Oxytocin regulates TN-GnRH3 circuit maturation and mate preference through C1q-dependent synaptic mechanisms

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This study investigates the role of oxytocin in the neural circuitry governing social behavior, specifically focusing on female mate preference in medaka fish. The researchers demonstrate that oxytocin signaling is essential for the proper maturation of TN-GnRH3 circuits by regulating C1q-dependent synaptic refinement mediated by microglia. Disruption of this pathway leads to impaired synaptic pruning, altered microglial properties, and functional deficits in neuronal firing responses to visual stimuli. The paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

Oxytocin is a key regulator of social behavior, yet how it shapes the neural circuits underlying these behaviors remains unclear. Here, we show that oxytocin signaling is required for the proper maturation of terminal nerve gonadotropin-releasing hormone 3 (TN-GnRH3) circuits that regulate female mate preference in medaka. Disruption of oxytocin signaling reduced expression of the complement component C1q, altered microglial properties, and increased TN-GnRH3 innervation in the optic tectum and dorsolateral telencephalon, suggesting impaired synaptic refinement. In addition, TN-GnRH3 neurons in mutants exhibited disrupted clustering and failed to increase firing frequency in response to visual stimulation, indicating functional deficits. Furthermore, c1qb mutants phenocopied the behavioral and neuronal abnormalities observed in oxytocin signaling–deficient mutants. Together, our findings suggest that oxytocin signaling links microglia-associated synaptic refinement to neural circuit maturation, thereby revealing a previously unrecognized role for oxytocin in shaping social behavior.
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Abstract Oxytocin is a key regulator of social behavior, yet how it shapes the neural circuits underlying these behaviors remains unclear. Here, we show that oxytocin signaling is required for the proper maturation of terminal nerve gonadotropin-releasing hormone 3 (TN-GnRH3) circuits that regulate female mate preference in medaka. Disruption of oxytocin signaling reduced expression of the complement component C1q, altered microglial properties, and increased TN-GnRH3 innervation in the optic tectum and dorsolateral telencephalon, suggesting impaired synaptic refinement. In addition, TN-GnRH3 neurons in mutants exhibited disrupted clustering and failed to increase firing frequency in response to visual stimulation, indicating functional deficits. Furthermore, c1qb mutants phenocopied the behavioral and neuronal abnormalities observed in oxytocin signaling–deficient mutants. Together, our findings suggest that oxytocin signaling links microglia-associated synaptic refinement to neural circuit maturation, thereby revealing a previously unrecognized role for oxytocin in shaping social behavior. Competing Interest Statement The authors have declared no competing interest.

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europepmc
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