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1.
bioRxiv ; 2021 Apr 20.
Article in English | MEDLINE | ID: mdl-33907743

ABSTRACT

The COVID-19 pandemic has demonstrated the need for exploring different diagnostic and therapeutic modalities to tackle future viral threats. In this vein, we propose the idea of sentinel cells, cellular biosensors capable of detecting viral antigens and responding to them with customizable responses. Using SARS-CoV-2 as a test case, we developed a live cell sensor (SARSNotch) using a de novo-designed protein binder against the SARS-CoV-2 Spike protein. SARSNotch is capable of driving custom genetically-encoded payloads in immortalized cell lines or in primary T lymphocytes in response to purified SARS-CoV-2 Spike or in the presence of Spike-expressing cells. Furthermore, SARSNotch is functional in a cellular system used in directed evolution platforms for development of better binders or therapeutics. In keeping with the rapid dissemination of scientific knowledge that has characterized the incredible scientific response to the ongoing pandemic, we extend an open invitation for others to make use of and improve SARSNotch sentinel cells in the hopes of unlocking the potential of the next generation of smart antiviral therapeutics.

2.
ACS Synth Biol ; 8(6): 1224-1230, 2019 06 21.
Article in English | MEDLINE | ID: mdl-31051071

ABSTRACT

The assembly of channel proteins into vesicle membranes is a useful strategy to control activities of vesicle-based systems. Here, we developed a membrane AND gate that responds to both a fatty acid and a pore-forming channel protein to induce the release of encapsulated cargo. We explored how membrane composition affects the functional assembly of α-hemolysin into phospholipid vesicles as a function of oleic acid content and α-hemolysin concentration. We then showed that we could induce α-hemolysin assembly when we added oleic acid micelles to a specific composition of phospholipid vesicles. Finally, we demonstrated that our membrane AND gate could be coupled to a gene expression system. Our study provides a new method to control the temporal dynamics of vesicle permeability by controlling when the functional assembly of a channel protein into synthetic vesicles occurs. Furthermore, a membrane AND gate that utilizes membrane-associating biomolecules introduces a new way to implement Boolean logic that should complement genetic logic circuits and ultimately enhance the capabilities of artificial cellular systems.


Subject(s)
Artificial Cells , Membrane Proteins , Synthetic Biology/methods , Artificial Cells/chemistry , Artificial Cells/cytology , Artificial Cells/metabolism , Cell-Free System , Gene Regulatory Networks , Hemolysin Proteins/chemistry , Hemolysin Proteins/metabolism , Membrane Proteins/chemistry , Membrane Proteins/metabolism , Oleic Acid/chemistry , Oleic Acid/metabolism , Phosphatidylcholines/chemistry , Phosphatidylcholines/metabolism , Protein Biosynthesis
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