Glomus cell heterogeneity underpins distinct carotid body chemoreflex pathways: implications for hypertension
Cardiovascular Research

Abstract
The carotid body (CB) is a multimodal chemosensory organ, yet how it encodes differential external stimuli to drive distinct peripheral chemoreflex responses remains unclear. This study aimed to define differences in intrinsic cellular mechanisms underlying CB signalling and to investigate how these processes are altered in pre-hypertension.
We used potassium cyanide (KCN) as a hypoxia mimetic to activate the CB.
K+ channels implicated in hypoxia sensing were pharmacologically inhibited, with TWIK-related acid-sensitive K+ (TASK) channels targeted using Ba2+ or ML365 and BK/Kv channels targeted using TEA + 4AP or iberiotoxin. We combined
We identify, for the first time, distinct glomus cell subpopulations defined by their K+ channel expression that differentially contribute to CB signalling patterns and distinct chemoreflex pathways. These findings provide mechanistic support for the recently proposed ‘ribbon cable’ hypothesis, whereby discrete glomus cell populations couple to specific chemoreflex outputs. These findings offer new insight into CB signalling complexity and its role in autonomic dysfunction during the early stages of hypertension.
Contributors

Xin Shen
Author

Audrys G Pauza
Author

Olivia M S Gold
Author

Igor S A Felippe
Author

Pratik Thakkar
Author
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