A genetically encoded single-wavelength sensor for imaging cytosolic and cell surface ATP
暂无分享,去创建一个
Baljit S. Khakh | Loren L. Looger | Jun Nagai | J. Marvin | B. Khakh | L. Looger | Mark A. Lobas | Rongkun Tao | J. Nagai | P. Borden | Jonathan S. Marvin | Rongkun Tao | Mira T. Kronschläger | Philip M. Borden | M. T. Kronschläger | P. M. Borden
[1] J. Lakowicz. Principles of fluorescence spectroscopy , 1983 .
[2] Takashi Kawashima,et al. A genetically encoded fluorescent sensor for in vivo imaging of GABA , 2018, Nature Methods.
[3] T. Traut,et al. Physiological concentrations of purines and pyrimidines , 1994, Molecular and Cellular Biochemistry.
[4] Masasuke Yoshida,et al. Structures of the thermophilic F1-ATPase epsilon subunit suggesting ATP-regulated arm motion of its C-terminal domain in F1. , 2007, Proceedings of the National Academy of Sciences of the United States of America.
[5] Hiroyuki Noji,et al. Diversity in ATP concentrations in a single bacterial cell population revealed by quantitative single-cell imaging , 2014, Scientific Reports.
[6] B. Khakh,et al. An Optical Neuron-Astrocyte Proximity Assay at Synaptic Distance Scales , 2018, Neuron.
[7] N. Dale,et al. Spike‐independent release of ATP from Xenopus spinal neurons evoked by activation of glutamate receptors , 2002, The Journal of physiology.
[8] P. Holton,et al. The capillary dilator substances in dry powders of spinal roots; a possible role of adenosine triphosphate in chemical transmission from nerve endings , 1954, The Journal of physiology.
[9] G. Burnstock,et al. Evolutionary origins of the purinergic signalling system , 2009, Acta physiologica.
[10] B. Khakh,et al. Vesicular ATP Is the Predominant Cause of Intercellular Calcium Waves in Astrocytes , 2007, The Journal of General Physiology.
[11] Eric A. Barnard,et al. International Union of Pharmacology LVIII: Update on the P2Y G Protein-Coupled Nucleotide Receptors: From Molecular Mechanisms and Pathophysiology to Therapy , 2006, Pharmacological Reviews.
[12] Jason M. Conley,et al. Imaging Adenosine Triphosphate (ATP) , 2016, The Biological Bulletin.
[13] Martin D. Haustein,et al. Conditions and Constraints for Astrocyte Calcium Signaling in the Hippocampal Mossy Fiber Pathway , 2014, Neuron.
[14] F. Di Virgilio,et al. Use of luciferase probes to measure ATP in living cells and animals , 2017, Nature Protocols.
[15] Jim Berg,et al. A genetically encoded fluorescent reporter of ATP/ADP ratio , 2008, Nature Methods.
[16] J. Loscalzo,et al. Genetically encoded fluorescent sensors reveal dynamic regulation of NADPH metabolism , 2017, Nature Methods.
[17] Geoffrey Burnstock,et al. Physiology and pathophysiology of purinergic neurotransmission. , 2007, Physiological reviews.
[18] Geoffrey Burnstock,et al. The double life of ATP. , 2009, Scientific American.
[19] J. B. Wolfe,et al. Localization of the primary metabolic block produced by 2-deoxyglucose. , 1957, The Journal of biological chemistry.
[20] W. Kuhr,et al. Direct electrochemical detection of purine- and pyrimidine-based nucleotides with sinusoidal voltammetry. , 1997, Analytical chemistry.
[21] P. Holton. The liberation of adenosine triphosphate on antidromic stimulation of sensory nerves , 1959, The Journal of physiology.
[22] Y. Okada,et al. Cell surface measurements of ATP release from single pancreatic β cells using a novel biosensor technique , 1998, Pflügers Archiv.
[23] Sharmila Venugopal,et al. Ca2+ signaling in astrocytes from IP3R2−/− mice in brain slices and during startle responses in vivo , 2015, Nature Neuroscience.
[24] A. Nimmerjahn,et al. Ultrafast neuronal imaging of dopamine dynamics with designed genetically encoded sensors , 2018, Science.
[25] G. Dubyak,et al. Detection of local ATP release from activated platelets using cell surface-attached firefly luciferase. , 1999, American journal of physiology. Cell physiology.
[26] Masasuke Yoshida,et al. Isolated ϵ Subunit of Thermophilic F1-ATPase Binds ATP* , 2003, Journal of Biological Chemistry.
[27] G. Burnstock,et al. Biology of purinergic signalling: Its ancient evolutionary roots, its omnipresence and its multiple functional significance , 2014, BioEssays : news and reviews in molecular, cellular and developmental biology.
[28] F. Di Virgilio,et al. Increased Level of Extracellular ATP at Tumor Sites: In Vivo Imaging with Plasma Membrane Luciferase , 2008, PloS one.
[29] K. Lohmann. The Pyrophosphate Fraction in Muscle , 1968 .
[30] G. Yellen,et al. Imaging energy status in live cells with a fluorescent biosensor of the intracellular ATP-to-ADP ratio , 2013, Nature Communications.
[31] F. Di Virgilio,et al. A novel recombinant plasma membrane-targeted luciferase reveals a new pathway for ATP secretion. , 2005, Molecular biology of the cell.
[32] R. Tsien,et al. green fluorescent protein , 2020, Catalysis from A to Z.
[33] Sonja Hatz,et al. Microelectrode biosensor for real-time measurement of ATP in biological tissue. , 2005, Analytical chemistry.
[34] F. Studier,et al. Protein production by auto-induction in high density shaking cultures. , 2005, Protein expression and purification.
[35] P. Haydon,et al. Exocytosis of ATP From Astrocytes Modulates Phasic and Tonic Inhibition in the Neocortex , 2014, PLoS biology.
[36] Masasuke Yoshida,et al. Structures of the thermophilic F1-ATPase ε subunit suggesting ATP-regulated arm motion of its C-terminal domain in F1 , 2007, Proceedings of the National Academy of Sciences.
[37] Baljit S Khakh,et al. Bulk Loading of Calcium Indicator Dyes to Study Astrocyte Physiology: Key Limitations and Improvements Using Morphological Maps , 2011, The Journal of Neuroscience.
[38] G. Rousseau. Purinergic Nerves , 1977, The Lancet.
[39] Mark T. Harnett,et al. An optimized fluorescent probe for visualizing glutamate neurotransmission , 2013, Nature Methods.
[40] F. Di Virgilio,et al. Extracellular ATP and P2 purinergic signalling in the tumour microenvironment , 2018, Nature Reviews Cancer.
[41] G. Burnstock,et al. Purinergic signalling in neuron–glia interactions , 2006, Nature Reviews Neuroscience.
[42] T. Kunkel. Rapid and efficient site-specific mutagenesis without phenotypic selection. , 1985, Proceedings of the National Academy of Sciences of the United States of America.
[43] L. Devi,et al. G Protein-Coupled Receptor Heteromers. , 2016, Annual review of pharmacology and toxicology.
[44] Antje Sommer,et al. Principles Of Fluorescence Spectroscopy , 2016 .
[45] Stefan R. Pulver,et al. Ultra-sensitive fluorescent proteins for imaging neuronal activity , 2013, Nature.
[46] Takeharu Nagai,et al. Visualization of ATP levels inside single living cells with fluorescence resonance energy transfer-based genetically encoded indicators , 2009, Proceedings of the National Academy of Sciences.
[47] T. Terwilliger,et al. Engineering and characterization of a superfolder green fluorescent protein , 2006, Nature Biotechnology.
[48] Masasuke Yoshida,et al. Isolated epsilon subunit of thermophilic F1-ATPase binds ATP. , 2003, The Journal of biological chemistry.
[49] G. Dubyak,et al. Detection of local ATP release from activated platelets using cell surface-attached firefly luciferase , 1998 .
[50] H. Pose,et al. Nachweis von Atomtrümmern aus Aluminium mit dem Hoffmannschen Elektrometer , 1929, Naturwissenschaften.
[51] Z Wang,et al. Direct observation of calcium-independent intercellular ATP signaling in astrocytes. , 2000, Analytical chemistry.
[52] Li I. Zhang,et al. ED SUM: Signaling by the neurotransmitter acetylcholine is monitored in cells and animals with a sensitive reporter. , 2018, Nature Biotechnology.
[53] Takashi Kawashima,et al. A genetically encoded fluorescent sensor for in vivo imaging of GABA , 2018, bioRxiv.
[54] K. Wood,et al. Firefly luciferase gene: structure and expression in mammalian cells , 1987, Molecular and cellular biology.
[55] G. Ulrich Nienhaus,et al. mRuby, a Bright Monomeric Red Fluorescent Protein for Labeling of Subcellular Structures , 2009, PloS one.
[56] S. Goldman,et al. P2X7 receptor inhibition improves recovery after spinal cord injury , 2004, Nature Medicine.
[57] Anatol C. Kreitzer,et al. A Genetically Encoded Fluorescent Sensor Enables Rapid and Specific Detection of Dopamine in Flies, Fish, and Mice , 2018, Cell.
[58] T. A. Ryan,et al. Activity-Driven Local ATP Synthesis Is Required for Synaptic Function , 2014, Cell.
[59] E. Kawashima,et al. The Cytolytic P2Z Receptor for Extracellular ATP Identified as a P2X Receptor (P2X7) , 1996, Science.
[60] David Fitzpatrick,et al. Stability, affinity and chromatic variants of the glutamate sensor iGluSnFR , 2018, Nature Methods.
[61] Jonathan S Marvin,et al. A genetically encoded, high-signal-to-noise maltose sensor , 2011, Proteins.
[62] B S Khakh,et al. International union of pharmacology. XXIV. Current status of the nomenclature and properties of P2X receptors and their subunits. , 2001, Pharmacological reviews.
[63] B. Mizaikoff,et al. Amperometric ATP biosensor based on polymer entrapped enzymes. , 2004, Biosensors & bioelectronics.