Network-level allosteric effects are elucidated by detailing how ligand-binding events modulate utilization of catalytic potentials
暂无分享,去创建一个
Bernhard O Palsson | James T Yurkovich | James T. Yurkovich | Miguel A Alcantar | Zachary B Haiman | Zachary B. Haiman | B. Palsson | J. Yurkovich | M. A. Alcantar
[1] W. Dixon,et al. Simplified Statistics for Small Numbers of Observations , 1951 .
[2] Aarash Bordbar,et al. Minimal metabolic pathway structure is consistent with associated biomolecular interactions , 2014, Molecular systems biology.
[3] A. Estévez,et al. Creation of an Allosteric Phosphofructokinase Starting with a Nonallosteric Enzyme , 2002, The Journal of Biological Chemistry.
[4] Paola Bianchi,et al. Red cell pyruvate kinase deficiency: molecular and clinical aspects , 2005, British Journal of Haematology.
[5] Anush Chiappino-Pepe,et al. Integration of metabolic, regulatory and signaling networks towards analysis of perturbation and dynamic responses , 2017 .
[6] Laurent Pujo-Menjouet,et al. Blood Cell Dynamics: Half of a Century of Modelling , 2016 .
[7] T. Başar. Feedback and Optimal Sensitivity: Model Reference Transformations, Multiplicative Seminorms, and Approximate Inverses , 2001 .
[8] Pedro Mendes,et al. Metabolic regulation is sufficient for global and robust coordination of glucose uptake, catabolism, energy production and growth in Escherichia coli , 2017, PLoS Comput. Biol..
[9] D. Harkness,et al. Kinetic studies on the inhibition of glycolytic kinases of human erythrocytes by 2,3-diphosphoglyceric acid. , 1971, Biochimica et biophysica acta.
[10] Tamás Turányi,et al. Analysis of Kinetic Reaction Mechanisms , 2014 .
[11] G. M. Walton,et al. Interaction between energy charge and metabolite modulation in the regulation of enzymes of amphibolic sequences. Phosphofructokinase and pyruvate dehydrogenase. , 1968, Biochemistry.
[12] A. Galizzi,et al. The Allosteric Regulation of Pyruvate Kinase , 2000, The Journal of Biological Chemistry.
[13] P. Mendes,et al. Systematic Construction of Kinetic Models from Genome-Scale Metabolic Networks , 2013, PloS one.
[14] Ron Milo,et al. eQuilibrator—the biochemical thermodynamics calculator , 2011, Nucleic Acids Res..
[15] V. Hatzimanikatis,et al. Rites of passage: requirements and standards for building kinetic models of metabolic phenotypes. , 2015, Current opinion in biotechnology.
[16] B. E. Carlson,et al. Theoretical model of metabolic blood flow regulation: roles of ATP release by red blood cells and conducted responses. , 2008, American journal of physiology. Heart and circulatory physiology.
[17] Wouter W van Solinge,et al. The energy-less red blood cell is lost: erythrocyte enzyme abnormalities of glycolysis. , 2005, Blood.
[18] J. Changeux,et al. ON THE NATURE OF ALLOSTERIC TRANSITIONS: A PLAUSIBLE MODEL. , 1965, Journal of molecular biology.
[19] Daniel C. Zielinski,et al. Personalized Whole-Cell Kinetic Models of Metabolism for Discovery in Genomics and Pharmacodynamics. , 2015, Cell systems.
[20] Aarash Bordbar,et al. Quantitative time-course metabolomics in human red blood cells reveal the temperature dependence of human metabolic networks , 2017, The Journal of Biological Chemistry.
[21] B O Palsson,et al. Metabolic dynamics in the human red cell. Part II--Interactions with the environment. , 1989, Journal of theoretical biology.
[22] B. Palsson,et al. Formulating genome-scale kinetic models in the post-genome era , 2008, Molecular systems biology.
[23] Howard A Stone,et al. Dynamics of shear-induced ATP release from red blood cells , 2008, Proceedings of the National Academy of Sciences.
[24] D. Oyarzún,et al. Dynamic optimization of metabolic networks coupled with gene expression. , 2013, Journal of theoretical biology.
[25] T. Schöneberg,et al. Structure and allosteric regulation of eukaryotic 6-phosphofructokinases , 2013, Biological chemistry.
[26] G. M. Walton,et al. Adenosine triphosphate conservation in metabolic regulation. Rat liver citrate cleavage enzyme. , 1967, The Journal of biological chemistry.
[27] G. Staal,et al. Purification and some properties of human erythrocyte hexokinase. , 1976, Biochimica et biophysica acta.
[28] Sergey S Shevkoplyas,et al. Anaerobic storage of red blood cells. , 2010, Blood transfusion = Trasfusione del sangue.
[29] B O Palsson,et al. Metabolic dynamics in the human red cell. Part IV--Data prediction and some model computations. , 1990, Journal of theoretical biology.
[30] Richard van Wijk,et al. The energy-less red blood cell is lost: erythrocyte enzyme abnormalities of glycolysis , 2005 .
[31] T. Prankerd,et al. A study of the metabolism of phosphorus in mammalian red cells. , 1954, The Biochemical journal.
[32] M. Karplus,et al. Allostery and cooperativity revisited , 2008, Protein science : a publication of the Protein Society.
[33] R. Bartrons,et al. PFK-2/FBPase-2: maker and breaker of the essential biofactor fructose-2,6-bisphosphate. , 2001, Trends in biochemical sciences.
[34] Neema Jamshidi,et al. Mass action stoichiometric simulation models: incorporating kinetics and regulation into stoichiometric models. , 2010, Biophysical journal.
[35] Marija Cvijovic,et al. Kinetic models in industrial biotechnology - Improving cell factory performance. , 2014, Metabolic engineering.
[36] B O Palsson,et al. Metabolic dynamics in the human red cell. Part III--Metabolic reaction rates. , 1990, Journal of theoretical biology.
[37] R. Goody,et al. The original Michaelis constant: translation of the 1913 Michaelis-Menten paper. , 2011, Biochemistry.
[38] Bernhard O. Palsson,et al. Systems Biology: Simulation of Dynamic Network States , 2011 .
[39] Zhen Zhang,et al. Evaluation of rate law approximations in bottom-up kinetic models of metabolism , 2016, BMC Systems Biology.
[40] Philip W. Kuchel,et al. Model of 2,3-bisphosphoglycerate metabolism in the human erythrocyte based on detailed enzyme kinetic equations: computer simulation and Metabolic Control Analysis , 1999 .
[41] Y. Nakayama,et al. Dynamic simulation of red blood cell metabolism and its application to the analysis of a pathological condition , 2005, Theoretical Biology and Medical Modelling.
[42] T. J. Cavicehi. Phase-root locus and relative stability , 1996 .
[43] William R Cluett,et al. Constructing kinetic models of metabolism at genome‐scales: A review , 2015, Biotechnology journal.
[44] Eugen B. Hug,et al. Critical ATP parameters associated with blood and mammalian cells: Relevant measurement techniques , 2003 .
[45] H J Fromm,et al. Studies on factors influencing enzyme responses to adenylate energy charge. , 1972, The Journal of biological chemistry.
[46] F. Doyle,et al. Dynamic flux balance analysis of diauxic growth in Escherichia coli. , 2002, Biophysical journal.
[47] Aarash Bordbar,et al. Elucidating dynamic metabolic physiology through network integration of quantitative time-course metabolomics , 2017, Scientific Reports.
[48] Liang Tong,et al. Structures of human phosphofructokinase-1 and atomic basis of cancer-associated mutations , 2015, Nature.
[49] Anne Richelle,et al. Creation and analysis of biochemical constraint-based models using the COBRA Toolbox v.3.0 , 2019, Nature Protocols.
[50] Edward J. O'Brien,et al. Using Genome-scale Models to Predict Biological Capabilities , 2015, Cell.
[51] R. Steuer,et al. The stability and robustness of metabolic states: identifying stabilizing sites in metabolic networks , 2007, Molecular systems biology.
[52] Keng C. Soh,et al. Towards kinetic modeling of genome-scale metabolic networks without sacrificing stoichiometric, thermodynamic and physiological constraints. , 2013, Biotechnology journal.
[53] I. A. Rose,et al. Product inhibition of the hexokinases. , 1970, The Journal of biological chemistry.
[54] B. Palsson,et al. Metabolic dynamics in the human red cell. Part I--A comprehensive kinetic model. , 1989, Journal of theoretical biology.
[55] H. W. Bode. Variable equalizers , 1938 .
[56] G. Kellett,et al. Kinetics of the cooperative binding of glucose to dimeric yeast hexokinase P-I. , 1995, The Biochemical journal.