Literature DB >> 10678738

Modulation of cloned skeletal muscle sodium channels by the scorpion toxins Lqh II, Lqh III, and Lqh alphaIT.

H Chen1, D Gordon, S H Heinemann.   

Abstract

The scorpion alpha-toxins Lqh II, Lqh III, and Lqh alphaIT from Leiurus quinquestriatus hebraeus are representatives of typical alpha-toxins, specific for either mammals (Lqh II) or insects (Lqh alphaIT), and alpha-like toxins (Lqh III) which act on both mammals and insects. For a comparative study of the effects of these toxins on mammalian sodium channels we stably expressed rat skeletal muscle sodium channel alpha subunits (microI) in HEK 293 cells and measured Na+ currents in the whole-cell patch-clamp mode. The alpha- and alpha-like toxins strongly slowed down channel inactivation with a half-maximal effect at 1.4 nM (Lqh II), 5.4 nM (Lqh III), and 0.5 nM (Lqh alphaIT). The recovery from fast inactivation was accelerated by all toxins with the potency sequence: Lqh II>Lqh alphaIT>Lqh III. The voltage dependence of inactivation and recovery from inactivation were reduced while the threshold for activation was only slightly shifted by approximately equal to 10 mV without altering the slope factors, suggesting uncoupling of the impaired inactivation from the activation. The toxins induced an increase in peak inward current, which was accounted for by an increased maximal open-channel probability. Although all three toxins induced similar modifications of the channel properties, their kinetics of association and dissociation were very different. Between -140 and -80 mV toxin association was not voltage dependent. In 100 nM toxin the association time constants were: 1.3 s (Lqh II), 20 s (Lqh III), and 3.8 s (Lqh alphaIT). At positive voltages the toxin dissociated from the channel; at +100 mV the dissociation time constants were 30, 321, and 135 ms, respectively. In contrast to the association, dissociation was voltage dependent with a similar slope of about 12 mV per e-fold change for all three toxins. The strong differences in the association and dissociation kinetics of these toxins may identify them as members of different scorpion alpha-toxin subgroups.

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Year:  2000        PMID: 10678738     DOI: 10.1007/s004249900181

Source DB:  PubMed          Journal:  Pflugers Arch        ISSN: 0031-6768            Impact factor:   3.657


  25 in total

1.  Domain 2 of Drosophila para voltage-gated sodium channel confers insect properties to a rat brain channel.

Authors:  Iris Shichor; Eliahu Zlotkin; Nitza Ilan; Dodo Chikashvili; Walter Stuhmer; Dalia Gordon; Ilana Lotan
Journal:  J Neurosci       Date:  2002-06-01       Impact factor: 6.167

2.  Voltage-dependent displacement of the scorpion toxin Ts3 from sodium channels and its implication on the control of inactivation.

Authors:  Fabiana V Campos; Fredy I V Coronas; Paulo S L Beirão
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3.  Mechanism and molecular basis for the sodium channel subtype specificity of µ-conopeptide CnIIIC.

Authors:  René Markgraf; Enrico Leipold; Jana Schirmeyer; Marianne Paolini-Bertrand; Oliver Hartley; Stefan H Heinemann
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Review 4.  Molecular mechanism of scorpion neurotoxins acting on sodium channels: insight into their diverse selectivity.

Authors:  Xiao-Pan Zuo; Yong-Hua Ji
Journal:  Mol Neurobiol       Date:  2004-12       Impact factor: 5.590

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Review 6.  Voltage-gated sodium channel modulation by scorpion alpha-toxins.

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Journal:  Toxicon       Date:  2006-09-28       Impact factor: 3.033

7.  Molecular requirements for recognition of brain voltage-gated sodium channels by scorpion alpha-toxins.

Authors:  Roy Kahn; Izhar Karbat; Nitza Ilan; Lior Cohen; Stanislav Sokolov; William A Catterall; Dalia Gordon; Michael Gurevitz
Journal:  J Biol Chem       Date:  2009-06-09       Impact factor: 5.157

8.  The effect of recombinant neurotoxins from the sea anemone Anthopleura sp. on sodium currents of rat cerebral cortical neurons.

Authors:  Hui Xiang; Wucheng Tao; Lei Wang; Fang Wang; Anlong Xu
Journal:  Cell Mol Neurobiol       Date:  2008-06-26       Impact factor: 5.046

9.  Alpha-scorpion toxin impairs a conformational change that leads to fast inactivation of muscle sodium channels.

Authors:  Fabiana V Campos; Baron Chanda; Paulo S L Beirão; Francisco Bezanilla
Journal:  J Gen Physiol       Date:  2008-08       Impact factor: 4.086

10.  A subtle alternative splicing event of the Na(V)1.8 voltage-gated sodium channel is conserved in human, rat, and mouse.

Authors:  Jana Schirmeyer; Karol Szafranski; Enrico Leipold; Christian Mawrin; Matthias Platzer; Stefan H Heinemann
Journal:  J Mol Neurosci       Date:  2009-12-02       Impact factor: 3.444

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