Intrinsic Connections in the macaque inferior temporal cortex

I Fujita1, T Fujita

  • 1Precursory Research for Embryonic Science and Technology (PRESTO), Research Development Corporation of Japan, Japan. ifujita@cogni.med.osaka-u.ac.jp

Insights

Researchers studied brain connections in Japanese macaques, revealing patchy axon patterns in the inferior temporal cortex (area TE). These patterns may explain the functional modularity and shared stimulus selectivity within brain columns.

Area of Science:

  • Neuroscience
  • Primate Brain Anatomy
  • Cortical Connectivity

Background:

  • The inferior temporal cortex (area TE) in primates is crucial for visual processing.
  • A functional columnar organization has been previously demonstrated in the dorsal part of area TE.
  • Understanding intrinsic connections is key to deciphering cortical processing modules.

Purpose of the Study:

  • To investigate the intrinsic connections within the dorsal part of the inferior temporal cortex (area TE) in Japanese macaques.
  • To analyze the laminar and tangential organization of axonal projections.
  • To correlate the observed anatomical patterns with functional modularity.

Main Methods:

  • Extracellular injections of biocytin in the dorsal area TE of Japanese macaques.
  • Analysis of both coronal sections for interlaminar connections and tangential sections for intralaminar connections.
  • Microinjections were performed at various depths to trace axonal and cell body distributions.

Main Results:

  • Axons and cell bodies exhibited a columnar appearance above and below injection sites.
  • Layer 3 axons projected towards white matter, with collaterals in layer 5; ascending axons from deeper layers to layer 3 were observed.
  • Horizontal axons in layers 2 and 3 formed patchy terminal fields (0.5 +/- 0.1 mm) spanning multiple layers, distributed anisotropically.
  • Similar patchy organization was found in area TEO, with smaller patch sizes.
  • Patch size and spacing in area TE correlated with columns of similar stimulus selectivity.

Conclusions:

  • Intrinsic horizontal axons in area TE and TEO form patchy arborizations, consistent with other cortical areas.
  • The observed patchy structure in area TE aligns with functional modularity and shared stimulus selectivity within columns.
  • Vertical connections and cylindrical horizontal axon patches likely contribute to columnar functional organization.

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