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The Receptor Site and Mechanism of Action of Sodium Channel Blocker Insecticides.

Publication ,  Journal Article
Zhang, Y; Du, Y; Jiang, D; Behnke, C; Nomura, Y; Zhorov, BS; Dong, K
Published in: The Journal of biological chemistry
September 2016

Sodium channels are excellent targets of both natural and synthetic insecticides with high insect selectivity. Indoxacarb, its active metabolite DCJW, and metaflumizone (MFZ) belong to a relatively new class of sodium channel blocker insecticides (SCBIs) with a mode of action distinct from all other sodium channel-targeting insecticides, including pyrethroids. Electroneutral SCBIs preferably bind to and trap sodium channels in the inactivated state, a mechanism similar to that of cationic local anesthetics. Previous studies identified several SCBI-sensing residues that face the inner pore of sodium channels. However, the receptor site of SCBIs, their atomic mechanisms, and the cause of selective toxicity of MFZ remain elusive. Here, we have built a homology model of the open-state cockroach sodium channel BgNav1-1a. Our computations predicted that SCBIs bind in the inner pore, interact with a sodium ion at the focus of P1 helices, and extend their aromatic moiety into the III/IV domain interface (fenestration). Using model-driven mutagenesis and electrophysiology, we identified five new SCBI-sensing residues, including insect-specific residues. Our study proposes the first three-dimensional models of channel-bound SCBIs, sheds light on the molecular basis of MFZ selective toxicity, and suggests that a sodium ion located in the inner pore contributes to the receptor site for electroneutral SCBIs.

Duke Scholars

Published In

The Journal of biological chemistry

DOI

EISSN

1083-351X

ISSN

0021-9258

Publication Date

September 2016

Volume

291

Issue

38

Start / End Page

20113 / 20124

Related Subject Headings

  • Sodium Channel Blockers
  • Semicarbazones
  • Protein Domains
  • NAV1.1 Voltage-Gated Sodium Channel
  • Models, Molecular
  • Insecticides
  • Insect Proteins
  • Blattellidae
  • Biochemistry & Molecular Biology
  • Animals
 

Citation

APA
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ICMJE
MLA
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Zhang, Y., Du, Y., Jiang, D., Behnke, C., Nomura, Y., Zhorov, B. S., & Dong, K. (2016). The Receptor Site and Mechanism of Action of Sodium Channel Blocker Insecticides. The Journal of Biological Chemistry, 291(38), 20113–20124. https://doi.org/10.1074/jbc.m116.742056
Zhang, Yongqiang, Yuzhe Du, Dingxin Jiang, Caitlyn Behnke, Yoshiko Nomura, Boris S. Zhorov, and Ke Dong. “The Receptor Site and Mechanism of Action of Sodium Channel Blocker Insecticides.The Journal of Biological Chemistry 291, no. 38 (September 2016): 20113–24. https://doi.org/10.1074/jbc.m116.742056.
Zhang Y, Du Y, Jiang D, Behnke C, Nomura Y, Zhorov BS, et al. The Receptor Site and Mechanism of Action of Sodium Channel Blocker Insecticides. The Journal of biological chemistry. 2016 Sep;291(38):20113–24.
Zhang, Yongqiang, et al. “The Receptor Site and Mechanism of Action of Sodium Channel Blocker Insecticides.The Journal of Biological Chemistry, vol. 291, no. 38, Sept. 2016, pp. 20113–24. Epmc, doi:10.1074/jbc.m116.742056.
Zhang Y, Du Y, Jiang D, Behnke C, Nomura Y, Zhorov BS, Dong K. The Receptor Site and Mechanism of Action of Sodium Channel Blocker Insecticides. The Journal of biological chemistry. 2016 Sep;291(38):20113–20124.

Published In

The Journal of biological chemistry

DOI

EISSN

1083-351X

ISSN

0021-9258

Publication Date

September 2016

Volume

291

Issue

38

Start / End Page

20113 / 20124

Related Subject Headings

  • Sodium Channel Blockers
  • Semicarbazones
  • Protein Domains
  • NAV1.1 Voltage-Gated Sodium Channel
  • Models, Molecular
  • Insecticides
  • Insect Proteins
  • Blattellidae
  • Biochemistry & Molecular Biology
  • Animals