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Prototyping of <i>Bacillus megaterium</i> genetic elements through automated cell-free characterization and Bayesian modelling

Simon J. Moore, James T. MacDonald, Sarah Weinecke, Nicolas Kylilis, Karen M. Polizzi, Rebekka Biedendieck, Paul S. Freemont

Year
2016
Citations
6
Access
Open access

Abstract

Abstract Automation and factorial experimental design together with cell-free in vitro transcription-translation systems offers a new route to the precise characterization of regulatory components. This now presents a new opportunity to illuminate the genetic circuitry from arcane microbial chassis, which are difficult to assess in vivo . One such host, Bacillus megaterium , is a giant microbe with industrial potential as a producer of recombinant proteins at gram per litre scale. Herein, we establish a B. megaterium cell-free platform and characterize a refactored xylose-repressor circuit using acoustic liquid handling robotics to simultaneously monitor 324 reactions in vitro . To accurately describe the system, we have applied a Bayesian statistical approach to infer model parameters by simultaneously using information from multiple experimental conditions. These developments now open up a new approach for the rapid and accurate characterization of genetic circuitry using cell-free reactions from unusual microbial cell chasses for bespoke applications.

Keywords

Bacillus megateriumComputational biologyChassisSynthetic biologyArtificial intelligenceComputer scienceBiological systemBiochemical engineeringBiologyEngineering

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