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Antagonism between Cry1Ac1 and Cyt1A1 toxins of bacillus thuringiensis
del Rincon-Castro MC1, Barajas-Huerta, Ibarra
1Departamento de Biotecnologia y Bioquimica, Centro de Investigacion y de Estudios Avanzados del IPN, 36500 Irapuato, Gto., Mexico.
Abstract:
Most strains of the insecticidal bacterium Bacillus thuringiensis have a combination of different protoxins in their parasporal crystals. Some of the combinations clearly interact synergistically, like the toxins present in B. thuringiensis subsp. israelensis. In this paper we describe a novel joint activity of toxins from different strains of B. thuringiensis. In vitro bioassays in which we used pure, trypsin-activated Cry1Ac1 proteins from B. thuringiensis subsp. kurstaki, Cyt1A1 from B. thuringiensis subsp. israelensis, and Trichoplusia ni BTI-Tn5B1-4 cells revealed contrasting susceptibility characteristics. The 50% lethal concentrations (LC50s) were estimated to be 4,967 of Cry1Ac1 per ml of medium and 11.69 ng of Cyt1A1 per ml of medium. When mixtures of these toxins in different proportions were assayed, eight different LC50s were obtained. All of these LC50s were significantly higher than the expected LC50s of the mixtures. In addition, a series of bioassays were performed with late first-instar larvae of the cabbage looper and pure Cry1Ac1 and Cyt1A1 crystals, as well as two different combinations of the two toxins. The estimated mean LC50 of Cry1Ac1 was 2.46 ng/cm2 of diet, while Cyt1A1 crystals exhibited no toxicity, even at very high concentrations. The estimated mean LC50s of Cry1Ac1 crystals were 15.69 and 19.05 ng per cm2 of diet when these crystals were mixed with 100 and 1,000 ng of Cyt1A1 crystals per cm2 of diet, respectively. These results indicate that there is clear antagonism between the two toxins both in vitro and in vivo. Other joint-action analyses corroborated these results. Although this is the second report of antagonism between B. thuringiensis toxins, our evidence is the first evidence of antagonism between toxins from different subspecies of B. thuringiensis (B. thuringiensis subsp. kurstaki and B. thuringiensis subsp. israelensis) detected both in vivo and in vitro. Some possible explanations for this relationship are discussed.
Insights
Toxins from different Bacillus thuringiensis strains, Cry1Ac1 and Cyt1A1, show antagonism, not synergy. This insecticidal bacterium research reveals unexpected negative interactions between these Cry1Ac1 and Cyt1A1 toxins in both lab and field tests.
Area of Science:
- Microbiology
- Insect Toxicology
- Molecular Biology
Background:
- Bacillus thuringiensis (Bt) produces insecticidal crystal proteins (protoxins).
- Bt toxins often exhibit synergistic interactions, enhancing insecticidal activity.
- Synergism is well-documented within strains, but interactions between different Bt subspecies are less understood.
Purpose of the Study:
- To investigate the joint activity of Cry1Ac1 from B. thuringiensis subsp. kurstaki and Cyt1A1 from B. thuringiensis subsp. israelensis.
- To determine if these toxins exhibit synergistic or antagonistic interactions.
- To analyze these interactions both in vitro and in vivo.
Main Methods:
- In vitro bioassays using purified, trypsin-activated Cry1Ac1 and Cyt1A1 proteins against Trichoplusia ni BTI-Tn5B1-4 cells.
- In vivo bioassays using late first-instar larvae of the cabbage looper (Trichoplusia ni) with pure and mixed Cry1Ac1 and Cyt1A1 crystals.
- Calculation of 50% lethal concentrations (LC50s) and analysis of joint-action effects.
Main Results:
- In vitro assays showed Cry1Ac1 LC50 of 4,967 ng/ml and Cyt1A1 LC50 of 11.69 ng/ml.
- Mixtures of Cry1Ac1 and Cyt1A1 in vitro resulted in LC50s significantly higher than expected, indicating antagonism.
- In vivo assays revealed antagonism, with Cyt1A1 showing no toxicity alone but reducing Cry1Ac1 efficacy when combined.
Conclusions:
- Cry1Ac1 and Cyt1A1 toxins from different B. thuringiensis subspecies exhibit significant antagonism.
- This is the first report of antagonism between toxins from B. thuringiensis subsp. kurstaki and B. thuringiensis subsp. israelensis.
- The findings challenge assumptions about toxin interactions and have implications for developing novel biopesticides.
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