Interface of biomolecular condensates modulates redox reactions
暂无分享,去创建一个
Christian F. Chamberlayne | R. Zare | L. You | Yifan Dai | M. Messina | Ashutosh Chilkoti | Christopher J. Chang
[1] L. You,et al. Engineering synthetic biomolecular condensates , 2023, Nature Reviews Bioengineering.
[2] R. Pappu,et al. Programmable synthetic biomolecular condensates for cellular control , 2023, Nature Chemical Biology.
[3] R. Pappu,et al. Condensates formed by prion-like low-complexity domains have small-world network structures and interfaces defined by expanded conformations , 2022, Nature communications.
[4] M. Messina,et al. Activity-Based Sensing for Chemistry-Enabled Biology: Illuminating Principles, Probes, and Prospects for Boronate Reagents for Studying Hydrogen Peroxide , 2022, ACS bio & med chem Au.
[5] Christian F. Chamberlayne,et al. Simple Estimate of the Potential Drop across an Amphiprotic Liquid-Liquid Interface. , 2022, The journal of physical chemistry. B.
[6] Xinxing Zhang,et al. High Electric Field on Water Microdroplets Catalyzes Spontaneous and Ultrafast Oxidative C-H/N-H Cross-Coupling. , 2022, Journal of the American Chemical Society.
[7] J. Douglas,et al. Manipulation of coacervate droplets with an electric field , 2022, Proceedings of the National Academy of Sciences of the United States of America.
[8] G. Jiang,et al. Water–solid contact electrification causes hydrogen peroxide production from hydroxyl radical recombination in sprayed microdroplets , 2022, Proceedings of the National Academy of Sciences of the United States of America.
[9] Rachel S. G. Sealfon,et al. Double-stranded RNA drives SARS-CoV-2 nucleocapsid protein to undergo phase separation at specific temperatures , 2022, Nucleic acids research.
[10] R. Zare,et al. Capture of Hydroxyl Radicals by Hydronium Cations in Water Microdroplets. , 2022, Angewandte Chemie.
[11] R. Pappu,et al. A conceptual framework for understanding phase separation and addressing open questions and challenges. , 2022, Molecular cell.
[12] R. Mezzenga,et al. The interface of condensates of the hnRNPA1 low-complexity domain promotes formation of amyloid fibrils , 2022, bioRxiv.
[13] R. Zare,et al. Sprayed water microdroplets containing dissolved pyridine spontaneously generate pyridyl anions , 2022, Proceedings of the National Academy of Sciences of the United States of America.
[14] Christian F. Chamberlayne,et al. Microdroplets can act as electrochemical cells. , 2022, Journal of Chemical Physics.
[15] Chiu Fan Lee,et al. Regulation of biomolecular condensates by interfacial protein clusters , 2021, Science.
[16] A. Ewing,et al. Electrochemical Measurements Reveal Reactive Oxygen Species in Stress Granules , 2021, bioRxiv.
[17] Pengyu Y. Ren,et al. Design of intrinsically disordered proteins that undergo phase transitions with lower critical solution temperatures , 2020, bioRxiv.
[18] Jae Kyoo Lee,et al. Spatial localization of charged molecules by salt ions in oil-confined water microdroplets , 2020, Science Advances.
[19] Christian F. Chamberlayne,et al. Effects of Weak Electrolytes on Electric Double Layer Ion Distributions. , 2020, The journal of physical chemistry letters.
[20] W. Huck,et al. A short peptide synthon for liquid–liquid phase separation , 2020, Nature Chemistry.
[21] Jae Kyoo Lee,et al. Strong Electric Field Observed at the Interface of Aqueous Microdroplets. , 2020, The journal of physical chemistry letters.
[22] Bradley A. Rogers,et al. De novo engineering of intracellular condensates using artificial disordered proteins , 2020, Nature Chemistry.
[23] A. Gladfelter,et al. RNA contributions to the form and function of biomolecular condensates , 2020, Nature Reviews Molecular Cell Biology.
[24] S. Shaik,et al. Electric-field mediated chemistry: uncovering and exploiting the potential of (oriented) electric fields to exert chemical catalysis and reaction control. , 2020, Journal of the American Chemical Society.
[25] C. Brangwynne,et al. Chromatin mechanics dictates subdiffusion and coarsening dynamics of embedded condensates , 2020, Nature Physics.
[26] Christian F. Chamberlayne,et al. Simple model for the electric field and spatial distribution of ions in a microdroplet. , 2020, The Journal of chemical physics.
[27] Christopher J. Chang,et al. Activity-Based Sensing: A Synthetic Methods Approach for Selective Molecular Imaging and Beyond. , 2020, Angewandte Chemie.
[28] Jerelle A. Joseph,et al. Surface electrostatics govern the emulsion stability of biomolecular condensates , 2020, bioRxiv.
[29] Joshua A. Riback,et al. Competing Protein-RNA Interaction Networks Control Multiphase Intracellular Organization , 2020, Cell.
[30] S. Mukamel,et al. Molecular Structure and Modeling of Water–Air and Ice–Air Interfaces Monitored by Sum-Frequency Generation , 2020, Chemical reviews.
[31] R. Zare,et al. Ultrafast enzymatic digestion of proteins by microdroplet mass spectrometry , 2020, Nature Communications.
[32] R. Pappu,et al. Physical Principles Underlying the Complex Biology of Intracellular Phase Transitions. , 2020, Annual review of biophysics.
[33] Jae Kyoo Lee,et al. Spontaneous generation of hydrogen peroxide from aqueous microdroplets , 2019, Proceedings of the National Academy of Sciences.
[34] Jae Kyoo Lee,et al. Micrometer-Sized Water Droplets Induce Spontaneous Reduction. , 2019, Journal of the American Chemical Society.
[35] Daniel S. Day,et al. Coactivator condensation at super-enhancers links phase separation and gene control , 2018, Science.
[36] P. Vikesland,et al. Aerosol microdroplets exhibit a stable pH gradient , 2018, Proceedings of the National Academy of Sciences.
[37] C. Brangwynne,et al. Liquid phase condensation in cell physiology and disease , 2017, Science.
[38] Joshua A. Riback,et al. Stress-Triggered Phase Separation Is an Adaptive, Evolutionarily Tuned Response , 2017, Cell.
[39] Anthony A. Hyman,et al. Biomolecular condensates: organizers of cellular biochemistry , 2017, Nature Reviews Molecular Cell Biology.
[40] Jianzhong Wu,et al. Salting-Out and Salting-In of Polyelectrolyte Solutions: A Liquid-State Theory Study , 2016 .
[41] Godfrey L. Smith,et al. The Use of Ratiometric Fluorescence Measurements of the Voltage Sensitive Dye Di-4-ANEPPS to Examine Action Potential Characteristics and Drug Effects on Human Induced Pluripotent Stem Cell-Derived Cardiomyocytes , 2016, Toxicological sciences : an official journal of the Society of Toxicology.
[42] Claire H. Michel,et al. ALS/FTD Mutation-Induced Phase Transition of FUS Liquid Droplets and Reversible Hydrogels into Irreversible Hydrogels Impairs RNP Granule Function , 2015, Neuron.
[43] Peter Tompa,et al. Polymer physics of intracellular phase transitions , 2015, Nature Physics.
[44] A. Kanagaraj,et al. Phase Separation by Low Complexity Domains Promotes Stress Granule Assembly and Drives Pathological Fibrillization , 2015, Cell.
[45] A. Chilkoti,et al. Elastin‐like polypeptides as models of intrinsically disordered proteins , 2015, FEBS letters.
[46] C. Blanc,et al. Brownian diffusion of a partially wetted colloid. , 2015, Nature materials.
[47] Marco Y. Hein,et al. A Liquid-to-Solid Phase Transition of the ALS Protein FUS Accelerated by Disease Mutation , 2015, Cell.
[48] Felipe García Quiroz,et al. Sequence heuristics to encode phase behaviour in intrinsically disordered protein polymers , 2015, Nature materials.
[49] C. Brangwynne,et al. The disordered P granule protein LAF-1 drives phase separation into droplets with tunable viscosity and dynamics , 2015, Proceedings of the National Academy of Sciences.
[50] T. Finkel,et al. Cellular mechanisms and physiological consequences of redox-dependent signalling , 2014, Nature Reviews Molecular Cell Biology.
[51] R. Riek,et al. The presence of an air-water interface affects formation and elongation of α-Synuclein fibrils. , 2014, Journal of the American Chemical Society.
[52] Cheemeng Tan,et al. Molecular crowding shapes gene expression in synthetic cellular nanosystems , 2013, Nature nanotechnology.
[53] J. Imlay,et al. Why do bacteria use so many enzymes to scavenge hydrogen peroxide? , 2012, Archives of biochemistry and biophysics.
[54] Paul S. Russo,et al. Phase Transitions in the Assembly of MultiValent Signaling Proteins , 2016 .
[55] A. Lippert,et al. Boronate oxidation as a bioorthogonal reaction approach for studying the chemistry of hydrogen peroxide in living systems. , 2011, Accounts of chemical research.
[56] O. Wenger. How donor-bridge-acceptor energetics influence electron tunneling dynamics and their distance dependences. , 2011, Accounts of chemical research.
[57] H. Urlaub,et al. DDX6 recruits translational silenced human reticulocyte 15-lipoxygenase mRNA to RNP granules. , 2010, RNA.
[58] Pietro Vidossich,et al. The molecular mechanism of the catalase reaction. , 2009, Journal of the American Chemical Society.
[59] A. Hyman,et al. Germline P Granules Are Liquid Droplets That Localize by Controlled Dissolution/Condensation , 2009, Science.
[60] C. Mundy,et al. Electronic effects on the surface potential at the vapor-liquid interface of water. , 2008, Journal of the American Chemical Society.
[61] D. Weitz,et al. Colloid Surfactants for Emulsion Stabilization , 2008 .
[62] Evan W. Miller,et al. An ICT-based approach to ratiometric fluorescence imaging of hydrogen peroxide produced in living cells. , 2008, Journal of the American Chemical Society.
[63] Alfons van Blaaderen,et al. Electrostatics at the oil–water interface, stability, and order in emulsions and colloids , 2007, Proceedings of the National Academy of Sciences.
[64] Pavel Jungwirth,et al. Specific ion effects at the air/water interface. , 2006, Chemical reviews.
[65] T. Beveridge,et al. Application of a pH-Sensitive Fluoroprobe (C-SNARF-4) for pH Microenvironment Analysis in Pseudomonas aeruginosa Biofilms , 2005, Applied and Environmental Microbiology.
[66] J. Turrens,et al. Mitochondrial formation of reactive oxygen species , 2003, The Journal of physiology.
[67] Bernard P. Binks,et al. Emulsions stabilised solely by colloidal particles , 2003 .
[68] L. Loew,et al. A Fluorometric Approach to Local Electric Field Measurements in a Voltage-Gated Ion Channel , 2003, Neuron.
[69] K. Rice,et al. Formulation of highly soluble poly(ethylene glycol)-peptide DNA condensates. , 1999, Journal of pharmaceutical sciences.
[70] O. Velev,et al. Charging of Oil−Water Interfaces Due to Spontaneous Adsorption of Hydroxyl Ions , 1996, Langmuir.
[71] Mukul M. Sharma,et al. Factors Controlling the Stability of Colloid-Stabilized Emulsions: I. An Experimental Investigation , 1995 .
[72] M. Babizhayev,et al. L-carnosine (beta-alanyl-L-histidine) and carcinine (beta-alanylhistamine) act as natural antioxidants with hydroxyl-radical-scavenging and lipid-peroxidase activities. , 1994, The Biochemical journal.
[73] S. Wolff,et al. Ferrous ion oxidation in the presence of xylenol orange for detection of lipid hydroperoxide in low density lipoprotein. , 1992, Analytical biochemistry.
[74] G. Wächtershäuser,et al. Before enzymes and templates: theory of surface metabolism , 1988 .
[75] D. T. Sawyer,et al. How super is superoxide , 1981 .
[76] B. Dickinson,et al. Boronate-based fluorescent probes: imaging hydrogen peroxide in living systems. , 2013, Methods in enzymology.
[77] Qun Gu,et al. Self-assembly of metallic nanowires from aqueous solution. , 2005, Nano letters.