4.8 Article

Self-Regulated and Bidirectional Communication in Synthetic Cell Communities

Journal

ACS NANO
Volume 17, Issue 10, Pages 8992-9002

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.2c09908

Keywords

synthetic cells; adaptive; bidirectional communication; chemiluminescence; self-regulation

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Researchers have developed adaptive two-way signaling between synthetic cells based on lipid vesicles. This signaling system utilizes the temporal dynamics of signal production and adhesion between cells to regulate communication and enable bidirectional exchange.
Cell-to-cell communication is not limited to a sender releasing a signaling molecule and a receiver perceiving it but is often self-regulated and bidirectional. Yet, in communities of synthetic cells, such features that render communication efficient and adaptive are missing. Here, we report the design and implementation of adaptive two-way signaling with lipid-vesicle based synthetic cells. The first layer of self-regulation derives from coupling the temporal dynamics of the signal, H2O2, production in the sender to adhesions between sender and receiver cells. This way the receiver stays within the signaling range for the duration sender produces the signal and detaches once the signal fades. Specifically, H2O2 acts as both a forward signal and a regulator of the adhesions by activating photoswitchable proteins at the surface for the duration of the chemiluminescence. The second layer of self-regulation arises when the adhesions render the receiver permeable and trigger the release of a backward signal, resulting in bidirectional exchange. These design rules provide a concept for engineering multicellular systems with adaptive communication.

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