Living cells harvest energy from their environments to drive the chemical processes that enable life. We introduce a minimal system that operates at similar protein concentrations, metabolic densities, and length scales as living cells. This approach takes advantage of the tendency of phase-separated protein droplets to strongly partition enzymes, while presenting minimal barriers to transport of small molecules across their interface. By dispersing these microreactors in a reservoir of substrate-loaded buffer, we achieve steady states at metabolic densities that match those of the hungriest microorganisms. We further demonstrate the formation of steady pH gradients, capable of driving microscopic flows. Our approach enables the investigati...
There is mounting evidence that enzyme diffusivity is enhanced when the enzyme is catalytically acti...
Living cells possess membraneless organelles formed by liquid–liquid phase separation. With the aim ...
Compartmentalisation and selective transport of molecular species are key aspects of chemical transf...
Living cells harvest energy from their environments to drive the chemical processes that enable life...
Macromolecular crowding plays a critical role in the kinetics of enzymatic reactions. Dynamic compar...
Biological cells need to structure their interior in space and time. One way this is done are conta...
Biomolecular condensates concentrate macromolecules into discrete cellular foci without an encapsula...
The crowded interior of a living cell makes performing experiments on simpler in vitro systems attra...
We report that a cell-sized water droplet (CWD) with a diameter of several tens of microns can serve...
By developing new computational models, we examine how enzymatic reactions on an underlying surface ...
The Min proteins from E.coli position the bacterial cell‐division machinery through pole‐to‐pole osc...
Cells regulate when and where molecular reactions occur; to do this, cells limit the interaction of ...
Disordered proteins and nucleic acids can condense into droplets that resemble the membraneless orga...
Chemically active droplets provide simple models for cell-like systems that can grow and divide. Suc...
The nucleation of protein condensates is a concentration-driven process of assembly. When modeled in...
There is mounting evidence that enzyme diffusivity is enhanced when the enzyme is catalytically acti...
Living cells possess membraneless organelles formed by liquid–liquid phase separation. With the aim ...
Compartmentalisation and selective transport of molecular species are key aspects of chemical transf...
Living cells harvest energy from their environments to drive the chemical processes that enable life...
Macromolecular crowding plays a critical role in the kinetics of enzymatic reactions. Dynamic compar...
Biological cells need to structure their interior in space and time. One way this is done are conta...
Biomolecular condensates concentrate macromolecules into discrete cellular foci without an encapsula...
The crowded interior of a living cell makes performing experiments on simpler in vitro systems attra...
We report that a cell-sized water droplet (CWD) with a diameter of several tens of microns can serve...
By developing new computational models, we examine how enzymatic reactions on an underlying surface ...
The Min proteins from E.coli position the bacterial cell‐division machinery through pole‐to‐pole osc...
Cells regulate when and where molecular reactions occur; to do this, cells limit the interaction of ...
Disordered proteins and nucleic acids can condense into droplets that resemble the membraneless orga...
Chemically active droplets provide simple models for cell-like systems that can grow and divide. Suc...
The nucleation of protein condensates is a concentration-driven process of assembly. When modeled in...
There is mounting evidence that enzyme diffusivity is enhanced when the enzyme is catalytically acti...
Living cells possess membraneless organelles formed by liquid–liquid phase separation. With the aim ...
Compartmentalisation and selective transport of molecular species are key aspects of chemical transf...