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Stable Network Homeostasis during Multi-Level Postnatal Maturation of the Mouse Tuberoinfundibular Dopamine-Prolactin Axis
The hypothalamus orchestrates endocrine function via specialized neuronal populations that interface with the pituitary gland. While postnatal circuit refinement is a hallmark of most neural systems, its contribution to hypothalamic neuroendocrine networks remains elusive. Among these populations, tuberoinfundibular dopamine (TIDA) neurons of the arcuate nucleus are the primary source of tonic inhibition of prolactin (Prl), a hormone essential for reproduction, parental physiology, and behavior. While Prl levels surge during early mouse postnatal life, it remains unclear whether the TIDA system is fully developed at birth or undergoes functional maturation. Here, we combined immunofluorescence, slice electrophysiology, and Ca2+ imaging to determine the development of TIDA neurons in mice during the first three postnatal weeks. Expression of dopaminergic markers was sparse at birth but rose substantially after the first week, followed by the onset of median eminence innervation by TIDA axons. Moreover, TIDA firing rate and oscillation frequency progressively increased with age, with action potential properties and rhythmicity maturing in tandem. Strikingly, local network parameters remained stable despite ongoing changes in single-cell properties, as did excitation/inhibition (E/I) balance. These neuronal adaptations paralleled a significant rise in circulating Prl levels. Together, our results delineate a multi-level developmental program within the TIDA system, encompassing molecular, electrophysiological, and endocrine changes. This maturation likely underlies the emergence of functional hypothalamic control over Prl secretion in early life and points to a coordinated controller-effector co-development. Our findings highlight a critical window during which TIDA neuron plasticity may influence long-term neuroendocrine function and reproductive behavior.
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