| Literature DB >> 29266672 |
Philipp Glock1, Johannes Broichhagen2,3, Simon Kretschmer1, Philipp Blumhardt1, Jonas Mücksch1, Dirk Trauner2,4, Petra Schwille1.
Abstract
Patterns formed by reaction and diffusion are the foundation for many phenomena in biology. However, the experimental study of reaction-diffusion (R-D) systems has so far been dominated by chemical oscillators, for which many tools are available. In this work, we developed a photoswitch for the Min system of Escherichia coli, a versatile biological in vitro R-D system consisting of the antagonistic proteins MinD and MinE. A MinE-derived peptide of 19 amino acids was covalently modified with a photoisomerizable crosslinker based on azobenzene to externally control peptide-mediated depletion of MinD from the membrane. In addition to providing an on-off switch for pattern formation, we achieve frequency-locked resonance with a precise 2D spatial memory, thus allowing new insights into Min protein action on the membrane. Taken together, we provide a tool to study phenomena in pattern formation using biological agents.Entities:
Keywords: chemical oscillators; optical control; pattern formation; photoswitches; synthetic biology
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Year: 2018 PMID: 29266672 DOI: 10.1002/anie.201712002
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336