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Nonspecific block of voltage‐gated potassium channels has greater effect on distal schaffer collaterals than proximal schaffer collaterals during periods of high activity

Previous studies established different responses between proximal and distal portions of Schaffer collateral axons during high‐frequency and burst stimulation, with distal axons demonstrating biphasic changes in excitability (hyperexcitability followed by depression), but proximal axons showing only...

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Autores principales: Owen, Benjamin, Reddy, Rishi, Grover, Lawrence M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5532488/
https://www.ncbi.nlm.nih.gov/pubmed/28747510
http://dx.doi.org/10.14814/phy2.13354
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author Owen, Benjamin
Reddy, Rishi
Grover, Lawrence M.
author_facet Owen, Benjamin
Reddy, Rishi
Grover, Lawrence M.
author_sort Owen, Benjamin
collection PubMed
description Previous studies established different responses between proximal and distal portions of Schaffer collateral axons during high‐frequency and burst stimulation, with distal axons demonstrating biphasic changes in excitability (hyperexcitability followed by depression), but proximal axons showing only monophasic depression. Voltage‐dependent potassium (K(V)) channels are important determinants of axonal excitability, and block of K(V) channels can promote axon hyperexcitability. We therefore hypothesized that block of K(V) channels should lead to biphasic response changes in proximal Schaffer collaterals, like those seen in distal Schaffer collaterals. To test this hypothesis, we made extracellular recordings of distal Schaffer collateral responses in stratum radiatum of hippocampal area CA1 and proximal Schaffer collateral responses in stratum pyramidale of area CA3 during high‐frequency stimulation (HFS) at 100 Hz and burst stimulation at 200 msec intervals (5 Hz or theta frequency). We then applied a nonselective K(V) channel blocker, tetraethlylammonium (TEA, 10 mmol/L) or 4‐aminopyridine (4‐AP, 100 μmol/L), and assessed effects on Schaffer collateral responses. Surprisingly, block of K(V) channels had little or no effect on proximal Schaffer collateral responses during high‐frequency or burst stimulation. In contrast, K(V) channel blockade caused more rapid depression of distal Schaffer collateral responses during both high‐frequency and burst stimulation. These findings indicate that K(V) channels are important for maintaining distal, but not proximal, Schaffer collateral excitability during period of sustained high activity. Differential sensitivity of distal versus proximal Schaffer collaterals to K(V) channel block may reflect differences in channel density, diversity, or subcellular localization.
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spelling pubmed-55324882017-08-03 Nonspecific block of voltage‐gated potassium channels has greater effect on distal schaffer collaterals than proximal schaffer collaterals during periods of high activity Owen, Benjamin Reddy, Rishi Grover, Lawrence M. Physiol Rep Original Research Previous studies established different responses between proximal and distal portions of Schaffer collateral axons during high‐frequency and burst stimulation, with distal axons demonstrating biphasic changes in excitability (hyperexcitability followed by depression), but proximal axons showing only monophasic depression. Voltage‐dependent potassium (K(V)) channels are important determinants of axonal excitability, and block of K(V) channels can promote axon hyperexcitability. We therefore hypothesized that block of K(V) channels should lead to biphasic response changes in proximal Schaffer collaterals, like those seen in distal Schaffer collaterals. To test this hypothesis, we made extracellular recordings of distal Schaffer collateral responses in stratum radiatum of hippocampal area CA1 and proximal Schaffer collateral responses in stratum pyramidale of area CA3 during high‐frequency stimulation (HFS) at 100 Hz and burst stimulation at 200 msec intervals (5 Hz or theta frequency). We then applied a nonselective K(V) channel blocker, tetraethlylammonium (TEA, 10 mmol/L) or 4‐aminopyridine (4‐AP, 100 μmol/L), and assessed effects on Schaffer collateral responses. Surprisingly, block of K(V) channels had little or no effect on proximal Schaffer collateral responses during high‐frequency or burst stimulation. In contrast, K(V) channel blockade caused more rapid depression of distal Schaffer collateral responses during both high‐frequency and burst stimulation. These findings indicate that K(V) channels are important for maintaining distal, but not proximal, Schaffer collateral excitability during period of sustained high activity. Differential sensitivity of distal versus proximal Schaffer collaterals to K(V) channel block may reflect differences in channel density, diversity, or subcellular localization. John Wiley and Sons Inc. 2017-07-26 /pmc/articles/PMC5532488/ /pubmed/28747510 http://dx.doi.org/10.14814/phy2.13354 Text en © 2017 The Authors. Physiological Reports published by Wiley Periodicals, Inc. on behalf of The Physiological Society and the American Physiological Society This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Research
Owen, Benjamin
Reddy, Rishi
Grover, Lawrence M.
Nonspecific block of voltage‐gated potassium channels has greater effect on distal schaffer collaterals than proximal schaffer collaterals during periods of high activity
title Nonspecific block of voltage‐gated potassium channels has greater effect on distal schaffer collaterals than proximal schaffer collaterals during periods of high activity
title_full Nonspecific block of voltage‐gated potassium channels has greater effect on distal schaffer collaterals than proximal schaffer collaterals during periods of high activity
title_fullStr Nonspecific block of voltage‐gated potassium channels has greater effect on distal schaffer collaterals than proximal schaffer collaterals during periods of high activity
title_full_unstemmed Nonspecific block of voltage‐gated potassium channels has greater effect on distal schaffer collaterals than proximal schaffer collaterals during periods of high activity
title_short Nonspecific block of voltage‐gated potassium channels has greater effect on distal schaffer collaterals than proximal schaffer collaterals during periods of high activity
title_sort nonspecific block of voltage‐gated potassium channels has greater effect on distal schaffer collaterals than proximal schaffer collaterals during periods of high activity
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5532488/
https://www.ncbi.nlm.nih.gov/pubmed/28747510
http://dx.doi.org/10.14814/phy2.13354
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