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bioRxiv · 10.1101/617209

Rational programming of history-dependent logic in cellular populations.

Abstract

Genetic programs operating in an history-dependent fashion are ubiquitous in nature and govern sophisticated processes such as development and differentiation. The ability to systematically and predictably encode such programs would advance the engineering of synthetic organisms and ecosystems with rich signal processing abilities. Here we implement robust, scalable history-dependent programs by distributing the computational labor across a cellular population. Our design is based on recombinase-driven DNA scaffolds expressing different genes according to the order of occurrence of inputs. These multicellular computing systems are highly modular and any program can be built by differential composition of strains containing well-characterized logic scaffolds. We developed an automated workflow that researchers can use to streamline program design and optimization. We anticipate that the history-dependent programs presented here will support many applications using cellular populations for material engineering, biomanufacturing and healthcare.\n\nOne Sentence SummarySystematic and automated frameworks for implementing robust history-dependent genetic programs in cellular populations.

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BibTeXRIS

Zuniga, A., Guiziou, S., Mayonove, P., Ben Meriem, Z., Camacho, M., Moreau, V., Ciandrini, L., Hersen, P., Bonnet, J.. 2019-04-24. Rational programming of history-dependent logic in cellular populations.. https://doi.org/10.1101/617209

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