Medical Journals

Roles of Alternative Splicing in the Functional Properties of Inner Ear-specific Kcnq4 Channels.

Authors:
  • Xu Tonghui
  • Nie Liping
  • Zhang Yi
  • Mo Jiling
  • Feng Weihong
  • Wei Dongguang
  • Petrov Evgueni
  • Calisto Lilian E
  • Kachar Bechara
  • Beisel Kirk W
  • Vazquez Ana E
  • Yamoah Ebenezer N

From: Center for Neuroscience and Communication Science Program, University of California, Davis, California 95618, USA.

The Journal of biological chemistry

  • Publish Date: Aug 2007
  • ISSN: 0021-9258
  • Volume: 282
  • Issue: 33
  • Pages: 23899-909
  • Medium: Print
  • Language: English
  • Citation (JAMA): Xu Tonghui, Nie Liping, Zhang Yi, et al. Roles of Alternative Splicing in the Functional Properties of Inner Ear-specific Kcnq4 Channels.. J. Biol. Chem. Aug 2007;282:23899-909

Abstract

The function of the KCNQ4 channel in the auditory setting is crucial to hearing, underpinned by the finding that mutations of the channel result in an autosomal dominant form of nonsyndromic progressive high frequency hearing loss. The precise function of KCNQ4 in the inner ear has not been established. However, recently we demonstrated that there is differential expression among four splice variants of KCNQ4 (KCNQ4_v1-v4) along the tonotopic axis of the cochlea. Alternative splicing specifies the outcome of functional channels by modifying the amino acid sequences within the C terminus at a site designated as the membrane proximal region. We show that variations within the C terminus of splice variants produce profound differences in the voltage-dependent phenotype and functional expression of the channel. KCNQ4_v4 lacks exons 9-11, resulting in deletion of 54 amino acid residues adjacent to the S6 domain compared with KCNQ4_v1. Consequently, the voltage-dependent activation of KCNQ4_v4 is shifted leftward by approximately 20 mV, and the number of functional channels is increased severalfold compared with KCNQ4_v1. The properties of KCNQ4_v2 and KCNQ4_v3 fall between KCNQ4_v1 and KCNQ4_v4. Because of variations in the calmodulin binding domains of the splice variants, the channels are differentially modulated by calmodulin. Co-expression of these splice variants yielded current magnitudes suggesting that the channels are composed of heterotetramers. Indeed, a dominant negative mutant of KCNQ4_v1 cripples the currents of the entire KCNQ4 channel family. Furthermore, the dominant negative KCNQ4 mutant stifles the activity of KCNQ2-5, raising the possibility of a global disruption of KCNQ channel activity and the ensuing auditory phenotype.

Mesh Headings (Keywords): Alternative Splicing, Animals, Binding Sites, Calmodulin, Cochlea, Ear, Inner, Electrophysiology, KCNQ Potassium Channels, Mice, Tissue Distribution


Check for Full Text / PubMed Unique Identifier (PMID): 17561493


This abstract is part of PubMed, a service of the U.S. National Library of Medicine. PubMed includes more than 17 million citations from MEDLINE and other life science journals for biomedical articles. See Copyright and Disclaimers.

Linked medical terms appearing on this page are added by Healia to help readers find more information and are not part of the original PubMed document.

The data herein was last updated on July 8th, 2008 and may not reflect the most current and accurate data available from NLM.


Advertisements

About | Privacy Policy | Business Solutions | Advertise | Contact | Add Healia to your site

©2012. Healia / Meredith Corporation  

Use of this site constitutes acceptance of our Terms of Service and Privacy Policy. All content on this Web site, including medical opinion and any other health-related information, is for informational purposes only and should not be used for a specific diagnosis or individual treatment plan for any situation. Use of this site and the information contained herein does not create a doctor-patient relationship. Always seek the direct advice of your doctor in connection with any questions or issues you may have regarding your own health or the health of others.