Cell Free Expression in Proteinosomes Prepared from Native Protein‐PNIPAAm Conjugates

Author:

Gao Mengfei1,Wang Dishi23,Wilsch‐Bräuninger Michaela1,Leng Weihua1,Schulte Jonathan4,Morgner Nina4,Appelhans Dietmar23,Tang T‐Y. Dora15ORCID

Affiliation:

1. Max Planck Institute of Molecular Cell Biology and Genetics Pfotenhauerstrasse 108 01307 Dresden Germany

2. Leibniz‐Institut für Polymerforschung Dresden e.V. Hohe Strasse 6 01069 Dresden Germany

3. Organic Chemistry of Polymers Technische Universität Dresden D‐01602 Dresden Germany

4. Goethe Universität Frankfurt Institute of physical and theoretical chemistry Max‐von‐Lauestrasse 13 60438 Frankfurt am Main Germany

5. Saarland University Synthetic biology Department of Biology Campus B2.2 66123 Saarbrücken Germany

Abstract

AbstractTowards the goal of building synthetic cells from the bottom‐up, the establishment of micrometer‐sized compartments that contain and support cell free transcription and translation that couple cellular structure to function is of critical importance. Proteinosomes, formed from crosslinked cationized protein‐polymer conjugates offer a promising solution to membrane‐bound compartmentalization with an open, semi‐permeable membrane. Critically, to date, there has been no demonstration of cell free transcription and translation within water‐in‐water proteinosomes. Herein, a novel approach to generate proteinosomes that can support cell free transcription and translation is presented. This approach generates proteinosomes directly from native protein‐polymer (BSA‐PNIPAAm) conjugates. These native proteinosomes offer an excellent alternative as a synthetic cell chassis to other membrane bound compartments. Significantly, the native proteinosomes are stable under high salt conditions that enables the ability to support cell free transcription and translation and offer enhanced protein expression compared to proteinosomes prepared from traditional methodologies. Furthermore, the integration of native proteinosomes into higher order synthetic cellular architectures with membrane free compartments such as liposomes is demonstrated. The integration of bioinspired architectural elements with the central dogma is an essential building block for realizing minimal synthetic cells and is key for exploiting artificial cells in real‐world applications.

Funder

Bundesministerium für Bildung und Forschung

Deutsche Forschungsgemeinschaft

Max-Planck-Gesellschaft

Volkswagen Foundation

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Biomaterials,Bioengineering,Biotechnology

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