bioRxiv · 10.1101/2020.11.08.371179
Augmenting Flexibility: Mutual Inhibition Between Inhibitory Neurons Expands Functional Diversity
Abstract
Rapid, flexible response to an ever-changing environment is critical for an organisms survival. Recently, multicellular recordings have shown that this rapid, flexible switching between activity patterns is present in neural microcircuits. However, the underlying neural mechanism is not clear. Strikingly, we show in a neural circuit model that mutually inhibitory connections are crucial for rapid and flexible switching between distinct functions without synaptic plasticity. Here, we develop a theoretical framework to explain how inhibitory recurrent circuits give rise to this flexibility and show that mutual inhibition doubles the number of cusp bifurcations in small neural circuits. As a concrete example, we study a commonly observed class of functional motifs we call Coupled Recurrent Inhibitory and Recurrent Excitatory Loops (CRIRELs). These CRIRELs have the advantage of being both multifunctional and controllable, performing a plethora of unique functions. Finally, we demonstrate how mutual inhibition maximizes storage capacity for larger networks.
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Liu, B., White, A. J., Lo, C.-C.. 2020-11-09. Augmenting Flexibility: Mutual Inhibition Between Inhibitory Neurons Expands Functional Diversity. https://doi.org/10.1101/2020.11.08.371179
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