Effects of Constitutive Depletion or Excess of Serotonin during Development on the Maturation of Prefrontal Monoaminergic Circuits
Marta C. F. Samina, Maria Stanciu, Thibault Merkelijn, Lidiane P. Garcia, Sabrina Hanswijk, Josefine S. Witteveen, Natalia Alenina, Michael Bader, Judith R. Homberg, Sharon M. KolkAbstract
Serotonin (5-hydroxytryptamine; 5-HT) is a critical neuromodulatory morphogen-like signal that governs prenatal cortical circuit assembly, and altered 5-HT signaling is implicated in a wide range of psychiatric disorders. Yet the structural consequences of lifelong 5-HT imbalance during the initial blueprinting phase remain poorly defined. Here, we used two genetic rat models representing the extremes of 5-HT homeostasis, Tph2 knockout (Tph2–/–; chronic depletion of 5-HT) and 5-HTT knockout (5-HTT–/–; chronic excess of 5-HT), to investigate sub-region-specific alterations in the embryonic medial prefrontal cortex (mPFC) and in prefrontal monoaminergic circuit maturation. Our results demonstrate that the developing mPFC is not uniformly vulnerable to 5-HT dysregulation. Instead, the prelimbic (PL) cortex emerged as a region of heightened sensitivity to low 5-HT levels, exhibiting localized hyperinnervation of catecholaminergic fibers and an increase in deep-layer Tbr1+ neurons. In contrast, within the infralimbic (IL) cortex, 5-HT deficiency induced a selective loss of reelin (Reln)-producing Cajal-Retzius (CR) cells, indicating a sub-region-specific disruption of the cortical scaffold. Transcriptomic analyses identified selective upregulation of the low-affinity monoamine transporter Slc29a4 and the monoamine oxidase A (Maoa) in 5-HTT–/– embryos, suggesting activation of compensatory extracellular 5-HT clearance pathways during embryogenesis. Together, these findings establish prenatal 5-HT levels as an essential determinant of afferent innervation and cortical scaffold integrity, and suggest that late-gestational developmental blueprinting errors may provide a neurodevelopmental substrate for later monoaminergic circuit dysfunction linked to social and cognitive phenotypes.