Protocells Capable of Generating a Cytoskeleton‐Like Structure from Intracellular Membrane‐Active Artificial Organelles

Author:

Wang Dishi12,Moreno Silvia1,Gao Mengfei3,Guo Jiaqi4,Xu Bing4,Voigt Dagmar5,Voit Brigitte12,Appelhans Dietmar1ORCID

Affiliation:

1. Leibniz‐Institut für Polymerforschung Dresden e.V. Hohe Straße 6 D‐01069 Dresden Germany

2. Organic Chemistry of Polymers Technische Universität Dresden D‐01062 Dresden Germany

3. Max Planck Institute of Molecular Cell Biology and Genetics Pfotenhauer Straße 108 D‐01307 Dresden Germany

4. Department of Chemistry Brandeis University Watham MA 02453 USA

5. Faculty of Biology Technische Universität Dresden D‐01062 Dresden Germany

Abstract

AbstractThe intricate nature of eukaryotic cells with intracellular compartments having differences in component concentration and viscosity in their lumen provides (membrane‐active) enzymes to trigger time‐ and concentration‐dependent processes in the intra‐/extracellular matrix. Herein, membrane‐active, enzyme‐loaded artificial organelles (AOs) are capitalized upon to develop fluidic and stable proteinaceous membrane‐based protocells. AOs in protocells induce the self‐assembly of oligopeptides into an artificial cytoskeleton that underlines their influence on the structure and functionality of protocells. A series of microscopical tools is used to validate the intracellular assembly and distribution of cytoskeleton, the changing protocells morphology, and AOs inclusion within cytoskeletal growth. Thus, the dynamics, diffusion, and viscosity of intracellular components in the presence of cytoskeleton are evaluated by fluorescence tools and enzymatic assay. Membrane‐active alkaline phosphatase in polymersomes as AOs fulfills the requirements of biomimetic eukaryotic cells to trigger intracellular environment, mobility, viscosity, diffusion, and enzymatic activity itself as well as high mechanical stability and high membrane fluidity of protocells. Thus membrane‐active AOs in protocells provide a variable reaction space in a changing intracellular environment and underline their regulatory role in the fabrication of complex protocell architectures and functions. This study contributes significantly to the effective biomimetics of cell‐like structures, shapes, and functions.

Funder

National Institutes of Health

National Sleep Foundation

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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