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March 25, 2026eLife0 citationsOpen Access

Control of innate olfactory valence by segregated cortical amygdala circuits

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JHJ.R. HoweUniversity of IowaCCChung Lung ChanUniversity of California, San DiegoDLDonghyung LeeUniversity of California, San Diego

Key Points

  • The aim is to understand how distinct circuits within the posterolateral cortical amygdala (plCoA) control innate attraction and aversion to odors in mice.
  • Examined odor-evoked responses in the posterior and anterior domains of plCoA.
  • Used optogenetic stimulation to assess behavioral responses to odor.
  • Conducted single-cell and spatial RNA sequencing to identify molecular cell types in plCoA.
  • Analyzed the projection patterns of anterior and posterior neurons to target areas.
  • Optogenetic stimulation of anterior plCoA induced attraction, while stimulation of posterior plCoA elicited avoidance.
  • Sparse coding in plCoA for odor identity but distinct mechanisms for encoding valence.
  • Identified an anteroposterior gradient of glutamatergic neurons involved in innate behaviors.
  • Anterior neurons project to medial amygdala and posterior neurons to nucleus accumbens, supporting specific behaviors.

Abstract

Animals exhibit innate behaviors that are stereotyped responses to specific evolutionarily relevant stimuli in the absence of prior learning or experience. The posterolateral cortical amygdala (plCoA) mediates innate attraction and aversion to odor. Here, we sought to define the circuit features of plCoA that give rise to innate attraction and aversion to odor in mice. First, we examined odor-evoked responses in these areas and found sparse encoding of odor identity, but not valence. We next considered a topographic organization and found that optogenetic stimulation of the anterior and posterior domains of plCoA elicits avoidance and attraction, respectively, suggesting a functional axis for valence. Using single-cell and spatial RNA sequencing, we identified the molecular cell types in plCoA, revealing an anteroposterior gradient in glutamatergic neurons that are sufficient and partially necessary for behavior. Finally, we identified topographically organized projections, whereby anterior neurons preferentially project to medial amygdala, and posterior neurons preferentially project to nucleus accumbens, which are respectively sufficient and necessary for innate attraction and aversion. Together, these data support a model whereby distinct, topographically distributed plCoA populations direct innate olfactory responses by signaling to divergent valence-specific targets, linking upstream olfactory identity to downstream valence behaviors, through a population code.

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Cite This Study

Howe et al. (2026) studied this question.

synapsesocial.com/papers/69c37bf3b34aaaeb1a67ed2ehttps://doi.org/10.7554/elife.104677.3
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