Spider-Venom Peptides as Bioinsecticides
Abstract
:1. The Global Insect Pest Problem
1.1. Agricultural Pests
1.2. Vectors of Disease
2. Agrochemical Insecticides: Current Challenges to Insect Pest Control
2.1. Health Consequences and Environmental Impacts
2.2. Insecticide Resistance
3. Bioinsecticides as Natural Insect Pest Control Agents
4. Spider Venoms: Sources of Novel Bioinsecticides
5. Spider-Venom Peptide Nomenclature
6. Structure of the Precursor Spider-Venom Peptide and Post-Translational Processing
7. Structural Motifs of Spider-Venom Peptides: Variations on an Ancestral Fold
8. Insecticidal Targets of Spider Neurotoxins
8.1. Spider-Venom Peptides Targeting Insect NaV Channels
8.1.1. Spider-Venom Peptides Targeting Insect NaV Channel Site-1: Pore Blockers
8.1.2. Spider-Venom Peptides Targeting Insect NaV Channel Site-3: Gating Modifiers of Inactivation
8.1.3. Spider-Venom Peptides Targeting Insect NaV Channel Site-4: Gating Modifiers of Activation
8.1.4. Spider-Venom Toxins with an Unknown Site of Action on Insect NaV Channels
8.2. Spider-Venom Peptides Targeting Insect CaV Channels
8.2.1. Spider-Venom Peptides that Block Insect CaV1 Channels
8.2.2. Spider-Venom Peptides that Block Insect CaV2 Channels
8.2.3. Spider-Venom Peptides that Block Insect CaV3 Channels
8.3. Spider-Venom Peptides Targeting Insect KV Channels
8.4. Membrane-Acting Linear Peptides
8.5. Spider-Venom Toxins Targeting Presynaptic Nerve Terminals
8.6. Spider-Venom Toxins Targeting Glutamate Receptors
9. Bioinsecticide Lead Selection
10. Commercialisation of Spider-Venom Toxins
Toxin Name | Source | Insect Target | Acute toxicity test species (Order †: Genus species) | ED50 or PD50 (pmol/g) | LD50 (pmol/g) | Paralogs/orthologs | |
---|---|---|---|---|---|---|---|
δ-CNTX-Pn1a | Phoneutria nigriventer | NaV channel | B: Periplaneta americana | 95 ‡ | 2 | ||
D: Musca domestica | 36 | ||||||
Γ-CNTX-Pn1a | Phoneutria nigriventer | GluR | B: Periplaneta americana | 48 ‡ | 0 | ||
D: Musca domestica | 10 ‡ | ||||||
O: Acheta domesticus | 29 ‡ | ||||||
κ-HXTX-Hv1c | Hadronyche versuta | BKCa channel | D: Musca domestica | 91 | 6 | ||
D: Musca domestica | 319 # | ||||||
D: Lucilia cuprina | 117 # | ||||||
L: Heliothis virescens | 3195 # | ||||||
L: Spodoptera frugiperda | 3070 # | ||||||
O: Acheta domesticus | 167 | ||||||
O: Acheta domesticus | 1022 # | ||||||
μ-AGTX-Aa1d | Agelenopsis aperta | NaV channel | D: Musca domestica | 30 | 11 | ||
L: Manduca sexta | 9524 | ||||||
μ-DGTX-Dc1a | Diguetia canities | NaV channel | L: Heliothis virescens | 380 | 3 | ||
ω-HXTX-Hv1a | Hadronyche versuta | CaV channel | D: Musca domestica | 250 # | 77 | 27 | |
L: Heliothis virescens | |||||||
89 | |||||||
O: Acheta domesticus |
11. Concluding Remarks
Goals | OPs † | Carbamates | Pyrethroids | Insect-selective spider toxins |
---|---|---|---|---|
Broad pest-species specificity | +++ | +++ | +++ | +++ |
Low toxicity in non-target organisms | + | + | ++ | +++ |
Remain in the environment long enough to be effective | +++ | +++ | ++ | ++ |
Do not persist in environment to induce resistance development | + | + | ++ | +++ |
Cheap to produce | +++ | +++ | ++ | ++ |
Easy to formulate and deliver | +++ | +++ | ++ | + |
Publicly perceived as innocuous | + | + | +++ | + |
Accessible to small farmers and agribusinesses | + | ++ | +++ | + |
Acknowledgments
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Windley, M.J.; Herzig, V.; Dziemborowicz, S.A.; Hardy, M.C.; King, G.F.; Nicholson, G.M. Spider-Venom Peptides as Bioinsecticides. Toxins 2012, 4, 191-227. https://doi.org/10.3390/toxins4030191
Windley MJ, Herzig V, Dziemborowicz SA, Hardy MC, King GF, Nicholson GM. Spider-Venom Peptides as Bioinsecticides. Toxins. 2012; 4(3):191-227. https://doi.org/10.3390/toxins4030191
Chicago/Turabian StyleWindley, Monique J., Volker Herzig, Sławomir A. Dziemborowicz, Margaret C. Hardy, Glenn F. King, and Graham M. Nicholson. 2012. "Spider-Venom Peptides as Bioinsecticides" Toxins 4, no. 3: 191-227. https://doi.org/10.3390/toxins4030191
APA StyleWindley, M. J., Herzig, V., Dziemborowicz, S. A., Hardy, M. C., King, G. F., & Nicholson, G. M. (2012). Spider-Venom Peptides as Bioinsecticides. Toxins, 4(3), 191-227. https://doi.org/10.3390/toxins4030191