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Updated: Jun 26, 2026

A Pressure Injection System for Investigating the Neuropharmacology of Information Processing in Awake Behaving Macaque Monkey Cortex
Published on: March 14, 2016
A dopamine gradient controls access to distributed working memory in the large-scale monkey cortex
Sean Froudist-Walsh1, Daniel P Bliss1, Xingyu Ding1
1Center for Neural Science, New York University, New York, NY 10003, USA.
Dopamine modulates working memory by influencing receptor density across the cortex. This research reveals dopamine
Area of Science:
- Neuroscience
- Cognitive Science
- Computational Neuroscience
Background:
- Dopamine is essential for working memory.
- The precise mechanisms by which dopamine modulates large-scale cortical networks for working memory remain unclear.
Purpose of the Study:
- To investigate the macroscopic gradient of dopamine receptor density in the primate cortex.
- To model how dopamine influences working memory and cortical activity patterns.
- To understand dopamine's role in stimulus filtering and memory trace mechanisms.
Main Methods:
- Autoradiography to measure dopamine receptor density per neuron.
- Development of a connectome-based large-scale cortical model with multiple neuron types.
- Simulations to capture working memory dynamics and persistent activity.
Main Results:
- A macroscopic gradient of dopamine receptor density was observed along the macaque cortical hierarchy.
- The model replicated the inverted U-shaped relationship between dopamine levels and working memory capacity.
- Dopamine enhances inhibition via dendrite-targeting interneurons, crucial for filtering irrelevant stimuli.
- The model demonstrated how dopamine facilitates activity-silent memory traces and switches between memory states.
Conclusions:
- Dopamine receptor density exhibits a gradient across the cortical hierarchy, influencing working memory.
- Dopamine plays a critical role in cognitive control, including working memory and stimulus filtering.
- The study provides a cross-level understanding of dopamine's molecular and cellular effects on large-scale cortical dynamics for cognition.
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