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Zarghani-Shiraz, A.

Publications and source records attributed to Zarghani-Shiraz, A..

2 recordsLinked to original sources

Emergence of Functional Heart-Brain Circuits in a Vertebrate

The early formation of sensorimotor circuits is essential for survival. While the development and function of exteroceptive circuits and their associated motor pathways are well characterized, far less is known about the circuits that convey viscerosensory inputs to the brain and transmit visceromotor commands from the central nervous system to internal organs. Technical limitations, such as the in utero development of viscerosensory and visceromotor circuits and the invasiveness of procedures required to access them, have hindered studies of their functional development in mammals. Using larval zebrafish, which are genetically accessible and optically transparent, we tracked, in vivo, how cardiosensory and cardiomotor neural circuits assemble and begin to function. We uncovered a staged program. First, a minimal efferent circuit suffices for heart-rate control: direct brain-to-heart vagal motor innervation is required, intracardiac neurons are not, and heart rate is governed exclusively by the motor vagus nerve. Within the hindbrain, we functionally localize a cholinergic vagal premotor locus that engages this early efferent control. Second, sympathetic innervation arrives and enhances the dynamics and amplitude of cardiac responses, as neurons in the most anterior sympathetic ganglia acquire the ability to drive cardiac acceleration. These neurons exhibit proportional, integral, and derivative-like relationships to heart rate, consistent with controller motifs that shape gain and dynamics. Third, vagal sensory neurons innervate the heart. Distinct subsets increase activity when heart rate falls or rises, and across spontaneous fluctuations, responses to aversive stimuli, and optogenetically evoked cardiac perturbations, their dynamics are captured by a single canonical temporal kernel with neuron-specific phase offsets, supporting a population code for heart rate. This temporally segregated maturation isolates three experimentally tractable regimes: unidirectional brain-to-heart communication, dual efferent control, and closed-loop control after sensory feedback engages, providing a framework for mechanistic dissection of organism-wide heart-brain circuits.

neuroscience↗

Cardiac interoception impacts behavior and brain-wide neuronal dynamics

We sought to explore the question as to whether an animals behavior can be modified by internal physiological changes. We focused on the optomotor response, in which an animal moves in response to visual gratings, because it is quantitative, robust, and evolutionarily conserved. Using larval zebrafish, we demonstrate that engagement in the optomotor response is inversely related to heart rate. We modulate heart rate by external threat, activation or blockade of the sympathetic nervous system, pharmacological blockade of the cardiac pacemaker channel, and direct optogenetic pacing of the heart, and find that the correlation persists through all perturbations. We find neurons in the primary sensory ganglia and several regions of the brain whose activity reflects changes in heart rate, some more active during bradycardia and some during tachycardia. Specifically, we show that the area postrema, known to be a center of cardiovascular integration, shows particularly strong encoding of heart rate, both following threat and during optogenetic cardiac pacing. We suggest that there may be neural mechanisms to assess heart rate changes over time, and that this interoceptive measurement is used to regulate other neural circuits and behavioral output.

neuroscience↗