A Compartmentalized Out-of-Equilibrium Enzymatic Reaction Network for Sustained Autonomous Movement
暂无分享,去创建一个
Jan C. M. van Hest | Marlies Nijemeisland | Loai K. E. A. Abdelmohsen | Daniela A. Wilson | Wilhelm T. S. Huck | W. Huck | D. Wilson | Marlies Nijemeisland | J. V. van Hest | Loai Abdelmohsen
[1] V MASSEY,et al. KINETICS AND MECHANISM OF ACTION OF GLUCOSE OXIDASE. , 1964, The Journal of biological chemistry.
[2] H. Fromm,et al. KINETIC STUDIES OF RABBIT MUSCLE LACTATE DEHYDROGENASE. II. MECHANISM OF THE REACTION. , 1965, Biochemistry.
[3] R. Stambaugh,et al. Substrate and product inhibition of rabbit muscle lactic dehydrogenase heart (H4) and muscle (M4) isozymes. , 1966, The Journal of biological chemistry.
[4] S. Ainsworth,et al. A kinetic study of rabbit muscle pyruvate kinase. , 1973, The Biochemical journal.
[5] W. R. Carper,et al. A kinetic study of glucose-6-phosphate dehydrogenase. , 1976, The Journal of biological chemistry.
[6] E. Newsholme. Substrate cycles: their metabolic, energetic and thermic consequences in man. , 1978, Biochemical Society symposium.
[7] Newsholme Ea,et al. Substrate cycles: their metabolic, energetic and thermic consequences in man. , 1978 .
[8] G. Daouk,et al. Simultaneous analysis of NAD- and NADP-linked activities of dual nucleotide-specific dehydrogenases. Application to Leuconostoc mesenteroides glucose-6-phosphate dehydrogenase. , 1979, The Journal of biological chemistry.
[9] H. Levy,et al. Glucose-6-phosphate dehydrogenase from Leuconostoc mesenteroides: revised kinetic mechanism and kinetics of ATP inhibition. , 1983, Archives of biochemistry and biophysics.
[10] D. Koshland,et al. Ultrasensitivity in biochemical systems controlled by covalent modification. Interplay between zero-order and multistep effects. , 1984, The Journal of biological chemistry.
[11] S. Wray,et al. In vivo pH and metabolite changes during a single contraction in rat uterine smooth muscle , 1999, The Journal of physiology.
[12] V. Massey,et al. Interaction of two arginine residues in lactate oxidase with the enzyme flavin: conversion of FMN to 8-formyl-FMN. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[13] D. Lauffenburger. Cell signaling pathways as control modules: complexity for simplicity? , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[14] F. Ashcroft,et al. A Novel Method for Measurement of Submembrane ATP Concentration* , 2000, The Journal of Biological Chemistry.
[15] Kathy Chen,et al. Network dynamics and cell physiology , 2001, Nature Reviews Molecular Cell Biology.
[16] S. Shen-Orr,et al. Network motifs: simple building blocks of complex networks. , 2002, Science.
[17] J. Weber,et al. Accelerated substrate cycling: a new energy-wasting role for leptin in vivo. , 2002, American journal of physiology. Endocrinology and metabolism.
[18] Lan V. Zhang,et al. Evidence for dynamically organized modularity in the yeast protein–protein interaction network , 2004, Nature.
[19] Ramon Varon,et al. Kinetic analysis of a model for double substrate cycling: highly amplified ADP (and/or ATP) quantification. , 2004, Biophysical journal.
[20] J. Ferrell,et al. Interlinked Fast and Slow Positive Feedback Loops Drive Reliable Cell Decisions , 2005, Science.
[21] Dieter Braun,et al. Why molecules move along a temperature gradient , 2006, Proceedings of the National Academy of Sciences.
[22] Masaru Tomita,et al. Dynamic simulation of an in vitro multi‐enzyme system , 2007, FEBS letters.
[23] Ramin Golestanian,et al. Self-motile colloidal particles: from directed propulsion to random walk. , 2007, Physical review letters.
[24] Ben L Feringa,et al. Autonomous propulsion of carbon nanotubes powered by a multienzyme ensemble. , 2008, Chemical communications.
[25] S. Bernhard. The intracellular equilibrium thermodynamic and steady-state concentrations of metabolites , 2008, Cell Biophysics.
[26] John G. Gibbs,et al. Autonomously motile catalytic nanomotors by bubble propulsion , 2009 .
[27] Roeland J. M. Nolte,et al. A Polymersome Nanoreactor with Controllable Permeability Induced by Stimuli‐Responsive Block Copolymers , 2009 .
[28] Jiahua Zhu,et al. Polymersome stomatocytes: controlled shape transformation in polymer vesicles. , 2010, Journal of the American Chemical Society.
[29] Carlo Montemagno,et al. Artificial photosynthesis in ranaspumin-2 based foam. , 2010, Nano letters.
[30] Kenneth Showalter,et al. Motion analysis of self-propelled Pt-silica particles in hydrogen peroxide solutions. , 2010, The journal of physical chemistry. A.
[31] Yixue Li,et al. Regulation of Cellular Metabolism by Protein Lysine Acetylation , 2010, Science.
[32] Wei-Shou Hu,et al. Glucose metabolism in mammalian cell culture: new insights for tweaking vintage pathways. , 2010, Trends in biotechnology.
[33] Daniela A Wilson,et al. Autonomous movement of platinum-loaded stomatocytes. , 2012, Nature chemistry.
[34] Ximin He,et al. Synthetic homeostatic materials with chemo-mechano-chemical self-regulation , 2012, Nature.
[35] D. Wilson,et al. Entrapment of metal nanoparticles in polymer stomatocytes. , 2012, Journal of the American Chemical Society.
[36] Maïté Marguet,et al. Multicompartmentalized polymeric systems: towards biomimetic cellular structure and function. , 2013, Chemical Society reviews.
[37] Prodromos Daoutidis,et al. Bistability in Glycolysis Pathway as a Physiological Switch in Energy Metabolism , 2014, PloS one.
[38] Maïté Marguet,et al. Cascade reactions in multicompartmentalized polymersomes. , 2014, Angewandte Chemie.
[39] Qiang He,et al. Self-propelled polymer multilayer Janus capsules for effective drug delivery and light-triggered release. , 2014, ACS applied materials & interfaces.
[40] Job Boekhoven,et al. Transient assembly of active materials fueled by a chemical reaction , 2015, Science.
[41] Ada-Ioana Bunea,et al. Sensing based on the motion of enzyme-modified nanorods. , 2015, Biosensors & bioelectronics.
[42] Daniela A Wilson,et al. Self-Guided Supramolecular Cargo-Loaded Nanomotors with Chemotactic Behavior towards Cells , 2015, Angewandte Chemie.
[43] Brigitte Städler,et al. Enhanced Diffusion of Glucose-Fueled Janus Particles , 2015 .
[44] Joost Groen,et al. Rational design of functional and tunable oscillating enzymatic networks. , 2015, Nature chemistry.
[45] Samuel Sanchez,et al. Enzyme-Powered Hollow Mesoporous Janus Nanomotors. , 2015, Nano letters (Print).
[46] Fabio Mavelli,et al. Enzymatic reactions in confined environments. , 2016, Nature nanotechnology.
[47] Samuel Sánchez,et al. Reversed Janus Micro/Nanomotors with Internal Chemical Engine , 2016, ACS nano.
[48] Marlies Nijemeisland,et al. Dynamic Loading and Unloading of Proteins in Polymeric Stomatocytes: Formation of an Enzyme-Loaded Supramolecular Nanomotor. , 2016, ACS nano.
[49] Samuel Sánchez,et al. Motion Control of Urea-Powered Biocompatible Hollow Microcapsules. , 2016, ACS nano.
[50] M. Menossi,et al. Heating Greatly Speeds Coomassie Blue Staining and Destaining , 2022 .