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Corbin, J. G.

Publications and source records attributed to Corbin, J. G..

3 recordsLinked to original sources

Hardwired to attack: Transcriptionally defined amygdala subpopulations play distinct roles in innate social behaviors.

Social behaviors are innate and supported by dedicated neural circuits, but it remains unclear whether these circuits are developmentally hardwired or established through social experience. Here, we revealed distinct response patterns and functions in social behavior of medial amygdala (MeA) cells originating from two embryonically parcellated developmental lineages. MeA cells in male mice that express the transcription factor Foxp2 (MeAFoxp2) are specialized for processing male conspecific cues even before puberty and are essential for adult inter-male aggression. In contrast, MeA cells derived from the Dbx1-lineage (MeADbx1) respond broadly to social cues and are non-essential for male aggression. Furthermore, MeAFoxp2 and MeADbx1 cells show differential anatomical and functional connectivity. Altogether, our results support a developmentally hardwired aggression circuit at the level of the MeA and we propose a lineage-based circuit organization by which a cells embryonic transcription factor profile determines its social information representation and behavior relevance during adulthood. HighlightsO_LIMeAFoxp2 cells in male mice show highly specific responses to male conspecific cues and during attack while MeADbx1 cells are broadly tuned to social cues. C_LIO_LIThe male-specific response of MeAFoxp2 cells is present in naive adult males and adult social experience refines the response by increasing its trial-to-trial reliability and temporal precision. C_LIO_LIMeAFoxp2 cells show biased response to males even before puberty. C_LIO_LIActivation of MeAFoxp2, but not MeADbx1, cells promote inter-male aggression in naive male mice. C_LIO_LIInactivation of MeAFoxp2, but not MeADbx1, cells suppresses inter-male aggression. C_LIO_LIMeAFoxp2 and MeADbx1 cells show differential connectivity at both the input and output levels. C_LI

neuroscience↗

Molecular diversity and connectivity of accessory olfactory system neurons

Olfaction is the primary sensory modality by which most vertebrate species interpret environmental cues for appropriate behavioral outputs. The olfactory system is subdivided into main (MOS) and accessory (AOS) components which process volatile and non-volatile cues. While much is known regarding the molecular diversity of neurons that comprise the MOS, less is known about the AOS. Here, focusing on the AOS which is largely comprised of the peripheral vomeronasal organ (VNO), the accessory olfactory bulb (AOB) and the medial subnucleus of the amygdala (MeA), we studied the molecular diversity and neuronal subtype connectivity of this interconnected circuit. We show that populations of neurons of the AOS can be molecularly subdivided based on their current or prior expression of the transcription factors Foxp2 or Dbx1. We show that the majority of AOB neurons that project directly to the MeA are of the Foxp2-lineage. Using single cell patch clamp electrophysiology, we further reveal that in addition to sex-specific differences across lineage, the relative contributions of excitatory and inhibitory inputs to MeA Foxp2-lineage neurons differ between sexes. Together, this work uncovers a novel molecular diversity of AOS neurons and lineage- and sex-differences in patterns of connectivity.

neuroscience↗

Mouse paralaminar amygdala excitatory neurons migrate and mature during adolescence

The human amygdala paralaminar nucleus (PL) contains immature excitatory neurons that exhibit protracted maturation into adolescence; however, whether a similar population exists in mice is unknown. We discovered a previously undescribed region with immature doublecortin (Dcx)+ excitatory neurons adjacent to the mouse basolateral amygdala, and similar to humans, these neurons mature during adolescence and are distinct from adjacent intercalated cells. Despite their immature features, these neurons are born during embryogenesis, populate the mouse PL prior to birth, and remain in an immature stage of development until adolescence. In the postnatal brain, a subpopulation of these excitatory neurons surprisingly migrate into the neighboring endopiriform cortex, peaking between P21-P28. In humans, cells with the molecular identity of mouse PL neurons populate the PL as early as 18 gestational weeks, and also exhibit migratory morphology into adolescence (13 years). The finding of a similar region in both mice and humans suggests a potentially conserved cellular mechanism for neuron recruitment and migration during adolescence, a key time period for amygdala circuit maturation and behavioral changes.

neuroscience↗