Literature DB >> 15861006

Ankyrin-based cardiac arrhythmias: a new class of channelopathies due to loss of cellular targeting.

Peter J Mohler1, Vann Bennett.   

Abstract

PURPOSE OF REVIEW: This review addresses a new mechanism for arrhythmia due to abnormal cellular localization of membrane ion channels and transporters. The focus is on ankyrins, a family of proteins that localize diverse membrane ion channels and transporters, and recent evidence that mutations affecting functions of ankyrins result in cardiac arrhythmia. RECENT
FINDINGS: A loss-of-function mutation of ankyrin-B in humans and a null mutation in mice result in a dominantly-inherited fatal cardiac arrhythmia initially classified as type 4 long QT syndrome. Characterization of additional probands suggests ankyrin-B mutations cause a new cardiac arrhythmia syndrome associated with sinus node dysfunction that is distinct from long QT syndrome. Ankyrin-B mutation results in elevated calcium transients in cardiomyocytes accompanied by loss of cellular targeting of Na/K ATPase, Na/Ca exchanger, and InsP3 receptor (all ankyrin-binding proteins) to cardiomyocyte membrane domains. The principal voltage-gated Na channel in heart, Nav1.5, is directly associated with ankyrin-G, which is encoded by a distinct gene from ankyrin-B. Mutation of Nav1.5 causing loss of binding to ankyrin-G results in Brugada syndrome and loss of targeting of Nav1.5 to the cell surface of cardiomyocytes.
SUMMARY: Ankyrin-B and ankyrin-G are recently recognized constituents of the heart that target diverse ion channels/pumps/transporters to physiologic sites of action in cardiomyocytes. Mutations of ankyrin-B cause a newly defined cardiac arrhythmia syndrome associated with abnormal calcium homeostasis in a mouse model. Ankyrin-G associates with the principal voltage-gated Na channel in the heart, and loss of this interaction due to mutation of Nav1.5 results in Brugada syndrome.

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Year:  2005        PMID: 15861006     DOI: 10.1097/01.hco.0000160372.95116.3e

Source DB:  PubMed          Journal:  Curr Opin Cardiol        ISSN: 0268-4705            Impact factor:   2.161


  23 in total

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6.  Ankyrin facilitates intracellular trafficking of alpha1-Na+-K+-ATPase in polarized cells.

Authors:  Paul R Stabach; Prasad Devarajan; Michael C Stankewich; Serguei Bannykh; Jon S Morrow
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Review 8.  Cardiac T-Tubule Microanatomy and Function.

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Review 9.  Congenital long-QT syndromes: a clinical and genetic update from infancy through adulthood.

Authors:  Gregory Webster; Charles I Berul
Journal:  Trends Cardiovasc Med       Date:  2008-08       Impact factor: 6.677

10.  Subcellular Ca2+ signaling in the heart: the role of ryanodine receptor sensitivity.

Authors:  Benjamin L Prosser; Christopher W Ward; W J Lederer
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