Noise control for molecular computing
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Radek Erban | David F Anderson | Tomislav Plesa | Konstantinos C Zygalakis | David F. Anderson | K. Zygalakis | R. Erban | Tomislav Pleša | Tomislav Plesa | Radek Erban
[1] S. Jonathan Chapman,et al. Analysis of a Stochastic Chemical System Close to a SNIPER Bifurcation of Its Mean-Field Model , 2008, SIAM J. Appl. Math..
[2] Thomas H Segall-Shapiro,et al. Creation of a Bacterial Cell Controlled by a Chemically Synthesized Genome , 2010, Science.
[3] Teruo Fujii,et al. Predator-prey molecular ecosystems. , 2013, ACS nano.
[4] John J. Tyson,et al. Potential Role of a Bistable Histidine Kinase Switch in the Asymmetric Division Cycle of Caulobacter crescentus , 2013, PLoS Comput. Biol..
[5] Konstantinos Michalodimitrakis,et al. Noise in transcription negative feedback loops: simulation and experimental analysis , 2006, Molecular systems biology.
[6] Christian A. Yates,et al. Inherent noise can facilitate coherence in collective swarm motion , 2009, Proceedings of the National Academy of Sciences.
[7] M. Sedlák,et al. Production of ethanol from cellulosic biomass hydrolysates using genetically engineered saccharomyces yeast capable of cofermenting glucose and xylose , 2004, Applied biochemistry and biotechnology.
[8] M. Elowitz,et al. A synthetic oscillatory network of transcriptional regulators , 2000, Nature.
[9] Mads Kærn,et al. A chance at survival: gene expression noise and phenotypic diversification strategies , 2009, Molecular microbiology.
[10] J. Collins,et al. Construction of a genetic toggle switch in Escherichia coli , 2000, Nature.
[11] T. Kurtz. The Relationship between Stochastic and Deterministic Models for Chemical Reactions , 1972 .
[12] Timothy B. Stockwell,et al. Complete Chemical Synthesis, Assembly, and Cloning of a Mycoplasma genitalium Genome , 2008, Science.
[13] Huimin Zhao,et al. Synthetic Biology for Therapeutic Applications , 2014, Molecular pharmaceutics.
[14] Timothy S. Ham,et al. Production of the antimalarial drug precursor artemisinic acid in engineered yeast , 2006, Nature.
[15] Christopher A. Voigt,et al. Environmentally controlled invasion of cancer cells by engineered bacteria. , 2006, Journal of molecular biology.
[16] E. Shapiro,et al. An autonomous molecular computer for logical control of gene expression , 2004, Nature.
[17] Flavio Romano,et al. Modelling toehold-mediated RNA strand displacement. , 2014, Biophysical journal.
[18] E. Winfree,et al. Diversity in the dynamical behaviour of a compartmentalized programmable biochemical oscillator. , 2014, Nature chemistry.
[19] W. Ebeling. Stochastic Processes in Physics and Chemistry , 1995 .
[20] Luca Cardelli,et al. Programmable chemical controllers made from DNA. , 2013, Nature nanotechnology.
[21] A. Arkin,et al. Towards synthetic biological approaches to resource utilization on space missions , 2015, Journal of The Royal Society Interface.
[22] E. Andrianantoandro,et al. Synthetic biology: new engineering rules for an emerging discipline , 2006, Molecular systems biology.
[23] Jay D. Keasling,et al. Production of amorphadiene in yeast, and its conversion to dihydroartemisinic acid, precursor to the antimalarial agent artemisinin , 2012, Proceedings of the National Academy of Sciences.
[24] Jeremy Minshull,et al. Engineering the Salmonella type III secretion system to export spider silk monomers , 2009, Molecular systems biology.
[25] G Sczakiel,et al. Dissociation of long-chain duplex RNA can occur via strand displacement in vitro: biological implications. , 1996, Nucleic acids research.
[26] Luca Cardelli,et al. Programming discrete distributions with chemical reaction networks , 2016, Natural Computing.
[27] D. Endy. Foundations for engineering biology , 2005, Nature.
[28] W. Klonowski. Simplifying principles for chemical and enzyme reaction kinetics. , 1983, Biophysical chemistry.
[29] Ralf Jungmann,et al. From DNA nanotechnology to synthetic biology , 2008, HFSP journal.
[30] G. Seelig,et al. DNA as a universal substrate for chemical kinetics , 2010, Proceedings of the National Academy of Sciences.
[31] Wei Li,et al. A cargo-sorting DNA robot , 2017, Science.
[32] Georg Seelig,et al. A spatially localized architecture for fast and modular DNA computing. , 2017, Nature nanotechnology.
[33] Friedrich C Simmel,et al. Robustness of localized DNA strand displacement cascades. , 2014, ACS nano.
[34] Jun Ohkubo,et al. Transition Phenomena Induced by Internal Noise and Quasi-Absorbing State , 2007, 0709.0155.
[35] C. Hutchison,et al. Essential genes of a minimal bacterium. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[36] Kunihiko Kaneko,et al. Theoretical analysis of discreteness-induced transition in autocatalytic reaction dynamics. , 2015, Physical review. E, Statistical, nonlinear, and soft matter physics.
[37] Radek Erban,et al. Test Models for Statistical Inference: Two-Dimensional Reaction Systems Displaying Limit Cycle Bifurcations and Bistability , 2016, 1607.07738.
[38] Teruo Fujii,et al. High-throughput and long-term observation of compartmentalized biochemical oscillators. , 2015, Chemical communications.
[39] Jehoshua Bruck,et al. Synthesizing Stochasticity in Biochemical Systems , 2007, 2007 44th ACM/IEEE Design Automation Conference.
[40] D. Deamer,et al. A giant step towards artificial life? , 2005, Trends in biotechnology.
[41] D. Gillespie. Exact Stochastic Simulation of Coupled Chemical Reactions , 1977 .
[42] RADEK ERBAN,et al. Noise-induced mixing and multimodality in reaction networks , 2018, European Journal of Applied Mathematics.
[43] Tomislav Plesa,et al. Stochastic approximation of high-molecular by bi-molecular reactions , 2018, 1811.02766.
[44] Jonathan Bath,et al. A DNA-based molecular motor that can navigate a network of tracks. , 2012, Nature nanotechnology.
[45] Noel Sharkey. Robotics: Enter the evolvabot , 2012, Nature.
[46] Thomas Wilhelm,et al. Chemical systems consisting only of elementary steps – a paradigma for nonlinear behavior , 2000 .
[47] Louise Dyson,et al. Noise-induced bistable states and their mean switching time in foraging colonies. , 2013, Physical review letters.
[48] R. Weiss,et al. Programmed population control by cell–cell communication and regulated killing , 2004, Nature.
[49] S. Leibler,et al. Mechanisms of noise-resistance in genetic oscillators , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[50] Radek Erban,et al. Chemical reaction systems with a homoclinic bifurcation: an inverse problem , 2015, Journal of Mathematical Chemistry.
[51] Erik Winfree,et al. Enzyme-free nucleic acid dynamical systems , 2017, Science.
[52] Thomas G. Kurtz,et al. Stochastic Analysis of Biochemical Systems , 2015 .
[53] Philip Ball,et al. Synthetic biology for nanotechnology , 2004 .
[54] Luca Cardelli,et al. Two-domain DNA strand displacement , 2010, Mathematical Structures in Computer Science.
[55] Péter Érdi,et al. Mathematical Models of Chemical Reactions: Theory and Applications of Deterministic and Stochastic Models , 1989 .
[56] T. Fujii,et al. High-resolution mapping of bifurcations in nonlinear biochemical circuits. , 2016, Nature chemistry.
[57] Matthew Cook,et al. Computation with finite stochastic chemical reaction networks , 2008, Natural Computing.
[58] A. Duncan,et al. Noise-induced multistability in chemical systems: Discrete versus continuum modeling. , 2014, Physical review. E, Statistical, nonlinear, and soft matter physics.