Interfacial Assembly of Bacterial Microcompartment Shell Proteins in Aqueous Multiphase Systems

Author:

Abeysinghe A. A. Dharani T.1ORCID,Young Eric J.23ORCID,Rowland Andrew T.1,Dunshee Lucas C.45,Urandur Sandeep45,Sullivan Millicent O.45,Kerfeld Cheryl A.2367ORCID,Keating Christine D.1ORCID

Affiliation:

1. Department of Chemistry Pennsylvania State University State College PA 16801 USA

2. Environmental Genomics and Systems Biology Division Lawrence Berkeley National Laboratory Berkeley CA 94720 USA

3. Department of Biochemistry and Molecular Biology Michigan State University East Lansing MI 48824 USA

4. Department of Chemical and Biomolecular Engineering University of Delaware Newark DE 19716 USA

5. Department of Biomedical Engineering University of Delaware Newark DE 19716 USA

6. Molecular Biophysics and Integrated Bioimaging Division Lawrence Berkeley National Laboratory Berkeley CA 94720 USA

7. MSU‐DOE Plant Research Laboratory Michigan State University East Lansing MI 48824 USA

Abstract

AbstractCompartments are a fundamental feature of life, based variously on lipid membranes, protein shells, or biopolymer phase separation. Here, this combines self‐assembling bacterial microcompartment (BMC) shell proteins and liquid‐liquid phase separation (LLPS) to develop new forms of compartmentalization. It is found that BMC shell proteins assemble at the liquid‐liquid interfaces between either 1) the dextran‐rich droplets and PEG‐rich continuous phase of a poly(ethyleneglycol)(PEG)/dextran aqueous two‐phase system, or 2) the polypeptide‐rich coacervate droplets and continuous dilute phase of a polylysine/polyaspartate complex coacervate system. Interfacial protein assemblies in the coacervate system are sensitive to the ratio of cationic to anionic polypeptides, consistent with electrostatically‐driven assembly. In both systems, interfacial protein assembly competes with aggregation, with protein concentration and polycation availability impacting coating. These two LLPS systems are then combined to form a three‐phase system wherein coacervate droplets are contained within dextran‐rich phase droplets. Interfacial localization of BMC hexameric shell proteins is tunable in a three‐phase system by changing the polyelectrolyte charge ratio. The tens‐of‐micron scale BMC shell protein‐coated droplets introduced here can accommodate bioactive cargo such as enzymes or RNA and represent a new synthetic cell strategy for organizing biomimetic functionality.

Funder

National Science Foundation

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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