Temperature compensation in a small rhythmic circuit

Temperature affects the conductances and kinetics of the ionic channels that underlie neuronal activity. Each membrane conductance has a different characteristic temperature sensitivity, which raises the question of how neurons and neuronal circuits can operate robustly over wide temperature ranges....

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Main Authors: Leandro M Alonso, Eve Marder
Format: Article
Language:English
Published: eLife Sciences Publications Ltd 2020-06-01
Series:eLife
Subjects:
Q10
Online Access:https://elifesciences.org/articles/55470
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spelling doaj-b4689a9f6c974b8ebf1a227879b9ea292021-05-05T21:10:02ZengeLife Sciences Publications LtdeLife2050-084X2020-06-01910.7554/eLife.55470Temperature compensation in a small rhythmic circuitLeandro M Alonso0https://orcid.org/0000-0001-8211-2855Eve Marder1https://orcid.org/0000-0001-9632-5448Volen Center and Biology Department, Brandeis University, Waltham, United StatesVolen Center and Biology Department, Brandeis University, Waltham, United StatesTemperature affects the conductances and kinetics of the ionic channels that underlie neuronal activity. Each membrane conductance has a different characteristic temperature sensitivity, which raises the question of how neurons and neuronal circuits can operate robustly over wide temperature ranges. To address this, we employed computational models of the pyloric network of crabs and lobsters. We produced multiple different models that exhibit a triphasic pyloric rhythm over a range of temperatures and explored the dynamics of their currents and how they change with temperature. Temperature can produce smooth changes in the relative contributions of the currents to neural activity so that neurons and networks undergo graceful transitions in the mechanisms that give rise to their activity patterns. Moreover, responses of the models to deletions of a current can be different at high and low temperatures, indicating that even a well-defined genetic or pharmacological manipulation may produce qualitatively distinct effects depending on the temperature.https://elifesciences.org/articles/55470neuronal oscillatorsion channelstemperatureQ10
collection DOAJ
language English
format Article
sources DOAJ
author Leandro M Alonso
Eve Marder
spellingShingle Leandro M Alonso
Eve Marder
Temperature compensation in a small rhythmic circuit
eLife
neuronal oscillators
ion channels
temperature
Q10
author_facet Leandro M Alonso
Eve Marder
author_sort Leandro M Alonso
title Temperature compensation in a small rhythmic circuit
title_short Temperature compensation in a small rhythmic circuit
title_full Temperature compensation in a small rhythmic circuit
title_fullStr Temperature compensation in a small rhythmic circuit
title_full_unstemmed Temperature compensation in a small rhythmic circuit
title_sort temperature compensation in a small rhythmic circuit
publisher eLife Sciences Publications Ltd
series eLife
issn 2050-084X
publishDate 2020-06-01
description Temperature affects the conductances and kinetics of the ionic channels that underlie neuronal activity. Each membrane conductance has a different characteristic temperature sensitivity, which raises the question of how neurons and neuronal circuits can operate robustly over wide temperature ranges. To address this, we employed computational models of the pyloric network of crabs and lobsters. We produced multiple different models that exhibit a triphasic pyloric rhythm over a range of temperatures and explored the dynamics of their currents and how they change with temperature. Temperature can produce smooth changes in the relative contributions of the currents to neural activity so that neurons and networks undergo graceful transitions in the mechanisms that give rise to their activity patterns. Moreover, responses of the models to deletions of a current can be different at high and low temperatures, indicating that even a well-defined genetic or pharmacological manipulation may produce qualitatively distinct effects depending on the temperature.
topic neuronal oscillators
ion channels
temperature
Q10
url https://elifesciences.org/articles/55470
work_keys_str_mv AT leandromalonso temperaturecompensationinasmallrhythmiccircuit
AT evemarder temperaturecompensationinasmallrhythmiccircuit
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