Speed regulation of genetic cascades allows for evolvability in the body plan specification of insects.
basic_science · Level V
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- Record sourced from PubMed, PMID 28973882.
- Also identified by DOI 10.1073/pnas.1702478114 and PMC identifier 5642680.
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Abstract
During the anterior-posterior fate specification of insects, anterior fates arise in a nonelongating tissue (called the "blastoderm"), and posterior fates arise in an elongating tissue (called the "germband"). However, insects differ widely in the extent to which anterior-posterior fates are specified in the blastoderm versus the germband. Here we present a model in which patterning in both the blastoderm and germband of the beetle <i>Tribolium castaneum</i> is based on the same flexible mechanism: a gradient that modulates the speed of a genetic cascade of gap genes, resulting in the induction of sequential kinematic waves of gap gene expression. The mechanism is flexible and capable of patterning both elongating and nonelongating tissues, and hence converting blastodermal to germband fates and vice versa. Using RNAi perturbations, we found that blastodermal fates could be shifted to the germband, and germband fates could be generated in a blastoderm-like morphology. We also suggest a molecular mechanism underlying our model, in which gradient levels regulate the switch between two enhancers: One enhancer is responsible for sequential gene activation, and the other is responsible for freezing temporal rhythms into spatial patterns. This model is consistent with findings in <i>Drosophila melanogaster</i>, where gap genes were found to be regulated by two nonredundant "shadow" enhancers.
Medical subject headings
- Body Patterning
- Embryo, Nonmammalian
- Gene Expression Regulation, Developmental
- Insect Proteins
- Tribolium