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The distinct properties of natural and GM cry insecticidal proteins
Jonathan R Latham1, Madeleine Love2, Angelika Hilbeck3
1a The Bioscience Resource Project , Ithaca , NY , USA.
Abstract:
The Cry toxins are a family of crystal-forming proteins produced by the bacterium Bacillus thuringiensis. Their mode of action is thought to be to create pores that disrupt the gut epithelial membranes of juvenile insects. These pores allow pathogen entry into the hemocoel, thereby killing the insect. Genes encoding a spectrum of Cry toxins, including Cry mutants, Cry chimaeras and other Cry derivatives, are used commercially to enhance insect resistance in genetically modified (GM) crops. In most countries of the world, such GM crops are regulated and must be assessed for human and environmental safety. However, such risk assessments often do not test the GM crop or its tissues directly. Instead, assessments rely primarily on historical information from naturally occurring Cry proteins and on data collected on Cry proteins (called 'surrogates') purified from laboratory strains of bacteria engineered to express Cry protein. However, neither surrogates nor naturally occurring Cry proteins are identical to the proteins to which humans or other nontarget organisms are exposed by the production and consumption of GM plants. To-date there has been no systematic survey of these differences. This review fills this knowledge gap with respect to the most commonly grown GM Cry-containing crops approved for international use. Having described the specific differences between natural, surrogate and GM Cry proteins this review assesses these differences for their potential to undermine the reliability of risk assessments. Lastly, we make specific recommendations for improving risk assessments.
Insights
Genetically modified crops use Bacillus thuringiensis Cry toxins for insect resistance. Current safety assessments may be unreliable due to differences between natural, surrogate, and GM Cry proteins.
Area of Science:
- Biochemistry
- Genetics
- Toxicology
Background:
- Bacillus thuringiensis produces Cry toxins that form pores in insect gut membranes, leading to death.
- Genes for Cry toxins and their derivatives are used in genetically modified (GM) crops for insect resistance.
- GM crops undergo safety assessments, but these often rely on surrogate or naturally occurring Cry proteins, not the actual GM crop proteins.
Purpose of the Study:
- To systematically survey differences between natural, surrogate, and GM Cry proteins.
- To assess if these differences impact the reliability of current GM crop risk assessments.
- To provide recommendations for improving GM crop safety evaluations.
Main Methods:
- Literature review and comparative analysis of Cry protein structures and properties.
- Examination of data from risk assessments of commonly grown GM Cry-containing crops.
- Evaluation of potential implications of identified protein differences for non-target organisms.
Main Results:
- Significant differences exist between naturally occurring, surrogate, and GM-produced Cry proteins.
- These discrepancies may compromise the accuracy of current safety assessments for GM crops.
- The review identifies specific variations that warrant closer examination in risk evaluations.
Conclusions:
- Current risk assessment strategies for GM crops may not fully account for variations in Cry proteins.
- There is a need for direct testing of GM crop tissues and proteins.
- Recommendations are proposed to enhance the reliability and accuracy of GM crop safety assessments.
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