Non-equilibrium behaviour in coacervate-based protocells under electric-field-induced excitation
Although numerous strategies are now available to generate rudimentary forms of synthetic cell-like entities, minimal progress has been made in the sustained excitation of artificial protocells under non-equilibrium conditions. Here we demonstrate that the electric field energization of coacervate m...
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Veröffentlicht in: | Nature communications 2016-02, Vol.7 (1), p.10658-10658, Article 10658 |
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Sprache: | eng |
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Zusammenfassung: | Although numerous strategies are now available to generate rudimentary forms of synthetic cell-like entities, minimal progress has been made in the sustained excitation of artificial protocells under non-equilibrium conditions. Here we demonstrate that the electric field energization of coacervate microdroplets comprising polylysine and short single strands of DNA generates membrane-free protocells with complex, dynamical behaviours. By confining the droplets within a microfluidic channel and applying a range of electric field strengths, we produce protocells that exhibit repetitive cycles of vacuolarization, dynamical fluctuations in size and shape, chaotic growth and fusion, spontaneous ejection and sequestration of matter, directional capture of solute molecules, and pulsed enhancement of enzyme cascade reactions. Our results highlight new opportunities for the study of non-equilibrium phenomena in synthetic protocells, provide a strategy for inducing complex behaviour in electrostatically assembled soft matter microsystems and illustrate how dynamical properties can be activated and sustained in microcompartmentalized media.
Synthetic cells are designed to mimic basic life processes, but it is challenging to prepare cells that can persist and operate at non-equilibrium conditions. Here, Yin
et al.
show complex dynamical behaviors of protocells made by exposing polylysine and single-stranded DNA droplets to an electric field. |
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ISSN: | 2041-1723 2041-1723 |
DOI: | 10.1038/ncomms10658 |