TY - JOUR
T1 - Engineering entropy-driven reactions and networks catalyzed by DNA
AU - Zhang, David Yu
AU - Turberfield, Andrew J.
AU - Yurke, Bernard
AU - Winfree, Erik
PY - 2007/11/16
Y1 - 2007/11/16
N2 - Artificial biochemical circuits are likely to play as large a role in biological engineering as electrical circuits have played in the engineering of electromechanical devices. Toward that end, nucleic acids provide a designable substrate for the regulation of biochemical reactions. However, it has been difficult to incorporate signal amplification components. We introduce a design strategy that allows a specified input oligonucleotide to catalyze the release of a specified output oligonucleotide, which in turn can serve as a catalyst for other reactions. This reaction, which is driven forward by the configurational entropy of the released molecule, provides an amplifying circuit element that is simple, fast, modular, composable, and robust. We have constructed and characterized several circuits that amplify nucleic acid signals, including a feedforward cascade with quadratic kinetics and a positive feedback circuit with exponential growth kinetics.
AB - Artificial biochemical circuits are likely to play as large a role in biological engineering as electrical circuits have played in the engineering of electromechanical devices. Toward that end, nucleic acids provide a designable substrate for the regulation of biochemical reactions. However, it has been difficult to incorporate signal amplification components. We introduce a design strategy that allows a specified input oligonucleotide to catalyze the release of a specified output oligonucleotide, which in turn can serve as a catalyst for other reactions. This reaction, which is driven forward by the configurational entropy of the released molecule, provides an amplifying circuit element that is simple, fast, modular, composable, and robust. We have constructed and characterized several circuits that amplify nucleic acid signals, including a feedforward cascade with quadratic kinetics and a positive feedback circuit with exponential growth kinetics.
UR - http://www.scopus.com/inward/record.url?scp=36248972215&partnerID=8YFLogxK
U2 - 10.1126/science.1148532
DO - 10.1126/science.1148532
M3 - Article
C2 - 18006742
AN - SCOPUS:36248972215
SN - 0036-8075
VL - 318
SP - 1121
EP - 1125
JO - Science
JF - Science
IS - 5853
ER -