Literature DB >> 25538241

Regulation of gene transcription by voltage-gated L-type calcium channel, Cav1.3.

Ling Lu1, Padmini Sirish2, Zheng Zhang2, Ryan L Woltz2, Ning Li2, Valeriy Timofeyev2, Anne A Knowlton3, Xiao-Dong Zhang2, Ebenezer N Yamoah4, Nipavan Chiamvimonvat5.   

Abstract

Cav1.3 L-type Ca(2+) channel is known to be highly expressed in neurons and neuroendocrine cells. However, we have previously demonstrated that the Cav1.3 channel is also expressed in atria and pacemaking cells in the heart. The significance of the tissue-specific expression of the channel is underpinned by our previous demonstration of atrial fibrillation in a Cav1.3 null mutant mouse model. Indeed, a recent study has confirmed the critical roles of Cav1.3 in the human heart (Baig, S. M., Koschak, A., Lieb, A., Gebhart, M., Dafinger, C., Nürnberg, G., Ali, A., Ahmad, I., Sinnegger-Brauns, M. J., Brandt, N., Engel, J., Mangoni, M. E., Farooq, M., Khan, H. U., Nürnberg, P., Striessnig, J., and Bolz, H. J. (2011) Nat. Neurosci. 14, 77-84). These studies suggest that detailed knowledge of Cav1.3 may have broad therapeutic ramifications in the treatment of cardiac arrhythmias. Here, we tested the hypothesis that there is a functional cross-talk between the Cav1.3 channel and a small conductance Ca(2+)-activated K(+) channel (SK2), which we have documented to be highly expressed in human and mouse atrial myocytes. Specifically, we tested the hypothesis that the C terminus of Cav1.3 may translocate to the nucleus where it functions as a transcriptional factor. Here, we reported for the first time that the C terminus of Cav1.3 translocates to the nucleus where it functions as a transcriptional regulator to modulate the function of Ca(2+)-activated K(+) channels in atrial myocytes. Nuclear translocation of the C-terminal domain of Cav1.3 is directly regulated by intracellular Ca(2+). Utilizing a Cav1.3 null mutant mouse model, we demonstrate that ablation of Cav1.3 results in a decrease in the protein expression of myosin light chain 2, which interacts and increases the membrane localization of SK2 channels.
© 2015 by The American Society for Biochemistry and Molecular Biology, Inc.

Entities:  

Keywords:  Calcium Channel; Ion Channel; Potassium Channel; Transcription; Transcription Factor

Mesh:

Substances:

Year:  2014        PMID: 25538241      PMCID: PMC4335206          DOI: 10.1074/jbc.M114.586883

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  58 in total

1.  Functional Roles of Ca(v)1.3 (alpha(1D)) calcium channel in sinoatrial nodes: insight gained using gene-targeted null mutant mice.

Authors:  Zhao Zhang; Yanfang Xu; Haitao Song; Jennifer Rodriguez; Dipika Tuteja; Yoon Namkung; Hee-Sup Shin; Nipavan Chiamvimonvat
Journal:  Circ Res       Date:  2002-05-17       Impact factor: 17.367

2.  Functional role of L-type Cav1.3 Ca2+ channels in cardiac pacemaker activity.

Authors:  Matteo E Mangoni; Brigitte Couette; Emmanuel Bourinet; Josef Platzer; Daniel Reimer; Jörg Striessnig; Joël Nargeot
Journal:  Proc Natl Acad Sci U S A       Date:  2003-04-16       Impact factor: 11.205

Review 3.  Excitation-transcription coupling: signaling by ion channels to the nucleus.

Authors:  Ricardo Dolmetsch
Journal:  Sci STKE       Date:  2003-01-21

4.  Biochemical properties and subcellular distribution of an N-type calcium channel alpha 1 subunit.

Authors:  R E Westenbroek; J W Hell; C Warner; S J Dubel; T P Snutch; W A Catterall
Journal:  Neuron       Date:  1992-12       Impact factor: 17.173

Review 5.  L-type calcium channels: the low down.

Authors:  Diane Lipscombe; Thomas D Helton; Weifeng Xu
Journal:  J Neurophysiol       Date:  2004-11       Impact factor: 2.714

Review 6.  Voltage-sensitive Ca2+ channels.

Authors:  R J Miller
Journal:  J Biol Chem       Date:  1992-01-25       Impact factor: 5.157

7.  Proteolytic cleavage and cellular toxicity of the human alpha1A calcium channel in spinocerebellar ataxia type 6.

Authors:  Takayuki Kubodera; Takanori Yokota; Kiyoshi Ohwada; Kinya Ishikawa; Hiroyuki Miura; Takeshi Matsuoka; Hidehiro Mizusawa
Journal:  Neurosci Lett       Date:  2003-04-24       Impact factor: 3.046

8.  Improved patch-clamp techniques for high-resolution current recording from cells and cell-free membrane patches.

Authors:  O P Hamill; A Marty; E Neher; B Sakmann; F J Sigworth
Journal:  Pflugers Arch       Date:  1981-08       Impact factor: 3.657

9.  Molecular identification and functional roles of a Ca(2+)-activated K+ channel in human and mouse hearts.

Authors:  Yanfang Xu; Dipika Tuteja; Zhao Zhang; Danyan Xu; Yi Zhang; Jennifer Rodriguez; Liping Nie; Holly R Tuxson; J Nilas Young; Kathryn A Glatter; Ana E Vázquez; Ebenezer N Yamoah; Nipavan Chiamvimonvat
Journal:  J Biol Chem       Date:  2003-09-17       Impact factor: 5.157

10.  Kinetic and pharmacological properties distinguishing three types of calcium currents in chick sensory neurones.

Authors:  A P Fox; M C Nowycky; R W Tsien
Journal:  J Physiol       Date:  1987-12       Impact factor: 5.182

View more
  24 in total

Review 1.  Cardiac ion channels.

Authors:  Birgit T Priest; Jeff S McDermott
Journal:  Channels (Austin)       Date:  2015-08-20       Impact factor: 2.581

Review 2.  Voltage-Gated Calcium Channels: Key Players in Sensory Coding in the Retina and the Inner Ear.

Authors:  Tina Pangrsic; Joshua H Singer; Alexandra Koschak
Journal:  Physiol Rev       Date:  2018-10-01       Impact factor: 37.312

3.  α1ACT Is Essential for Survival and Early Cerebellar Programming in a Critical Neonatal Window.

Authors:  Xiaofei Du; Cenfu Wei; Daniel Parviz Hejazi Pastor; Eshaan R Rao; Yan Li; Giorgio Grasselli; Jack Godfrey; Ann C Palmenberg; Jorge Andrade; Christian Hansel; Christopher M Gomez
Journal:  Neuron       Date:  2019-03-25       Impact factor: 17.173

Review 4.  Using iPSC Models to Probe Regulation of Cardiac Ion Channel Function.

Authors:  Arne A N Bruyneel; Wesley L McKeithan; Dries A M Feyen; Mark Mercola
Journal:  Curr Cardiol Rep       Date:  2018-05-25       Impact factor: 2.931

5.  Expression of Cav1.3 calcium channel in the human and mouse colon: posttranscriptional inhibition by IFNγ.

Authors:  Vijayababu M Radhakrishnan; Maryam M Gilpatrick; Nour Alhoda Parsa; Pawel R Kiela; Fayez K Ghishan
Journal:  Am J Physiol Gastrointest Liver Physiol       Date:  2016-12-08       Impact factor: 4.052

Review 6.  Small-conductance Ca2+ -activated K+ channels and cardiac arrhythmias.

Authors:  Xiao-Dong Zhang; Deborah K Lieu; Nipavan Chiamvimonvat
Journal:  Heart Rhythm       Date:  2015-05-05       Impact factor: 6.343

Review 7.  The regulation of the small-conductance calcium-activated potassium current and the mechanisms of sex dimorphism in J wave syndrome.

Authors:  Mu Chen; Yudong Fei; Tai-Zhong Chen; Yi-Gang Li; Peng-Sheng Chen
Journal:  Pflugers Arch       Date:  2021-01-07       Impact factor: 3.657

Review 8.  Targeting microglia L-type voltage-dependent calcium channels for the treatment of central nervous system disorders.

Authors:  Sarah C Hopp
Journal:  J Neurosci Res       Date:  2020-01-29       Impact factor: 4.433

9.  Expanding the phenotype of CACNA1C mutation disorders.

Authors:  Lindsey Gakenheimer-Smith; Lindsay Meyers; Derek Lundahl; Shaji C Menon; T Jared Bunch; Briana L Sawyer; Martin Tristani-Firouzi; Susan P Etheridge
Journal:  Mol Genet Genomic Med       Date:  2021-04-01       Impact factor: 2.183

10.  More than a pore: How voltage-gated calcium channels act on different levels of neuronal communication regulation.

Authors:  Jennifer Heck; Ana Carolina Palmeira Do Amaral; Stephan Weißbach; Abderazzaq El Khallouqi; Arthur Bikbaev; Martin Heine
Journal:  Channels (Austin)       Date:  2021-12       Impact factor: 2.581

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.