Research | Streichan Lab
The discipline of physics has had striking success in uncovering quantitative laws governing the inanimate world - just think of celestial mechanics. A comparable understanding of the living world, combining quantitative observation and predictive, mathematical models, is still lacking. Our ambition is to uncover the quantitative laws that govern animal development, holding ourselves to the standards of physics. And just as a solid knowledge of electrodynamics and statics is key for any engineer, a quantitative understanding of morphogenesis opens the door to synthetic developmental biology. Members of our lab work on a diverse set of questions in multiple systems, based on shared technology and expertise. Understanding human organ formation is a major scientific challenge. We develop chip-based culture systems to study the self-organization of micropatterned stem cells, which transform into precise three-dimensional cell-fate patterns and organ shapes. Recently, we used this approach
The Streichan lab studies morphogenesis, the process by which developing multicellular organisms obtain their shape. We combine cutting-edge microscopy and quantitative, physics-inspired analysis and modeling to study how cells dynamically coordinate to generate forces and shape tissues. The discipline of physics has had striking success in uncovering quantitative laws governing the inanimate world - just think of celestial mechanics. A comparable understanding of the living world, combining quantitative observation and predictive, mathematical models, is still lacking. Our ambition is to unco
Explore this link on the map →related reading
- Roadmap for the multiscale coupling of biochemical and mechanical signals during development - IOPscienceiopscience.iop.org
- Patterning and Morphogenesis From Cells to Organisms: Progress, Common Principles and New Challenges - PMCncbi.nlm.nih.gov
- Forced into shape: Mechanical forces in Drosophila development and homeostasis - PMCncbi.nlm.nih.gov
- Programmed and self-organized flow of information during morphogenesis | Nature Reviews Molecular Cell Biologynature.com
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