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April 18, 2026Science6 citations

An opposing molecular gradient axis underlies primate cortical organization

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ZHZ. HuangQYQianqian YangSLShenglong Li

Key Points

  • The research aims to understand how molecular gradients influence cellular organization and connectivity in primate brains.
  • Utilized spatial transcriptomics and magnetic resonance imaging.
  • Conducted retrograde labeling in marmosets.
  • Analyzed gene expression patterns in relation to thalamocortical projections.
  • Identified two opposing molecular gradients originating from allocortices and primary sensory cortices.
  • Noted similarities in auditory cortices between marmosets and humans, differing from macaques.
  • Demonstrated that gradient intersections show similar features in the default mode network and frontal pole across species.

Abstract

The principles organizing cellular diversity and connectivity in primate brains remain elusive. By integrating spatial transcriptomics, magnetic resonance imaging, and retrograde labeling in marmosets, we identified two opposing molecular gradients that undergo postnatal refinement, emanating from allocortices and primary sensory cortices, respectively. These gradients reconcile conflicting hypotheses on cortical expansion and characterize distinct cortical areas. Cortical gradients align with thalamic gene expression and thalamocortical projection patterns. At gradient intersections, the default mode network and frontal pole exhibited similar molecular features in humans and marmosets, despite species-specific differences in functional connectivity. Comparative analysis of gradient-related genes showed that marmoset and human auditory cortices are highly similar but differ from those of macaques, potentially reflecting complex vocalization. Together, these opposing gradients represent a fundamental organizing principle of the primate cortex.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/69e3213840886becb65406e6https://doi.org/10.1126/science.aea2673
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