Circuit variability interacts with excitatory-inhibitory diversity of interneurons to regulate network encoding capacity
Abstract Local interneurons (LNs) in the Drosophila olfactory system exhibit neuronal diversity and variability, yet it is still unknown how these features impact information encoding capacity and reliability in a complex LN network. We employed two strategies to construct a diverse excitatory-inhib...
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doaj-33348a78ba9945fb8d8278dfcddebbcb2020-12-08T05:29:37ZengNature Publishing GroupScientific Reports2045-23222018-05-018111510.1038/s41598-018-26286-8Circuit variability interacts with excitatory-inhibitory diversity of interneurons to regulate network encoding capacityKuo-Ting Tsai0Chin-Kun Hu1Kuan-Wei Li2Wen-Liang Hwang3Ya-Hui Chou4Institute of Cellular and Organismic Biology, Academia SinicaInstitute of Physics, Academia SinicaInstitute of Cellular and Organismic Biology, Academia SinicaNeuroscience Program of Academia Sinica, Academia SinicaInstitute of Cellular and Organismic Biology, Academia SinicaAbstract Local interneurons (LNs) in the Drosophila olfactory system exhibit neuronal diversity and variability, yet it is still unknown how these features impact information encoding capacity and reliability in a complex LN network. We employed two strategies to construct a diverse excitatory-inhibitory neural network beginning with a ring network structure and then introduced distinct types of inhibitory interneurons and circuit variability to the simulated network. The continuity of activity within the node ensemble (oscillation pattern) was used as a readout to describe the temporal dynamics of network activity. We found that inhibitory interneurons enhance the encoding capacity by protecting the network from extremely short activation periods when the network wiring complexity is very high. In addition, distinct types of interneurons have differential effects on encoding capacity and reliability. Circuit variability may enhance the encoding reliability, with or without compromising encoding capacity. Therefore, we have described how circuit variability of interneurons may interact with excitatory-inhibitory diversity to enhance the encoding capacity and distinguishability of neural networks. In this work, we evaluate the effects of different types and degrees of connection diversity on a ring model, which may simulate interneuron networks in the Drosophila olfactory system or other biological systems.https://doi.org/10.1038/s41598-018-26286-8 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Kuo-Ting Tsai Chin-Kun Hu Kuan-Wei Li Wen-Liang Hwang Ya-Hui Chou |
spellingShingle |
Kuo-Ting Tsai Chin-Kun Hu Kuan-Wei Li Wen-Liang Hwang Ya-Hui Chou Circuit variability interacts with excitatory-inhibitory diversity of interneurons to regulate network encoding capacity Scientific Reports |
author_facet |
Kuo-Ting Tsai Chin-Kun Hu Kuan-Wei Li Wen-Liang Hwang Ya-Hui Chou |
author_sort |
Kuo-Ting Tsai |
title |
Circuit variability interacts with excitatory-inhibitory diversity of interneurons to regulate network encoding capacity |
title_short |
Circuit variability interacts with excitatory-inhibitory diversity of interneurons to regulate network encoding capacity |
title_full |
Circuit variability interacts with excitatory-inhibitory diversity of interneurons to regulate network encoding capacity |
title_fullStr |
Circuit variability interacts with excitatory-inhibitory diversity of interneurons to regulate network encoding capacity |
title_full_unstemmed |
Circuit variability interacts with excitatory-inhibitory diversity of interneurons to regulate network encoding capacity |
title_sort |
circuit variability interacts with excitatory-inhibitory diversity of interneurons to regulate network encoding capacity |
publisher |
Nature Publishing Group |
series |
Scientific Reports |
issn |
2045-2322 |
publishDate |
2018-05-01 |
description |
Abstract Local interneurons (LNs) in the Drosophila olfactory system exhibit neuronal diversity and variability, yet it is still unknown how these features impact information encoding capacity and reliability in a complex LN network. We employed two strategies to construct a diverse excitatory-inhibitory neural network beginning with a ring network structure and then introduced distinct types of inhibitory interneurons and circuit variability to the simulated network. The continuity of activity within the node ensemble (oscillation pattern) was used as a readout to describe the temporal dynamics of network activity. We found that inhibitory interneurons enhance the encoding capacity by protecting the network from extremely short activation periods when the network wiring complexity is very high. In addition, distinct types of interneurons have differential effects on encoding capacity and reliability. Circuit variability may enhance the encoding reliability, with or without compromising encoding capacity. Therefore, we have described how circuit variability of interneurons may interact with excitatory-inhibitory diversity to enhance the encoding capacity and distinguishability of neural networks. In this work, we evaluate the effects of different types and degrees of connection diversity on a ring model, which may simulate interneuron networks in the Drosophila olfactory system or other biological systems. |
url |
https://doi.org/10.1038/s41598-018-26286-8 |
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