Structured and disordered facets of the GPCR fold.
暂无分享,去创建一个
Tilman Flock | Julian Gough | Matt E. Oates | M Madan Babu | J. Gough | M. Babu | A. Venkatakrishnan | M. Madan Babu | G. Waksman | T. Gonen | T. Flock | A J Venkatakrishnan | Daniel Estévez Prado | Matt E Oates | D. E. Prado | Daniel Esté Vez Prado
[1] Lei Wang,et al. Genetically Encoded Chemical Probes in Cells Reveal the Binding Path of Urocortin-I to CRF Class B GPCR , 2013, Cell.
[2] Ryan T. Strachan,et al. Distinct Phosphorylation Sites on the β2-Adrenergic Receptor Establish a Barcode That Encodes Differential Functions of β-Arrestin , 2011, Science Signaling.
[3] R. Challiss,et al. Alternative splicing of G protein-coupled receptors: physiology and pathophysiology , 2009, Cellular and Molecular Life Sciences.
[4] H. Dyson,et al. Intrinsically unstructured proteins and their functions , 2005, Nature Reviews Molecular Cell Biology.
[5] M. von Zastrow,et al. GPCR signaling along the endocytic pathway. , 2014, Current opinion in cell biology.
[6] Alex Braiman,et al. Oligomerization of signaling complexes by the multipoint binding of GRB2 to both LAT and SOS1 , 2006, Nature Structural &Molecular Biology.
[7] James U Bowie,et al. Shifting hydrogen bonds may produce flexible transmembrane helices , 2012, Proceedings of the National Academy of Sciences.
[8] J. Benovic,et al. Role of β-arrestins and arrestin domain-containing proteins in G protein-coupled receptor trafficking. , 2014, Current opinion in cell biology.
[9] L. Rohde,et al. Functional characterization of G-protein-coupled receptors: A bioinformatics approach , 2014, Neuroscience.
[10] S. Rasmussen,et al. Crystal Structure of the β2Adrenergic Receptor-Gs protein complex , 2011, Nature.
[11] T. Haga,et al. Role of the third intracellular loop in the subtype-specific internalization and recycling of muscarinic M2 and M4 receptors. , 2014, Biomedical research.
[12] M. Madan Babu,et al. A million peptide motifs for the molecular biologist. , 2014, Molecular cell.
[13] V. Hilser,et al. The ensemble nature of allostery , 2014, Nature.
[14] J. Qian,et al. Visualization of arrestin recruitment by a G Protein-Coupled Receptor , 2014, Nature.
[15] J. Ballesteros,et al. [19] Integrated methods for the construction of three-dimensional models and computational probing of structure-function relations in G protein-coupled receptors , 1995 .
[16] M. Lohse,et al. Time-resolved fluorescence ligand binding for G protein–coupled receptors , 2013, Nature Protocols.
[17] Hsien-yu Wang,et al. AKAPs (A-kinase anchoring proteins) and molecules that compose their G-protein-coupled receptor signalling complexes. , 2004, The Biochemical journal.
[18] A. Marchese,et al. The ubiquitin ligase deltex-3l regulates endosomal sorting of the G protein–coupled receptor CXCR4 , 2014, Molecular biology of the cell.
[19] Benjamin G Tehan,et al. Structure of Class B GPCRs: new horizons for drug discovery , 2014, British journal of pharmacology.
[20] Gert Vriend,et al. GPCRDB information system for G protein-coupled receptors , 2003, Nucleic Acids Res..
[21] S. Karnik,et al. Domain coupling in GPCRs: the engine for induced conformational changes. , 2012, Trends in pharmacological sciences.
[22] Tong Liu,et al. Structural flexibility of the Gαs α-helical domain in the β2-adrenoceptor Gs complex , 2011, Proceedings of the National Academy of Sciences.
[23] Bryan L. Roth,et al. Structure of the human smoothened receptor bound to an antitumour agent , 2013, Nature.
[24] A. Woods. The dopamine D4 receptor, the ultimate disordered protein , 2010, Journal of receptor and signal transduction research.
[25] R. Pappu,et al. Structural biology. Versatility from protein disorder. , 2012, Science.
[26] Caitlin L. Chicoine,et al. Net charge per residue modulates conformational ensembles of intrinsically disordered proteins , 2010, Proceedings of the National Academy of Sciences.
[27] Titiwat Sungkaworn,et al. Single-molecule analysis of fluorescently labeled G-protein–coupled receptors reveals complexes with distinct dynamics and organization , 2012, Proceedings of the National Academy of Sciences.
[28] Christopher J. Oldfield,et al. Classification of Intrinsically Disordered Regions and Proteins , 2014, Chemical reviews.
[29] Norman E. Davey,et al. Attributes of short linear motifs. , 2012, Molecular bioSystems.
[30] Marc S. Cortese,et al. Flexible nets , 2005, The FEBS journal.
[31] Paul S. Russo,et al. Phase Transitions in the Assembly of MultiValent Signaling Proteins , 2016 .
[32] H. Kaneko,et al. A highly conserved tryptophan residue in the fourth transmembrane domain of the A1 adenosine receptor is essential for ligand binding but not receptor homodimerization , 2009, Journal of neurochemistry.
[33] R. A. Hall,et al. Fine-tuning of GPCR activity by receptor-interacting proteins , 2009, Nature Reviews Molecular Cell Biology.
[34] R. Jaussi,et al. Functional map of arrestin-1 at single amino acid resolution , 2014, Proceedings of the National Academy of Sciences.
[35] Ali Jazayeri,et al. Structure of class B GPCR corticotropin-releasing factor receptor 1 , 2013, Nature.
[36] Aidan Budd,et al. Short linear motifs: ubiquitous and functionally diverse protein interaction modules directing cell regulation. , 2014, Chemical reviews.
[37] Benjamin Rhau,et al. Synthetic control of mammalian-cell motility by engineering chemotaxis to an orthogonal bioinert chemical signal , 2014, Proceedings of the National Academy of Sciences.
[38] A Keith Dunker,et al. Alternative splicing of intrinsically disordered regions and rewiring of protein interactions. , 2013, Current opinion in structural biology.
[39] Hao Wu,et al. Higher-Order Assemblies in a New Paradigm of Signal Transduction , 2013, Cell.
[40] H. Wise. The roles played by highly truncated splice variants of G protein-coupled receptors , 2012, Journal of molecular signaling.
[41] R. Altman,et al. Cloud-based simulations on Google Exacycle reveal ligand-modulation of GPCR activation pathways , 2013, Nature chemistry.
[42] M. Lohse,et al. Kinetics and mechanism of G protein-coupled receptor activation. , 2014, Current opinion in cell biology.
[43] A. Tobin,et al. Differential G-protein-coupled Receptor Phosphorylation Provides Evidence for a Signaling Bar Code* , 2010, The Journal of Biological Chemistry.
[44] Alexander S. Rose,et al. Precision vs flexibility in GPCR signaling. , 2013, Journal of the American Chemical Society.
[45] Michael R Dores,et al. Atypical regulation of G protein-coupled receptor intracellular trafficking by ubiquitination. , 2014, Current opinion in cell biology.
[46] W. Kühlbrandt. The Resolution Revolution , 2014, Science.
[47] G. Schulte. International Union of Basic and Clinical Pharmacology. LXXX. The Class Frizzled Receptors , 2010, Pharmacological Reviews.
[48] Alex Bateman,et al. Tissue-Specific Splicing of Disordered Segments that Embed Binding Motifs Rewires Protein Interaction Networks , 2012, Molecular cell.
[49] Norman E. Davey,et al. Linear motifs confer functional diversity onto splice variants , 2012, Nucleic acids research.
[50] Tilman Flock,et al. Controlling entropy to tune the functions of intrinsically disordered regions. , 2014, Current opinion in structural biology.
[51] A. Tobin,et al. Location, location, location…site-specific GPCR phosphorylation offers a mechanism for cell-type-specific signalling , 2008, Trends in pharmacological sciences.
[52] R. Neubig,et al. Detection of G Protein-selective G Protein-coupled Receptor (GPCR) Conformations in Live Cells* , 2013, The Journal of Biological Chemistry.
[53] Zsuzsanna Dosztányi,et al. ANCHOR: web server for predicting protein binding regions in disordered proteins , 2009, Bioinform..
[54] DOROTHY A. HAMMOND,et al. Functional Understanding of the Diverse exon-intron Structures of Human GPCR genes , 2014, J. Bioinform. Comput. Biol..
[55] Krzysztof Palczewski,et al. Sequence analyses of G-protein-coupled receptors: similarities to rhodopsin. , 2003, Biochemistry.
[56] R. Pappu,et al. Versatility from Protein Disorder , 2012, Science.
[57] N. Grishin,et al. The WAVE Regulatory Complex Links Diverse Receptors to the Actin Cytoskeleton , 2014, Cell.
[58] S. Liggett,et al. Alternative splicing of the G protein-coupled receptor superfamily in human airway smooth muscle diversifies the complement of receptors , 2008, Proceedings of the National Academy of Sciences.
[59] Jonathan R. Tomshine,et al. Conformational biosensors reveal GPCR signalling from endosomes , 2013, Nature.
[60] Guillaume Lamour,et al. Promiscuity as a functional trait: intrinsically disordered regions as central players of interactomes. , 2013, The Biochemical journal.
[61] A. Goldman,et al. G protein-coupled receptors show unusual patterns of intrinsic unfolding. , 2005, Protein engineering, design & selection : PEDS.
[62] R. Rudolph,et al. Passing the baton in class B GPCRs: peptide hormone activation via helix induction? , 2009, Trends in biochemical sciences.
[63] A. Doré,et al. Structure of class C GPCR metabotropic glutamate receptor 5 transmembrane domain , 2014, Nature.
[64] Bas Vroling,et al. GPCRdb: an information system for G protein-coupled receptors , 2015, Nucleic Acids Res..
[65] M. Babu,et al. Molecular signatures of G-protein-coupled receptors , 2013, Nature.
[66] L. Prézeau,et al. Evolution, structure, and activation mechanism of family 3/C G-protein-coupled receptors. , 2003, Pharmacology & therapeutics.
[67] Krzysztof Palczewski,et al. Structure of the rhodopsin dimer: a working model for G-protein-coupled receptors. , 2006, Current opinion in structural biology.
[68] Gary Aston-Jones,et al. Designer receptor manipulations reveal a role of the locus coeruleus noradrenergic system in isoflurane general anesthesia , 2014, Proceedings of the National Academy of Sciences.
[69] D. Grammatopoulos,et al. Focus on the splicing of secretin GPCRs transmembrane-domain 7. , 2009, Trends in biochemical sciences.
[70] A. Hopkins,et al. The druggable genome , 2002, Nature Reviews Drug Discovery.
[71] L. Reymond,et al. Charge interactions can dominate the dimensions of intrinsically disordered proteins , 2010, Proceedings of the National Academy of Sciences.
[72] Jens Meiler,et al. Structure of a Class C GPCR Metabotropic Glutamate Receptor 1 Bound to an Allosteric Modulator , 2014, Science.
[73] Chris de Graaf,et al. Structure of the human glucagon class B G-protein-coupled receptor , 2013, Nature.
[74] Albert C. Pan,et al. The Dynamic Process of β2-Adrenergic Receptor Activation , 2013, Cell.
[75] Norman E. Davey,et al. Motif switches: decision-making in cell regulation. , 2012, Current opinion in structural biology.
[76] Albert C. Pan,et al. Structural basis for modulation of a G-protein-coupled receptor by allosteric drugs , 2013, Nature.
[77] Xinchen Wang,et al. Tissue-specific alternative splicing remodels protein-protein interaction networks. , 2012, Molecular cell.
[78] Lukasz A. Kurgan,et al. D2P2: database of disordered protein predictions , 2012, Nucleic Acids Res..
[79] Chris de Graaf,et al. Insights into the structure of class B GPCRs. , 2014, Trends in pharmacological sciences.
[80] J. Bockaert,et al. Molecular tinkering of G protein‐coupled receptors: an evolutionary success , 1999, The EMBO journal.
[81] P. Singh,et al. Molecular basis for activation of G protein‐coupled receptor kinases , 2010, The EMBO journal.
[82] K. Fuxe,et al. Structural plasticity in G-protein coupled receptors as demonstrated by the allosteric actions of homocysteine and computer-assisted analysis of disordered domains , 2008, Brain Research Reviews.
[83] A. Kruse,et al. Structure of active β-arrestin1 bound to a G protein-coupled receptor phosphopeptide , 2013, Nature.