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Hierarchical control of enzymatic actuators using DNA-based switchable memories.


ABSTRACT: Inspired by signaling networks in living cells, DNA-based programming aims for the engineering of biochemical networks capable of advanced regulatory and computational functions under controlled cell-free conditions. While regulatory circuits in cells control downstream processes through hierarchical layers of signal processing, coupling of enzymatically driven DNA-based networks to downstream processes has rarely been reported. Here, we expand the scope of molecular programming by engineering hierarchical control of enzymatic actuators using feedback-controlled DNA-circuits capable of advanced regulatory dynamics. We developed a translator module that converts signaling molecules from the upstream network to unique DNA strands driving downstream actuators with minimal retroactivity and support these findings with a detailed computational analysis. We show our modular approach by coupling of a previously engineered switchable memories circuit to downstream actuators based on ?-lactamase and luciferase. To the best of our knowledge, our work demonstrates one of the most advanced DNA-based circuits regarding complexity and versatility.

SUBMITTER: Meijer LHH 

PROVIDER: S-EPMC5714950 | biostudies-literature | 2017 Oct

REPOSITORIES: biostudies-literature

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Hierarchical control of enzymatic actuators using DNA-based switchable memories.

Meijer Lenny H H LHH   Joesaar Alex A   Steur Erik E   Engelen Wouter W   van Santen Rutger A RA   Merkx Maarten M   de Greef Tom F A TFA  

Nature communications 20171024 1


Inspired by signaling networks in living cells, DNA-based programming aims for the engineering of biochemical networks capable of advanced regulatory and computational functions under controlled cell-free conditions. While regulatory circuits in cells control downstream processes through hierarchical layers of signal processing, coupling of enzymatically driven DNA-based networks to downstream processes has rarely been reported. Here, we expand the scope of molecular programming by engineering h  ...[more]

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