4.4 Article

NaV1.9 current in muscle afferent neurons is enhanced by substances released during muscle activity

期刊

JOURNAL OF NEUROPHYSIOLOGY
卷 128, 期 4, 页码 739-750

出版社

AMER PHYSIOLOGICAL SOC
DOI: 10.1152/jn.00116.2022

关键词

ATP; bradykinin; exercise pressor reflex; norepinephrine; prostaglandin E2

资金

  1. Graduate Program Committee of the Kirksville College of Osteopathic Medicine, A.T. Still University of Health Sciences
  2. NIH [AR05976]

向作者/读者索取更多资源

During exercise, substances released during muscle contraction activate G-protein-coupled receptors (GPCRs) to increase neuronal activity and generate the exercise pressor reflex (EPR). The enhancement of NaV1.9 channel activity may be a mechanism by which GPCR activation leads to the generation of EPR.
Skeletal muscle contraction triggers the exercise pressor reflex (EPR) to regulate the cardiovascular system response to exercise. During muscle contraction, substances are released that generate action potential activity in group III and IV afferents that medi-ate the EPR. Some of these substances increase afferent activity via G-protein-coupled receptor (GPCR) activation, but the mech-anisms are incompletely understood. We were interested in determining if tetrodotoxin-resistant (TTX-R) voltage-dependent sodium channels (NaV) were involved and investigated the effect of a mixture of such compounds (bradykinin, prostaglandin, nor -epinephrine, and ATP, called muscle metabolites). Using whole cell patch-clamp electrophysiology, we show that the muscle metabolites significantly increased TTX-R NaV currents. The rise time of this enhancement averaged -2 min, which suggests the involvement of a diffusible second messenger pathway. The effect of muscle metabolites on the current-voltage relationship, channel activation and inactivation kinetics support NaV1.9 channels as the target for this enhancement. When applied individu-ally at the concentration used in the mixture, only prostaglandin and bradykinin significantly enhanced NaV current, but the sum of these enhancements was <1/3 that observed when the muscle metabolites were applied together. This suggests synergism between the activated GPCRs to enhance NaV1.9 current. When applied at a higher concentration, all four substances could enhance the current, which demonstrates that the GPCRs activated by each metabolite can enhance channel activity. The enhancement of NaV1.9 channel activity is a likely mechanism by which GPCR activation increases action potential activity in afferents generating the EPR.NEW & NOTEWORTHY G-protein-coupled receptor (GPCR) activation increases action potential activity in muscle afferents to produce the exercise pressor reflex (EPR), but the mechanisms are incompletely understood. We provide evidence that NaV1.9 current is synergistically enhanced by application of a mixture of metabolites potentially released during muscle contraction. The enhancement of NaV1.9 current is likely one mechanism by which GPCR activation generates the EPR and the inappropriate acti-vation of the EPR in patients with cardiovascular disease.

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