Vagal blood volume receptors compensate for haemorrhage and posture change.

Liu, Zhikai; Lu, Shan; Haskell, Isabela A; Schappe, Michael S; Josipović, Maša; Min, Soohong; Alabi, AbdulRasheed A; Chi, Jingyi et al. · Nature · 2026

basic_science · Level V

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Abstract

Cranial nerves densely innervate the heart and vasculature, with sensory neurons reporting on blood pressure, respiratory gases and tissue damage<sup>1</sup>. The roles of arterial baroreceptors in systemic physiology are well appreciated<sup>2</sup>, but the functions of vagal cardiac mechanoreceptors have been more difficult to parse, in part due to the closed-loop structure of the cardiovascular system. Here we use genetic tools in mice to identify a small group of neurons that are acutely sensitive to circulating blood volume and initiate a reflex that compensates for decreased filling of the heart in an upright posture and haemorrhage. Vagal PIEZO2 neurons form characteristic end-net endings in the heart, lower blood pressure in response to optogenetic stimulation and display blood-volume-dependent responses with every heartbeat that are time-locked to atrial and ventricular systole. Knockout of Piezo2 and/or ablation of PIEZO2 neurons in vagal ganglia eliminates this heartbeat-coupled nerve activity, causes orthostatic hypotension and compromises cardiovascular stability during trauma-induced blood loss. Together, these findings demonstrate that vagal mechanoreceptors monitor the cardiac cycle and initiate a blood-volume-dependent reflex that defends the constancy of circulation.

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