Literature DB >> 32027092

The sodium channel NaX : Possible player in excitation-contraction coupling.

Elena Bogdanovic1, Franck Potet2, William Marszalec2, Hari Iyer1, Robert Galiano1, Seok J Hong1, Kai P Leung3, John Andrew Wasserstrom2, Alfred L George2, Thomas A Mustoe1.   

Abstract

The sodium channel NaX (encoded by the SCN7A gene) was originally identified in the heart and skeletal muscle and is structurally similar to the other voltage-gated sodium channels but does not appear to be voltage gated. Although NaX is expressed at high levels in cardiac and skeletal muscle, little information exists on the function of NaX in these tissues. Transcriptional profiling of ion channels in the heart in a subset of patients with Brugada syndrome revealed an inverse relationship between the expression of NaX and NaV 1.5 suggesting that, in cardiac myocytes, the expression of these channels may be linked. We propose that NaX plays a role in excitation-contraction coupling based on our experimental observations. Here we show that in cardiac myocytes, NaX is expressed in a striated pattern on the sarcolemma in regions corresponding to the sarcomeric M-line. Knocking down NaX expression decreased NaV 1.5 mRNA and protein and reduced the inward sodium current (INa+ ) following cell depolarization. When the expression of NaV 1.5 was knocked down, ~85% of the INa+ was reduced consistent with the observations that NaV 1.5 is the main voltage-gated sodium channel in cardiac muscle and that NaX likely does not directly participate in mediating the INa+ following depolarization. Silencing NaV 1.5 expression led to significant upregulation of NaX mRNA. Similar to NaV 1.5, NaX protein levels were rapidly downregulated when the intracellular [Ca2+ ] was increased either by CaCl2 or caffeine. These data suggest that a relationship exists between NaX and NaV 1.5 and that NaX may play a role in excitation-contraction coupling.
© 2020 International Union of Biochemistry and Molecular Biology.

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Keywords:  Ca2 +; M-line; NaV1.5; NaX; SCN5A; SCN7A; cardiac myocytes

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Year:  2020        PMID: 32027092     DOI: 10.1002/iub.2247

Source DB:  PubMed          Journal:  IUBMB Life        ISSN: 1521-6543            Impact factor:   3.885


  2 in total

Review 1.  The Nax (SCN7A) channel: an atypical regulator of tissue homeostasis and disease.

Authors:  David Dolivo; Adrian Rodrigues; Lauren Sun; Yingxing Li; Chun Hou; Robert Galiano; Seok Jong Hong; Thomas Mustoe
Journal:  Cell Mol Life Sci       Date:  2021-06-08       Impact factor: 9.261

2.  Caffeine Consumption Influences Lidocaine Action via Pain-Related Voltage-Gated Sodium Channels: An In Vivo Animal Study.

Authors:  Reham Alfaraj; Zainab Alabdulsalam; Zahrah Alfaraj; Hawraa Alsunni; Hussain Alhawaj; Omar Omar; Hatem Abuohashish
Journal:  Pain Res Manag       Date:  2022-01-04       Impact factor: 3.037

  2 in total

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