Ion channel clustering at the axon initial segment and node of Ranvier evolved sequentially in early chordates.

In many mammalian neurons, dense clusters of ion channels at the axonal initial segment and nodes of Ranvier underlie action potential generation and rapid conduction. Axonal clustering of mammalian voltage-gated sodium and KCNQ (Kv7) potassium channels is based on linkage to the actin-spectrin cyto...

Full description

Bibliographic Details
Main Authors: Alexis S Hill, Atsuo Nishino, Koichi Nakajo, Giuxin Zhang, Jaime R Fineman, Michael E Selzer, Yasushi Okamura, Edward C Cooper
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2008-12-01
Series:PLoS Genetics
Online Access:http://europepmc.org/articles/PMC2597720?pdf=render
id doaj-cc167c3db1034e2f8983e75e9a0c3deb
record_format Article
spelling doaj-cc167c3db1034e2f8983e75e9a0c3deb2020-11-25T02:29:18ZengPublic Library of Science (PLoS)PLoS Genetics1553-73901553-74042008-12-01412e100031710.1371/journal.pgen.1000317Ion channel clustering at the axon initial segment and node of Ranvier evolved sequentially in early chordates.Alexis S HillAtsuo NishinoKoichi NakajoGiuxin ZhangJaime R FinemanMichael E SelzerYasushi OkamuraEdward C CooperIn many mammalian neurons, dense clusters of ion channels at the axonal initial segment and nodes of Ranvier underlie action potential generation and rapid conduction. Axonal clustering of mammalian voltage-gated sodium and KCNQ (Kv7) potassium channels is based on linkage to the actin-spectrin cytoskeleton, which is mediated by the adaptor protein ankyrin-G. We identified key steps in the evolution of this axonal channel clustering. The anchor motif for sodium channel clustering evolved early in the chordate lineage before the divergence of the wormlike cephalochordate, amphioxus. Axons of the lamprey, a very primitive vertebrate, exhibited some invertebrate features (lack of myelin, use of giant diameter to hasten conduction), but possessed narrow initial segments bearing sodium channel clusters like in more recently evolved vertebrates. The KCNQ potassium channel anchor motif evolved after the divergence of lampreys from other vertebrates, in a common ancestor of shark and humans. Thus, clustering of voltage-gated sodium channels was a pivotal early innovation of the chordates. Sodium channel clusters at the axon initial segment serving the generation of action potentials evolved long before the node of Ranvier. KCNQ channels acquired anchors allowing their integration into pre-existing sodium channel complexes at about the same time that ancient vertebrates acquired myelin, saltatory conduction, and hinged jaws. The early chordate refinements in action potential mechanisms we have elucidated appear essential to the complex neural signaling, active behavior, and evolutionary success of vertebrates.http://europepmc.org/articles/PMC2597720?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Alexis S Hill
Atsuo Nishino
Koichi Nakajo
Giuxin Zhang
Jaime R Fineman
Michael E Selzer
Yasushi Okamura
Edward C Cooper
spellingShingle Alexis S Hill
Atsuo Nishino
Koichi Nakajo
Giuxin Zhang
Jaime R Fineman
Michael E Selzer
Yasushi Okamura
Edward C Cooper
Ion channel clustering at the axon initial segment and node of Ranvier evolved sequentially in early chordates.
PLoS Genetics
author_facet Alexis S Hill
Atsuo Nishino
Koichi Nakajo
Giuxin Zhang
Jaime R Fineman
Michael E Selzer
Yasushi Okamura
Edward C Cooper
author_sort Alexis S Hill
title Ion channel clustering at the axon initial segment and node of Ranvier evolved sequentially in early chordates.
title_short Ion channel clustering at the axon initial segment and node of Ranvier evolved sequentially in early chordates.
title_full Ion channel clustering at the axon initial segment and node of Ranvier evolved sequentially in early chordates.
title_fullStr Ion channel clustering at the axon initial segment and node of Ranvier evolved sequentially in early chordates.
title_full_unstemmed Ion channel clustering at the axon initial segment and node of Ranvier evolved sequentially in early chordates.
title_sort ion channel clustering at the axon initial segment and node of ranvier evolved sequentially in early chordates.
publisher Public Library of Science (PLoS)
series PLoS Genetics
issn 1553-7390
1553-7404
publishDate 2008-12-01
description In many mammalian neurons, dense clusters of ion channels at the axonal initial segment and nodes of Ranvier underlie action potential generation and rapid conduction. Axonal clustering of mammalian voltage-gated sodium and KCNQ (Kv7) potassium channels is based on linkage to the actin-spectrin cytoskeleton, which is mediated by the adaptor protein ankyrin-G. We identified key steps in the evolution of this axonal channel clustering. The anchor motif for sodium channel clustering evolved early in the chordate lineage before the divergence of the wormlike cephalochordate, amphioxus. Axons of the lamprey, a very primitive vertebrate, exhibited some invertebrate features (lack of myelin, use of giant diameter to hasten conduction), but possessed narrow initial segments bearing sodium channel clusters like in more recently evolved vertebrates. The KCNQ potassium channel anchor motif evolved after the divergence of lampreys from other vertebrates, in a common ancestor of shark and humans. Thus, clustering of voltage-gated sodium channels was a pivotal early innovation of the chordates. Sodium channel clusters at the axon initial segment serving the generation of action potentials evolved long before the node of Ranvier. KCNQ channels acquired anchors allowing their integration into pre-existing sodium channel complexes at about the same time that ancient vertebrates acquired myelin, saltatory conduction, and hinged jaws. The early chordate refinements in action potential mechanisms we have elucidated appear essential to the complex neural signaling, active behavior, and evolutionary success of vertebrates.
url http://europepmc.org/articles/PMC2597720?pdf=render
work_keys_str_mv AT alexisshill ionchannelclusteringattheaxoninitialsegmentandnodeofranvierevolvedsequentiallyinearlychordates
AT atsuonishino ionchannelclusteringattheaxoninitialsegmentandnodeofranvierevolvedsequentiallyinearlychordates
AT koichinakajo ionchannelclusteringattheaxoninitialsegmentandnodeofranvierevolvedsequentiallyinearlychordates
AT giuxinzhang ionchannelclusteringattheaxoninitialsegmentandnodeofranvierevolvedsequentiallyinearlychordates
AT jaimerfineman ionchannelclusteringattheaxoninitialsegmentandnodeofranvierevolvedsequentiallyinearlychordates
AT michaeleselzer ionchannelclusteringattheaxoninitialsegmentandnodeofranvierevolvedsequentiallyinearlychordates
AT yasushiokamura ionchannelclusteringattheaxoninitialsegmentandnodeofranvierevolvedsequentiallyinearlychordates
AT edwardccooper ionchannelclusteringattheaxoninitialsegmentandnodeofranvierevolvedsequentiallyinearlychordates
_version_ 1724833822992760832