
Neuronal networks rely on a balance between the activity of excitatory and inhibitory neurons, each having distinct roles in regulating the flow of activity across brain circuits and signal processing. Recent work by Selten et al. uncovers how parvalbumin (PV)-expressing interneurons adjust their inhibitory inputs in response to activity changes, revealing a neuropeptide-based mechanism.
Neuronal Plasticity, Parvalbumins, Interneurons, Medical Neuroscience - Development and lifelong plasticity, Human Genetics - Development and lifelong plasticity, Neurology - Radboud University Medical Center, Animals, Humans
Neuronal Plasticity, Parvalbumins, Interneurons, Medical Neuroscience - Development and lifelong plasticity, Human Genetics - Development and lifelong plasticity, Neurology - Radboud University Medical Center, Animals, Humans
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