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Published on: August 23, 2018
Mutational analysis of the transmembrane α4-helix of Bacillus thuringiensis mosquito-larvicidal Cry4Aa toxin
Hirokazu Takahashi1, Mami Asakura1, Toru Ide1
1Graduate School of Interdisciplinary Science and Engineering in Health Systems, Okayama University, 3-1-1 Tsushima-Naka, Kita-Ku, Okayama, 700-8530, Japan.
Abstract:
Cry4Aa, produced by Bacillus thuringiensis subsp. israelensis, exhibits specific toxicity to larvae of medically important mosquito genera. Cry4Aa functions as a pore-forming toxin, and a helical hairpin (α4-loop-α5) of domain I is believed to be the transmembrane domain that forms toxin pores. Pore formation is considered to be a central mode of Cry4Aa action, but the relationship between pore formation and toxicity is poorly understood. In the present study, we constructed Cry4Aa mutants in which each polar amino acid residues within the transmembrane α4 helix was replaced with glutamic acid. Bioassays using Culex pipiens mosquito larvae and subsequent ion permeability measurements using symmetric KCl solution revealed an apparent correlation between toxicity and toxin pore conductance for most of the Cry4Aa mutants. In contrast, the Cry4Aa mutant H178E was a clear exception, almost losing its toxicity but still exhibiting a moderately high conductivity of about 60% of the wild-type. Furthermore, the conductance of the pore formed by the N190E mutant (about 50% of the wild-type) was close to that of H178E, but the toxicity was significantly higher than that of H178E. Ion selectivity measurements using asymmetric KCl solution revealed a significant decrease in cation selectivity of toxin pores formed by H178E compared to N190E. Our data suggest that the toxicity of Cry4Aa is primarily pore related. The formation of toxin pores that are highly ion-permeable and also highly cation-selective may enhance the influx of cations and water into the target cell, thereby facilitating the eventual death of mosquito larvae.
Insights
Bacillus thuringiensis subsp. israelensis Cry4Aa toxin
Area of Science:
- Molecular biology
- Biochemistry
- Toxicology
Background:
- Bacillus thuringiensis subsp. israelensis produces Cry4Aa toxin, targeting mosquito larvae.
- Cry4Aa is a pore-forming toxin, with domain I's α4-loop-α5 helical hairpin forming transmembrane pores.
- The precise link between Cry4Aa pore formation and toxicity remains unclear.
Purpose of the Study:
- Investigate the relationship between Cry4Aa pore formation and toxicity.
- Characterize Cry4Aa mutants with altered pore properties.
- Determine the role of pore ion permeability and selectivity in Cry4Aa's insecticidal activity.
Main Methods:
- Constructed Cry4Aa mutants by replacing polar residues in the α4 helix with glutamic acid.
- Performed bioassays on Culex pipiens larvae to assess toxicity.
- Measured ion permeability and selectivity of toxin pores using KCl solutions.
Main Results:
- Most Cry4Aa mutants showed a correlation between toxicity and pore conductance.
- H178E mutant lost significant toxicity but retained moderate pore conductivity.
- N190E mutant had lower conductance than H178E but higher toxicity, with reduced cation selectivity.
Conclusions:
- Cry4Aa toxicity is primarily linked to pore formation.
- Highly ion-permeable and cation-selective pores may enhance cation and water influx, leading to larval death.
- Pore characteristics, beyond simple conductance, influence Cry4Aa's insecticidal efficacy.
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