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The Power of Simplicity: Sea Urchin Embryos as in Vivo Developmental Models for Studying Complex Cell-to-cell Signaling Network Interactions
Published on: February 16, 2017
Rapid molecular evolution across amniotes of the IIS/TOR network
Suzanne E McGaugh1, Anne M Bronikowski2, Chih-Horng Kuo3
1Department of Ecology, Evolution, and Behavior, University of Minnesota, Saint Paul, MN 55108; smcgaugh@umn.edu abroniko@iastate.edu chk@gate.sinica.edu.tw tschwartz@uab.edu.
The insulin/insulin-like signaling and target of rapamycin (IIS/TOR) network evolved rapidly between reptiles and mammals. Key IIS/TOR genes show accelerated evolution and positive selection, suggesting functional divergence in these amniote clades.
Area of Science:
- Evolutionary biology
- Genomics
- Molecular biology
Background:
- The insulin/insulin-like signaling and target of rapamycin (IIS/TOR) network is crucial for regulating lifespan, reproduction, metabolic diseases, cancer, and aging.
- Comparative analyses of the IIS/TOR network have been largely restricted to invertebrates and mammals, leaving significant gaps in our understanding of its evolution across vertebrates.
Purpose of the Study:
- To conduct an extensive evolutionary analysis of the IIS/TOR network across 66 amniotes, including newly generated transcriptomes from nonavian reptiles.
- To investigate molecular evolution, evolutionary rates, and signatures of selection within the IIS/TOR network in reptiles and mammals.
Main Methods:
- Generated 18 new transcriptomes from nonavian reptiles.
- Performed evolutionary analysis of the IIS/TOR network across 66 amniotes using available genomes and transcriptomes.
- Analyzed evolutionary rates of IIS/TOR genes, including critical nodes like insulin receptor substrate (IRS) and phosphatidylinositol 3-kinase (PI3K).
- Identified signatures of positive selection and coevolution within the IIS/TOR extracellular network.
Main Results:
- Uncovered rapid and extensive molecular evolution of the IIS/TOR network between reptiles and mammals.
- Observed divergent evolutionary rates for IIS/TOR network genes, with extracellular network genes exhibiting exceptionally fast rates compared to the rest of the genome.
- Found evidence of positive selection and coevolution, particularly on hormone-receptor binding surfaces (IGF1, IGF1R, INSR in reptiles; IGF2 in mammals) and reptile IGF2R.
- Suggests that key IIS/TOR paralogs have undergone sub- or neofunctionalization between reptiles and mammals.
Conclusions:
- The IIS/TOR network shows significant molecular evolution and adaptation between reptiles and mammals.
- Accelerated evolution and positive selection on hormone-receptor binding sites indicate functional divergence in IIS/TOR signaling pathways.
- These evolutionary changes likely contribute to fundamental life history and physiological differences observed between these major amniote sister clades.
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