Yuko Maejima, Manabu Suzuki, Wataru Matsuoka, Yoichi Ueta, Kenju Shimomura
Oxytocin (Oxt) is a neuropeptide critical for higher brain functions, with its physiological functions dependent on the activity of Oxt-producing neurons in the paraventricular nucleus (PVN). However, the postnatal maturation process of these neurons remains poorly understood, particularly whether it involves a uniform trajectory or a dynamic functional reorganization. Here, we investigated the electrophysiological maturation of PVN Oxt neurons in rats using a multifaceted approach including electrophysiology, principal component analysis (PCA), and f-I curve fitting. Our analysis revealed a highly heterogeneous maturation timeline for individual electrophysiological parameters. While action potential amplitude and half-width matured relatively early, the resting membrane potential (RMP) and firing threshold showed a much more protracted maturation. To comprehensively capture this, we applied PCA and found that the first principal component (PC1) exhibited a striking inverted U-shaped pattern over time. This pattern suggests a dynamic transition through three distinct functional states: an initial immature state, an intermediate transitional state, and a later mature state. Furthermore, f-I curve fitting provided mechanistic insights, identifying a "high-gain" state around postnatal Day 7, characterized by high firing threshold (Ith) and gain (k). This period temporally overlaps with peak Oxt receptor expression, hinting at a critical window for experience-dependent circuit refinement. Our findings provide a new perspective on neuronal maturation as a complex process of dynamic functional reorganization. The identified "high-gain" state may represent a critical period for Oxt system development, offering a crucial foundation for understanding neurodevelopmental disorders and developing targeted early interventions.