Dynamic forces drive cell and organ morphology changes during embryonic development
Abstract
Cells, tissues, and organs must change shape in precise ways during embryonic development to execute their functions. Multiple mechanisms including biochemical signaling pathways and biophysical forces help drive these morphology changes, but it has been difficult to tease apart their contributions, especially from tissue-scale dynamic forces that are typically ignored. We use a combination of mathematical models and in vivo experiments to study a simple organ in the zebrafish embryo called Kupffer’s vesicle (KV). Modeling indicates that dynamic forces generated by tissue movements in the embryo produce shape changes in KV that are observed during development. Laser ablations in the zebrafish embryo that alter these forces result in altered organ shapes matching model predictions. These results demonstrate that dynamic forces sculpt cell and organ shape during embryo development.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (9)
Raj Kumar Manna
Department of Physics, Syracuse University
Emma M. Retzlaff
Department of Cell and Developmental Biology, State University of New York Upstate Medical University
Anna Maria Hinman
Department of Cell and Developmental Biology, State University of New York Upstate Medical University
Yiling Lan
BioInspired Institute, Syracuse University
Osama Abdel-Razek
Department of Cell and Developmental Biology, State University of New York Upstate Medical University
Mike Bates
Department of Biology, Syracuse University
Heidi Hehnly
BioInspired Institute, Syracuse University
Jeffrey D. Amack
BioInspired Institute, Syracuse University
M. Lisa Manning
Department of Physics, Syracuse University