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Dynamics of Synthetic Membraneless Organelles in Microfluidic Droplets
Authors:Miriam Linsenmeier  Marie R G Kopp  Fulvio Grigolato  Dr Leonidas Emmanoulidis  Dany Liu  Dominik Zürcher  Dr Maria Hondele  Prof Dr Karsten Weis  Dr Umberto Capasso Palmiero  Prof Dr Paolo Arosio
Institution:1. Department of Chemistry and Applied Biosciences, Institute for Chemical and Bioengineering, ETH Zürich, 8093 Zurich, Switzerland;2. Institute of Molecular Biology and Biophysics, Department of Biology, ETH Zurich, 8093 Zurich, Switzerland;3. Department of Biology, Institute of Biochemistry, ETH Zürich, 8093 Zurich, Switzerland
Abstract:Cells can form membraneless organelles by liquid–liquid phase separation. As these organelles are highly dynamic, it is crucial to understand the kinetics of these phase transitions. Here, we use droplet‐based microfluidics to mix reagents by chaotic advection and observe nucleation, growth, and coarsening in volumes comparable to cells (pL) and on timescales of seconds. We apply this platform to analyze the dynamics of synthetic organelles formed by the DEAD‐box ATPase Dhh1 and RNA, which are associated with the formation of processing bodies in yeast. We show that the timescale of phase separation decreases linearly as the volume of the compartment increases. Moreover, the synthetic organelles coarsen into one single droplet via gravity‐induced coalescence, which can be arrested by introducing a hydrogel matrix that mimics the cytoskeleton. This approach is an attractive platform to investigate the dynamics of compartmentalization in artificial cells.
Keywords:Kinetik  Membranlose Organellen  Mikrofluidik  Phasenü  bergä  nge  Prozesse auß  erhalb des Gleichgewichts
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