Growth and Division in a Dynamic Protocell Model
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Roberto Serra | Marco Villani | Timoteo Carletti | Chiara Damiani | Alessandro Filisetti | Alex Graudenzi | R. Serra | M. Villani | C. Damiani | A. Graudenzi | T. Carletti | A. Filisetti
[1] Pasquale Stano,et al. Approaches to semi-synthetic minimal cells: a review , 2005, Naturwissenschaften.
[2] Roberto Serra,et al. A stochastic model of autocatalytic reaction networks , 2012, Theory in Biosciences.
[3] Kenji Ishida. Stochastic Model for Autocatalytic Reaction , 1969 .
[4] N. Wagner,et al. Symmetry and order in systems chemistry. , 2009, The Journal of chemical physics.
[5] Steen Rasmussen,et al. Emergence of protocellular growth laws , 2007, Philosophical Transactions of the Royal Society B: Biological Sciences.
[6] Peter Schuster,et al. A principle of natural self-organization , 1977, Naturwissenschaften.
[7] Roberto Serra,et al. The role of energy in a stochastic model of the emergence of autocatalytic sets , 2011, ECAL.
[8] D. Bartel,et al. Synthesizing life : Paths to unforeseeable science & technology , 2001 .
[9] Sheref S. Mansy,et al. Model Protocells from Single-Chain Lipids , 2009, International journal of molecular sciences.
[10] Y. Pilpel,et al. Graded Autocatalysis Replication Domain (GARD): Kinetic Analysis of Self-Replication in Mutually Catalytic Sets , 1998, Origins of life and evolution of the biosphere.
[11] Kunihiko Kaneko,et al. Life: An Introduction to Complex Systems Biology , 2006 .
[12] E. Conklin. PROBLEMS OF BIOLOGY. , 1898, Science.
[13] P. Stadler,et al. Dynamics of autocatalytic reaction networks. IV: Inhomogeneous replicator networks. , 1991, Bio Systems.
[14] Roberto Serra,et al. The role of backward reactions in a stochastic model of catalytic reaction networks , 2013, ECAL.
[15] Fabio Mavelli,et al. Theoretical conditions for the stationary reproduction of model protocells. , 2013, Integrative biology : quantitative biosciences from nano to macro.
[16] Wim Hordijk,et al. The Structure of Autocatalytic Sets: Evolvability, Enablement, and Emergence , 2012, Acta biotheoretica.
[17] Pasquale Stano,et al. Achievements and open questions in the self-reproduction of vesicles and synthetic minimal cells. , 2010, Chemical communications.
[18] S. A. Kauffman,et al. Autocatalytic sets of proteins , 1986, Origins of life and evolution of the biosphere.
[19] Mike A. Steel,et al. Autocatalytic Sets and the Origin of Life , 2010, Entropy.
[20] Katarzyna P. Adamala,et al. Competition between model protocells driven by an encapsulated catalyst. , 2013, Nature chemistry.
[21] Doron Lancet,et al. Multispecies population dynamics of prebiotic compositional assemblies. , 2014, Journal of theoretical biology.
[22] D. Bartel,et al. Synthesizing life , 2001, Nature.
[23] R. J. Bagley,et al. Spontaneous emergence of a metabolism , 1990 .
[24] Hugues Bersini,et al. Autocatalysis: At the Root of Self-Replication , 2011, Artificial Life.
[25] P. Luisi,et al. Spontaneous Protein Crowding in Liposomes: A New Vista for the Origin of Cellular Metabolism , 2010, Chembiochem : a European journal of chemical biology.
[26] Javier Macía,et al. Models of Protocell Replication , 2008 .
[27] Peter F. Stadler,et al. Dynamics of small autocatalytic reaction networks—I. bifurcations, permanence and exclusion , 1990 .
[28] M. Steel,et al. Detecting Autocatalytic, Self-sustaining Sets in Chemical Reaction Systems , 2003 .
[29] Steen Rasmussen,et al. Protocells : bridging nonliving and living matter , 2008 .
[30] Ricard V Solé,et al. Phenotypic Diversity and Chaos in a Minimal Cell Model , 2005 .
[31] S. Brereton. Life , 1876, The Indian medical gazette.
[32] Wim Hordijk,et al. Catalytic reaction sets, decay, and the preservation of information , 2002, IEMC '03 Proceedings. Managing Technologically Driven Organizations: The Human Side of Innovation and Change (IEEE Cat. No.03CH37502).
[33] Martin Nilsson,et al. Bridging Nonliving and Living Matter , 2003, Artificial Life.
[34] Roberto Serra,et al. A stochastic model of catalytic reaction networks in protocells , 2014, Natural Computing.
[35] Roberto Serra,et al. Non-linear protocell models: synchronization and chaos , 2010 .
[36] M Villani,et al. Sufficient conditions for emergent synchronization in protocell models. , 2008, Journal of theoretical biology.
[37] Timoteo Carletti,et al. From chemical reactions to evolution : Emergence of species , 2007 .
[38] D. Gillespie. A General Method for Numerically Simulating the Stochastic Time Evolution of Coupled Chemical Reactions , 1976 .
[39] Martin M Hanczyc,et al. Replicating vesicles as models of primitive cell growth and division. , 2004, Current opinion in chemical biology.
[40] Harold J. Morowitz,et al. The chemical logic of a minimum protocell , 2005, Origins of life and evolution of the biosphere.
[41] Monika Heiner,et al. Petri Nets for Systems and Synthetic Biology , 2008, SFM.
[42] Roberto Serra,et al. Mechanism for the formation of density gradients through semipermeable membranes. , 2013, Physical review. E, Statistical, nonlinear, and soft matter physics.
[43] S. Kauffman,et al. Autocatalytic replication of polymers , 1986 .
[44] D. Lancet,et al. Composing life , 2000, EMBO reports.
[45] Pierre-Alain Monnard,et al. Primitive Membrane Formation, Characteristics and Roles in the Emergent Properties of a Protocell , 2011, Entropy.
[46] Roberto Serra,et al. A stochastic model of the emergence of autocatalytic cycles , 2011 .
[47] D. Sievers,et al. Self-replication of complementary nucleotide-based oligomers , 1994, Nature.
[48] Roberto Serra,et al. Synchronization Phenomena in Surface-Reaction Models of Protocells , 2007, Artificial Life.
[49] Javier Macía,et al. Synthetic protocell biology: from reproduction to computation , 2007, Philosophical Transactions of the Royal Society B: Biological Sciences.
[50] J. Szostak,et al. Template-directed synthesis of a genetic polymer in a model protocell , 2008, Nature.
[51] D. Gillespie. Exact Stochastic Simulation of Coupled Chemical Reactions , 1977 .
[52] S. Krishna,et al. A model for the emergence of cooperation, interdependence, and structure in evolving networks. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[53] Timoteo Carletti,et al. The Stochastic Evolution of a Protocell: The Gillespie Algorithm in a Dynamically Varying Volume , 2011, Comput. Math. Methods Medicine.
[54] J. D. Bernal,et al. “The Origins of Life” , 1957, Nature.
[55] N. Packard,et al. Transitions from Nonliving to Living Matter , 2004, Science.
[56] S. Kauffman,et al. Evolution before genes , 2012, Biology Direct.
[57] Sanjay Jain,et al. Autocatalytic sets and the growth of complexity in an evolutionary model , 1998, adap-org/9809003.
[58] Christian V. Forst,et al. Dynamics of small autocatalytic reaction networks—II. Replication, mutation and catalysis , 1994, chao-dyn/9410001.