Coacervation is liquid–liquid phase separation ubiquitous in industrial applications and cellular biology. Inspired by cellular manipulation of coacervate droplets such as P granules, we report here a regulatory strategy to manipulate synthetic coacervation in a spatiotemporally controllable manner. Two oppositely charged small molecules are shown to phase separate into coacervate droplets in water as a result of electrostatic attraction, hydrophobic effect, and entropy. We identify a down regulator, β-cyclodextrin, to disrupt the hydrophobic effect, thus dissolving the droplets, and an up regulator, amylase, to decompose β-cyclodextrin, thus restoring the droplets. The regulation kinetics is followed in real time on a single-droplet level,...
Coacervation has emerged as a prevalent mechanism to compartmentalize biomolecules in living cells. ...
Although complex coacervate microdroplets derived from associative phase separation of counter-charg...
Polyelectrolyte/nucleotide multiphase complex coacervate droplets are produced by internalized aqueo...
Coacervation is liquid–liquid phase separation ubiquitous in industrial applications and cellular bi...
Coacervation is liquid-liquid phase separation ubiquitous in industrial applications and cellular bi...
In situ, reversible coacervate formation within lipid vesicles represents a key step in the developm...
Cells organize their interior through membrane-bound organelles and through membraneless condensates...
Recent developments suggest that the phase transition of natural and synthetic biomacromolecules rep...
The chemical principles behind many vital processes are an open question in science. Be it to unders...
Liquid-liquid phase separation (LLPS), especially coacervation, plays a crucial role in cell biology...
In situ, reversible coacervate formation within lipid vesicles represents a key step in the developm...
Cells have evolved to be self-sustaining compartmentalized systems that consist of many thousands of...
Coacervation has emerged as a prevalent mechanism to compartmentalize biomolecules in living cells. ...
Although complex coacervate microdroplets derived from associative phase separation of counter-charg...
Polyelectrolyte/nucleotide multiphase complex coacervate droplets are produced by internalized aqueo...
Coacervation is liquid–liquid phase separation ubiquitous in industrial applications and cellular bi...
Coacervation is liquid-liquid phase separation ubiquitous in industrial applications and cellular bi...
In situ, reversible coacervate formation within lipid vesicles represents a key step in the developm...
Cells organize their interior through membrane-bound organelles and through membraneless condensates...
Recent developments suggest that the phase transition of natural and synthetic biomacromolecules rep...
The chemical principles behind many vital processes are an open question in science. Be it to unders...
Liquid-liquid phase separation (LLPS), especially coacervation, plays a crucial role in cell biology...
In situ, reversible coacervate formation within lipid vesicles represents a key step in the developm...
Cells have evolved to be self-sustaining compartmentalized systems that consist of many thousands of...
Coacervation has emerged as a prevalent mechanism to compartmentalize biomolecules in living cells. ...
Although complex coacervate microdroplets derived from associative phase separation of counter-charg...
Polyelectrolyte/nucleotide multiphase complex coacervate droplets are produced by internalized aqueo...