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GABAergic interneuron subtypes differentially regulate noise correlations that are critical for visual orientation
Guangwei Xu1, Xiaoming Liu1, Jiachen Liu2
1Vision Research Laboratory, Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei 230027, P.R. China.
Cell Reports
|January 15, 2026
Summary
Neural inhibitory circuits regulate brain noise correlations, impacting visual perception. Specific neuron subtypes, like parvalbumin-positive and somatostatin-positive, modulate these correlations, influencing sensory processing and offering therapeutic insights.
Area of Science:
- Neuroscience
- Sensory Processing
- Inhibitory Circuits
Background:
- Noise correlations, or synchronized neural firing, are crucial for sensory processing but their regulation is poorly understood.
- Understanding the role of inhibitory neurons in modulating these correlations is key to deciphering neural circuit function.
Purpose of the Study:
- To investigate how distinct inhibitory neuron subtypes in the visual cortex (V1) regulate neural noise correlations.
- To determine the impact of modulating these inhibitory subtypes on visual encoding and perception.
Main Methods:
- Optogenetics and electrophysiology were used in mice to selectively suppress parvalbumin-positive (PV+), somatostatin-positive (SOM+), and vasoactive intestinal peptide-positive (VIP+) inhibitory neurons.
- Noise correlations and neuronal discriminability were measured.
- A linear regression model integrated these neural measures to predict behavioral performance.
Main Results:
- Suppression of PV+ or SOM+ neurons increased noise correlations, while VIP+ neuron suppression decreased them, highlighting distinct inhibitory roles.
- Changes in noise correlations correlated with altered orientation-discrimination performance.
- The model successfully predicted behavioral performance, confirming the synergistic effect of noise correlations and discriminability.
Conclusions:
- Inhibitory neuron subtypes differentially regulate noise correlations in V1.
- Noise correlations and neuronal discriminability jointly determine visual perception.
- These findings offer insights into sensory processing disorders and potential therapeutic targets.
Keywords:
CP: Cell biologyCP: NeuroscienceGABAergic neuronnoise correlationparvalbumin-positive interneuronssomatostatin neuronsvasoactive intestinal peptide-expressing neuronsvisual cortexvisual function
