Controlling Secretion in Artificial Cells with a Membrane AND Gate

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 membr...

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Veröffentlicht in:ACS synthetic biology 2019-06, Vol.8 (6), p.1224-1230
Hauptverfasser: Hilburger, Claire E, Jacobs, Miranda L, Lewis, Kamryn R, Peruzzi, Justin A, Kamat, Neha P
Format: Artikel
Sprache:eng
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Zusammenfassung: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.
ISSN:2161-5063
2161-5063
DOI:10.1021/acssynbio.8b00435