex sensitivity by 70% ( p < 0.001). This effect of compromised astroglial function was specific to the NTS as expression of dnSNARE in astrocytes of the ventrolateral brainstem had no effect. ATP is considered the principle gliotransmitter and is released by vesicular mechanisms blocked by dnSNARE expression. Consistent with this hypothesis, in anesthetized rats, pharmacological activation of P2Y 1 purinoceptors in the NTS decreased baroreflex gain by 40% ( p = 0.031), whereas blockade of P2Y 1 receptors increased baroreflex gain by 57% ( p = 0.018). These results suggest that glutamate and 5-HT, released by NTS afferent terminals, trigger Ca 2+ -dependent astroglial release of ATP to modulate baroreflex sensitivity via P2Y 1 receptors. These data add to the growing body of evidence supporting an active role of astrocytes in brain information processing. SIGNIFICANCE STATEMENT Cardiorespiratory reflexes maintain autonomic balance and ensure cardiovascular health. Impaired baroreflex may contribute to the development of cardiovascular disease and serves as a robust predictor of cardiovascular and all-cause mortality. The data obtained in this study suggest that astrocytes are integral components of the brainstem mechanisms that process afferent information and modulate baroreflex sensitivity via the release of ATP. Any condition associated with higher levels of “ambient” ATP in the NTS would be expected to decrease baroreflex gain by the mechanism described here. As ATP is the primary signaling molecule of glial cells (astrocytes, microglia), responding to metabolic stress and inflammatory stimuli, our study suggests a plausible mechanism of how the central component of the baroreflex is affected in pathological conditions.
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Mastitskaya et al. (2020) studied Healthy (laboratory rats). dnSNARE expression in NTS astrocytes (blockade of vesicular release) vs. Control transgene or baseline was evaluated on Baroreflex sensitivity (70% increase, p=<0.001). Blockade of Ca2+-dependent vesicular release mechanisms in NTS astrocytes by virally driven expression of dnSNARE increased baroreflex sensitivity by 70% in conscious rats.
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