Skip to main content

Main menu

  • HOME
  • CONTENT
    • Early Release
    • Featured
    • Current Issue
    • Issue Archive
    • Blog
    • Collections
    • Podcast
  • TOPICS
    • Cognition and Behavior
    • Development
    • Disorders of the Nervous System
    • History, Teaching and Public Awareness
    • Integrative Systems
    • Neuronal Excitability
    • Novel Tools and Methods
    • Sensory and Motor Systems
  • ALERTS
  • FOR AUTHORS
  • ABOUT
    • Overview
    • Editorial Board
    • For the Media
    • Privacy Policy
    • Contact Us
    • Feedback
  • SUBMIT

User menu

Search

  • Advanced search
eNeuro
eNeuro

Advanced Search

 

  • HOME
  • CONTENT
    • Early Release
    • Featured
    • Current Issue
    • Issue Archive
    • Blog
    • Collections
    • Podcast
  • TOPICS
    • Cognition and Behavior
    • Development
    • Disorders of the Nervous System
    • History, Teaching and Public Awareness
    • Integrative Systems
    • Neuronal Excitability
    • Novel Tools and Methods
    • Sensory and Motor Systems
  • ALERTS
  • FOR AUTHORS
  • ABOUT
    • Overview
    • Editorial Board
    • For the Media
    • Privacy Policy
    • Contact Us
    • Feedback
  • SUBMIT
PreviousNext
Research ArticleNew Research, Neuronal Excitability

Cerebellar Stellate Cell Excitability Is Coordinated by Shifts in the Gating Behavior of Voltage-Gated Na+ and A-Type K+ Channels

Ryan P.D. Alexander, John Mitry, Vasu Sareen, Anmar Khadra and Derek Bowie
eNeuro 20 May 2019, 6 (3) ENEURO.0126-19.2019; https://doi.org/10.1523/ENEURO.0126-19.2019
Ryan P.D. Alexander
1Integrated Program in Neuroscience, McGill University, Montréal, Quebec H3A 2B4, Canada
2Department of Pharmacology and Therapeutics, McGill University, Montréal, Quebec H3G 1Y6, Canada
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
John Mitry
3Department of Physiology, McGill University, Montréal, Quebec H3G 1Y6, Canada
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Vasu Sareen
3Department of Physiology, McGill University, Montréal, Quebec H3G 1Y6, Canada
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Anmar Khadra
3Department of Physiology, McGill University, Montréal, Quebec H3G 1Y6, Canada
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Derek Bowie
2Department of Pharmacology and Therapeutics, McGill University, Montréal, Quebec H3G 1Y6, Canada
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
  • ORCID record for Derek Bowie
  • Article
  • Figures & Data
  • Info & Metrics
  • eLetters
  • PDF
Loading

Article Information

DOI 
https://doi.org/10.1523/ENEURO.0126-19.2019
PubMed 
31110133
Published By 
Society for Neuroscience
History 
  • Received April 1, 2019
  • Revision received April 26, 2019
  • Accepted May 13, 2019
  • Published online May 20, 2019.
Copyright & Usage 
Copyright © 2019 Alexander et al. This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license, which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.

Author Information

  1. Ryan P.D. Alexander1,2,
  2. John Mitry3,
  3. Vasu Sareen3,
  4. Anmar Khadra3 and
  5. Derek Bowie2
  1. 1Integrated Program in Neuroscience, McGill University, Montréal, Quebec H3A 2B4, Canada
  2. 2Department of Pharmacology and Therapeutics, McGill University, Montréal, Quebec H3G 1Y6, Canada
  3. 3Department of Physiology, McGill University, Montréal, Quebec H3G 1Y6, Canada
  1. Correspondence should be addressed to Derek Bowie at derek.bowie{at}mcgill.ca.
View Full Text

Author contributions

  1. Author contributions: R.P.D.A., J.M., A.K., and D.B. designed research; R.P.D.A., J.M., and V.S. performed research; R.P.D.A., J.M., and V.S. analyzed data; R.P.D.A., A.K., and D.B. wrote the paper.

Disclosures

  • The authors declare no competing financial interests.

  • This work was supported by the Canadian Institutes of Health Research Operating Grant MOP 142431 (to D.B.) and by a National Natural Sciences and Engineering Research Council of Canada (NSERC) Discovery Grant (A.K.). R.P.D.A. was supported by a NSERC CGS-D Doctoral Fellowship.

Funding

  • Gouvernement du Canada | Canadian Institutes of Health Research (CIHR)

    MOP 142431
  • Gouvernement du Canada | Natural Sciences and Engineering Research Council of Canada (NSERC)

Other Version

  • You are viewing the most recent version of this article.
  • previous version (May 20, 2019).

Online Impact

 

Article usage

Select a custom date range for the past year
E.g., 2026-04-14
to
E.g., 2026-04-14

Article usage: May 2019 to April 2026

AbstractFullPdf
May 20193560101
Jun 201922918265
Jul 20195829430
Aug 20193712229
Oct 2019124724
Nov 201993015
Dec 2019164315
Total 2019717718279
Jan 2020124612
Feb 202072622
Mar 202092515
May 202023618
Jun 202033512
Jul 202032312
Aug 202081813
Sep 202052712
Oct 20202329
Nov 202026720
Dec 20206669
Total 202059401154
Jan 20214627
Feb 202126520
Mar 2021106411
Apr 202187429
May 202127118
Jun 20214539
Jul 202155616
Aug 20211564
Sep 202126813
Oct 202108420
Nov 202106721
Dec 202108310
Total 202138803178
Jan 202247317
Feb 202225215
Mar 202217220
Apr 20222439
May 202245714
Jun 202204613
Jul 202214513
Aug 20221328
Sep 202212915
Oct 202236926
Nov 202217110
Dec 202255010
Total 202225639170
Jan 202316422
Feb 202306011
Mar 202334514
Apr 20231418
May 202334716
Jun 20232493
Jul 202325428
Aug 202334222
Sep 202324613
Oct 202326711
Nov 202335810
Dec 202366318
Total 202328636176
Jan 202405014
Feb 20246448
Mar 202464814
Apr 20241013720
May 202425931
Jun 202434817
Jul 202414921
Aug 202475617
Sep 202435117
Oct 20242458
Nov 202424518
Dec 20242508
Total 202444682193
Jan 2025255820
Feb 20258565
Mar 202524712
Apr 20252509
May 20250546
Jun 202567216
Jul 202597625
Aug 202565130
Sep 202537910
Oct 202575925
Nov 20252311331
Dec 202578919
Total 202598804208
Jan 20261211014
Feb 202681776
Mar 20261116129
Apr 202644623
Total 20263549472
Total104451771430
Back to top

In this issue

eneuro: 6 (3)
eNeuro
Vol. 6, Issue 3
May/June 2019
  • Table of Contents
  • Index by author
  • Ed Board (PDF)
Email

Thank you for sharing this eNeuro article.

NOTE: We request your email address only to inform the recipient that it was you who recommended this article, and that it is not junk mail. We do not retain these email addresses.

Enter multiple addresses on separate lines or separate them with commas.
Cerebellar Stellate Cell Excitability Is Coordinated by Shifts in the Gating Behavior of Voltage-Gated Na+ and A-Type K+ Channels
(Your Name) has forwarded a page to you from eNeuro
(Your Name) thought you would be interested in this article in eNeuro.
CAPTCHA
This question is for testing whether or not you are a human visitor and to prevent automated spam submissions.
Print
View Full Page PDF
Citation Tools
Cerebellar Stellate Cell Excitability Is Coordinated by Shifts in the Gating Behavior of Voltage-Gated Na+ and A-Type K+ Channels
Ryan P.D. Alexander, John Mitry, Vasu Sareen, Anmar Khadra, Derek Bowie
eNeuro 20 May 2019, 6 (3) ENEURO.0126-19.2019; DOI: 10.1523/ENEURO.0126-19.2019

Citation Manager Formats

  • BibTeX
  • Bookends
  • EasyBib
  • EndNote (tagged)
  • EndNote 8 (xml)
  • Medlars
  • Mendeley
  • Papers
  • RefWorks Tagged
  • Ref Manager
  • RIS
  • Zotero
Respond to this article
Share
Cerebellar Stellate Cell Excitability Is Coordinated by Shifts in the Gating Behavior of Voltage-Gated Na+ and A-Type K+ Channels
Ryan P.D. Alexander, John Mitry, Vasu Sareen, Anmar Khadra, Derek Bowie
eNeuro 20 May 2019, 6 (3) ENEURO.0126-19.2019; DOI: 10.1523/ENEURO.0126-19.2019
Twitter logo Facebook logo Mendeley logo
  • Tweet Widget
  • Facebook Like
  • Google Plus One

Jump to section

  • Article
    • Abstract
    • Significance Statement
    • Introduction
    • Materials and Methods
    • Results
    • Discussion
    • Acknowledgments
    • Footnotes
    • References
    • Synthesis
  • Figures & Data
  • Info & Metrics
  • eLetters
  • PDF

Keywords

  • A-type potassium channel
  • action potential
  • cerebellum
  • computational modeling
  • sodium channel
  • stellate cell

Responses to this article

Respond to this article

Jump to comment:

No eLetters have been published for this article.

Related Articles

Cited By...

More in this TOC Section

New Research

  • A Very Fast Time Scale of Human Motor Adaptation: Within Movement Adjustments of Internal Representations during Reaching
  • TrkB Signaling Influences Gene Expression in Cortistatin-Expressing Interneurons
  • Optogenetic Activation of β-Endorphin Terminals in the Medial Preoptic Nucleus Regulates Female Sexual Receptivity
Show more New Research

Neuronal Excitability

  • Motor protein disruption critically alters organelle trafficking and excitation contraction coupling
  • Spike generation in electroreceptor afferents introduces additional spectral response components by weakly nonlinear interactions
  • Galanin Inhibits Histaminergic Neurons via Galanin Receptor 1
Show more Neuronal Excitability

Subjects

  • Neuronal Excitability
  • Home
  • Alerts
  • Follow SFN on BlueSky
  • Visit Society for Neuroscience on Facebook
  • Follow Society for Neuroscience on Twitter
  • Follow Society for Neuroscience on LinkedIn
  • Visit Society for Neuroscience on Youtube
  • Follow our RSS feeds

Content

  • Early Release
  • Current Issue
  • Latest Articles
  • Issue Archive
  • Blog
  • Browse by Topic

Information

  • For Authors
  • For the Media

About

  • About the Journal
  • Editorial Board
  • Privacy Notice
  • Contact
  • Feedback
(eNeuro logo)
(SfN logo)

Copyright © 2026 by the Society for Neuroscience.
eNeuro eISSN: 2373-2822

The ideas and opinions expressed in eNeuro do not necessarily reflect those of SfN or the eNeuro Editorial Board. Publication of an advertisement or other product mention in eNeuro should not be construed as an endorsement of the manufacturer’s claims. SfN does not assume any responsibility for any injury and/or damage to persons or property arising from or related to any use of any material contained in eNeuro.