2013
Programmable chemical controllers made from DNA
Abstract: Biological organisms use complex molecular networks to navigate their environment and regulate their internal state. The development of synthetic systems with similar capabilities could lead to applications such as smart therapeutics or fabrication methods based on self-organization. To achieve this, molecular control circuits need to be engineered to perform integrated sensing, computation and actuation. Here we report a DNA-based technology for implementing the computational core of such controllers. We use …
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Cited by 510 publications
(506 citation statements)
References 72 publications
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“… 2010 ), as recently demonstrated experimentally in Chen et al. ( 2013 ), the proposed designs are in principle implementable, and we have confirmed this in theory by modelling them in the two-domain setting (Cardelli 2010 ) using Visual DSD (Phillips and Cardelli 2009 ; Lakin et al. 2011 ).…”
Section: Discussionsupporting
confidence: 83%
“… 2010 ), as recently demonstrated experimentally in Chen et al. ( 2013 ), the proposed designs are in principle implementable, and we have confirmed this in theory by modelling them in the two-domain setting (Cardelli 2010 ) using Visual DSD (Phillips and Cardelli 2009 ; Lakin et al. 2011 ).…”
Section: Discussionsupporting
confidence: 83%
“…3a,b,e). When using the experimentally calibrated rates from [17], we also found a similar pattern in the absence of leaks (Fig. 3c,e).…”
Section: Wave Propagation In An Autocatalytic Circuitsupporting
confidence: 68%
“…However, the protocol takes longer to stabilize, up to O(n) time, since it does not stabilize until UniqueID stabilizes. 15 The next theorem shows a fast expected convergence time, and it completes the second portion of the main result, Theorem 3.1. First we establish some other claims necessary to prove Theorem 3.15.…”
Section: Exactcounting Converges In Fast Expected Timesupporting
confidence: 63%
