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Charge substitutions at the voltage-sensing module of domain III enhance actions of site-3 and site-4 toxins on an insect sodium channel.

Publication ,  Journal Article
Zhu, Q; Du, Y; Nomura, Y; Gao, R; Cang, Z; Wei, G-W; Gordon, D; Gurevitz, M; Groome, J; Dong, K
Published in: Insect biochemistry and molecular biology
October 2021

Scorpion α-toxins bind at the pharmacologically-defined site-3 on the sodium channel and inhibit channel inactivation by preventing the outward movement of the voltage sensor in domain IV (IVS4), whereas scorpion β-toxins bind at site-4 on the sodium channel and enhance channel activation by trapping the voltage sensor of domain II (IIS4) in its outward position. However, limited information is available on the role of the voltage-sensing modules (VSM, comprising S1-S4) of domains I and III in toxin actions. We have previously shown that charge reversing substitutions of the innermost positively-charged residues in IIIS4 (R4E, R5E) increase the activity of an insect-selective site-4 scorpion toxin, Lqh-dprIT3-c, on BgNav1-1a, a cockroach sodium channel. Here we show that substitutions R4E and R5E in IIIS4 also increase the activity of two site-3 toxins, LqhαIT from Leiurusquinquestriatus hebraeus and insect-selective Av3 from Anemonia viridis. Furthermore, charge reversal of either of two conserved negatively-charged residues, D1K and E2K, in IIIS2 also increase the action of the site-3 and site-4 toxins. Homology modeling suggests that S2-D1 and S2-E2 interact with S4-R4 and S4-R5 in the VSM of domain III (III-VSM), respectively, in the activated state of the channel. However, charge swapping between S2-D1 and S4-R4 had no compensatory effects on gating or toxin actions, suggesting that charged residue interactions are complex. Collectively, our results highlight the involvement of III-VSM in the actions of both site 3 and site 4 toxins, suggesting that charge reversing substitutions in III-VSM allosterically facilitate IIS4 or IVS4 voltage sensor trapping by these toxins.

Duke Scholars

Published In

Insect biochemistry and molecular biology

DOI

EISSN

1879-0240

ISSN

0965-1748

Publication Date

October 2021

Volume

137

Start / End Page

103625

Related Subject Headings

  • Sodium Channels
  • Scorpion Venoms
  • Oocytes
  • Insect Proteins
  • Entomology
  • Drosophila melanogaster
  • Cnidarian Venoms
  • Animals
  • 3109 Zoology
  • 3101 Biochemistry and cell biology
 

Citation

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Zhu, Q., Du, Y., Nomura, Y., Gao, R., Cang, Z., Wei, G.-W., … Dong, K. (2021). Charge substitutions at the voltage-sensing module of domain III enhance actions of site-3 and site-4 toxins on an insect sodium channel. Insect Biochemistry and Molecular Biology, 137, 103625. https://doi.org/10.1016/j.ibmb.2021.103625
Zhu, Qing, Yuzhe Du, Yoshiko Nomura, Rong Gao, Zixuan Cang, Guo-Wei Wei, Dalia Gordon, Michael Gurevitz, James Groome, and Ke Dong. “Charge substitutions at the voltage-sensing module of domain III enhance actions of site-3 and site-4 toxins on an insect sodium channel.Insect Biochemistry and Molecular Biology 137 (October 2021): 103625. https://doi.org/10.1016/j.ibmb.2021.103625.
Zhu Q, Du Y, Nomura Y, Gao R, Cang Z, Wei G-W, et al. Charge substitutions at the voltage-sensing module of domain III enhance actions of site-3 and site-4 toxins on an insect sodium channel. Insect biochemistry and molecular biology. 2021 Oct;137:103625.
Zhu, Qing, et al. “Charge substitutions at the voltage-sensing module of domain III enhance actions of site-3 and site-4 toxins on an insect sodium channel.Insect Biochemistry and Molecular Biology, vol. 137, Oct. 2021, p. 103625. Epmc, doi:10.1016/j.ibmb.2021.103625.
Zhu Q, Du Y, Nomura Y, Gao R, Cang Z, Wei G-W, Gordon D, Gurevitz M, Groome J, Dong K. Charge substitutions at the voltage-sensing module of domain III enhance actions of site-3 and site-4 toxins on an insect sodium channel. Insect biochemistry and molecular biology. 2021 Oct;137:103625.
Journal cover image

Published In

Insect biochemistry and molecular biology

DOI

EISSN

1879-0240

ISSN

0965-1748

Publication Date

October 2021

Volume

137

Start / End Page

103625

Related Subject Headings

  • Sodium Channels
  • Scorpion Venoms
  • Oocytes
  • Insect Proteins
  • Entomology
  • Drosophila melanogaster
  • Cnidarian Venoms
  • Animals
  • 3109 Zoology
  • 3101 Biochemistry and cell biology