• Title/Summary/Keyword: T-type $Ca^{2+}$ channel isoforms

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DTNB oxidation effects on T-type $Ca^{2+}$ channel isoforms

  • Lee, Sang-Soo;Kang, Ho-Won;Park, Jin-Yong;Lee, Jung-Ha
    • Animal cells and systems
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    • v.15 no.2
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    • pp.131-138
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    • 2011
  • Redox regulation is one of the ubiquitous mechanisms to modulate ion channels. We here investigated how 5,5'-dithio-bis (2-nitrobenzoic acid), a cysteine specific oxidizing reagent, modulates $Ca_v3.1$ and $Ca_v3.2$ T-type $Ca^{2+}$ channels expressed in Xenopus oocytes. Application of the reagent inhibited $Ca_v3.1$ and $Ca_v3.2$ currents in a dose-dependent manner. The oxidizing reagent (1 mM) reduced the peak amplitude of $Ca_v3.1$ and $Ca_v3.2$ currents by ~50% over 2-3 minutes and the decreased currents were fully recovered upon washout of it. The reagent slowed the activation and inactivation kinetics of $Ca_v3.1$, $Ca_v3.2$, and $Ca_v3.3$ channel currents. Notably, the reagent positively shifted both activation and steady-state inactivation curves of $Ca_v3.1$, while it did not those of $Ca_v3.2$. Utilizing chimeric channels from $Ca_v3.1$ and $Ca_v3.2$, we localized the domains III and IV of $Ca_v3.1$ responsible for the positive shifts of channel activation and steady-state inactivation. These findings provide hints relevant to the electrophysiological and molecular mechanisms accounting for the oxidative regulation of T-type channels.

Differential Expression of Four $Ca_v$3.1 Splice Variants in the Repeat III-IV Loop

  • Lee, Sang-Soo;Park, You-Mi;Kang, Ho-Won;Bang, Hyo-Weon;Jeong, Seong-Woo;Lee, Jung-Ha
    • Animal cells and systems
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    • v.12 no.3
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    • pp.137-141
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    • 2008
  • Molecular cloning revealed the three isoforms($Ca_v3.1,\;Ca_v3.2,\;and\;Ca_v3.3$) of the T-type calcium channel subfamily. Expression studies exhibited their distinctive electrophysiological and pharmacological properties, accounting for diverse properties of T-type calcium channel currents previously characterized from isolated cells. However, electrophysiological properties of ion channels have shown to be more diversified by their splice variants. We here searched splice variants of rat $Ca_v3.1$ T-type channel by reverse-transcription-polymerase chain reaction(RT-PCR) to further explore diversity of $Ca_v3.1$. Interestingly, analyses of cloned RT-PCR products displayed that there were at least four splicing variants of rat $Ca_v3.1$ in the loop connecting repeats III and IV. Southern blot analyses indicated that the predominantly detected variant in brain was $Ca_v3.1a$(492 bp), which were rarely detected in most of peripheral tissues. Other two variants($Ca_v3.1c$, 546 bp; $Ca_v3.1d$, 525 bp) were detected in most of the tissues examined. The smallest isoform($Ca_v3.1b$, 471 bp) was rarely detected all the tissues. Electrophysiological characterization of the splicing variants indicated that the splice variants differ in inactivation kinetics and the voltage dependence of activation and inactivation as well.

Extracellular Zinc Modulates Cloned T-type Calcium Channels

  • Lee, Jung-Ha;Park, Byong-Gon;Park, Jin-Yong;Lee, Joong-Woo;Jeong, Seong-Woo
    • Proceedings of the Korean Biophysical Society Conference
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    • 2002.06b
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    • pp.36-36
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    • 2002
  • In the present study, we investigated effects of extracellular zinc (Zn$\^$2+/) on T-type Ca$\^$2+/ channel isoforms (${\alpha}$lG, ${\alpha}$lH, and ${\alpha}$lI) stably expressed in HEK 293 cells. Ca$\^$2+/ currents were measured using 10 mM Ca$\^$2+/ as a charge carrier under whole cell-ruptured patch configuration. Zn$\^$2+/ blocked the ${\alpha}$lH currents with a 100- and 200-fold higher potency (IC$\sub$50/ = 2.5 ${\mu}$M) when compared with those for blockade of the ${\alpha}$1G and ${\alpha}$1I currents, respectively.(omitted)

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