Distinct clusters of human pain gene orthologs in Caenorhabditis elegans regulate thermo-nociceptive sensitivity and plasticity
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[1] D. Raizen,et al. G protein-coupled receptor kinase-2 (GRK-2) controls exploration through neuropeptide signaling in Caenorhabditis elegans , 2023, bioRxiv.
[2] E. Goldsmith,et al. Intracellular Ion Control of WNK Signaling. , 2022, Annual Review of Physiology.
[3] Mei Zhen,et al. Escape Steering by Cholecystokinin Peptidergic Signaling , 2021, bioRxiv.
[4] Domenica Ippolito,et al. Ca2+/CaM binding to CaMKI promotes IMA-3 importin binding and nuclear translocation in sensory neurons to control behavioral adaptation , 2021, eLife.
[5] Steven J. Cook,et al. Molecular topography of an entire nervous system , 2020, Cell.
[6] X. Z. S. Xu,et al. Temperature Sensation: From Molecular Thermosensors to Neural Circuits and Coding Principles. , 2020, Annual review of physiology.
[7] Adam J. Iliff,et al. C. elegans: a sensible model for sensory biology , 2020, Journal of neurogenetics.
[8] W. Ryu,et al. Targeted thermal stimulation and high-content phenotyping reveal that the C. elegans escape response integrates current behavioral state and past experience , 2020, PloS one.
[9] Dominique A. Glauser,et al. A system for the high-throughput analysis of acute thermal avoidance and adaptation in C. elegans , 2020, Journal of biological methods.
[10] F. Beaudry,et al. Capsaicin and Its Analogues Impede Nocifensive Response of Caenorhabditis elegans to Noxious Heat , 2020, Neurochemical Research.
[11] H. Sutherland,et al. Advances in genetics of migraine , 2019, The Journal of Headache and Pain.
[12] W. Law,et al. Cannabinoids Stimulate the TRP Channel-Dependent Release of Both Serotonin and Dopamine to Modulate Behavior in C. elegans , 2019, The Journal of Neuroscience.
[13] D. Nyholt,et al. Novel hypotheses emerging from GWAS in migraine? , 2019, The Journal of Headache and Pain.
[14] Woojin Kim,et al. OrthoList 2: A New Comparative Genomic Analysis of Human and Caenorhabditis elegans Genes , 2018, Genetics.
[15] E. Walters. Nociceptive Biology of Molluscs and Arthropods: Evolutionary Clues About Functions and Mechanisms Potentially Related to Pain , 2018, Front. Physiol..
[16] J. V. Van Raamsdonk,et al. Modeling Parkinson’s Disease in C. elegans , 2018, Journal of Parkinson's disease.
[17] Blair H. Smith,et al. Systematic review and meta-analysis of genetic risk factors for neuropathic pain , 2018, Pain.
[18] B. Burrell. Comparative biology of pain: What invertebrates can tell us about how nociception works. , 2017, Journal of neurophysiology.
[19] R. Komuniecki,et al. Cannabinoids Activate Monoaminergic Signaling to Modulate Key C. elegans Behaviors , 2017, The Journal of Neuroscience.
[20] Andrew C. Adey,et al. Single-Cell Transcriptional Profiling of a Multicellular Organism , 2017 .
[21] S. Khoury,et al. Genetic predictors of human chronic pain conditions , 2016, Neuroscience.
[22] W. Ryu,et al. Pan-neuronal screening in Caenorhabditis elegans reveals asymmetric dynamics of AWC neurons is critical for thermal avoidance behavior , 2016, eLife.
[23] Evan L Ardiel,et al. Dopamine receptor DOP-4 modulates habituation to repetitive photoactivation of a C. elegans polymodal nociceptor , 2016, Learning & memory.
[24] A. Williams. What can evolutionary theory tell us about chronic pain? , 2016, Pain.
[25] Isabel Beets,et al. Neuropeptidergic Signaling and Active Feeding State Inhibit Nociception in Caenorhabditis elegans , 2016, The Journal of Neuroscience.
[26] Ilya Nemenman,et al. Stereotypical Escape Behavior in Caenorhabditis elegans Allows Quantification of Effective Heat Stimulus Level , 2016, PLoS Comput. Biol..
[27] Gareth P Harris,et al. Multiple Sensory Inputs Are Extensively Integrated to Modulate Nociception in C. elegans , 2015, The Journal of Neuroscience.
[28] M. Chalfie,et al. A Transparent Window into Biology: A Primer on Caenorhabditis elegans , 2015, Genetics.
[29] Dominique A. Glauser,et al. Dual Color Neural Activation and Behavior Control with Chrimson and CoChR in Caenorhabditis elegans , 2015, Genetics.
[30] Jaak Vilo,et al. ClustVis: a web tool for visualizing clustering of multivariate data using Principal Component Analysis and heatmap , 2015, Nucleic Acids Res..
[31] Martin Dragosits,et al. Bisecting Galactose as a Feature of N-Glycans of Wild-type and Mutant Caenorhabditis elegans* , 2015, Molecular & Cellular Proteomics.
[32] M. Goodman,et al. The Balance between Cytoplasmic and Nuclear CaM Kinase-1 Signaling Controls the Operating Range of Noxious Heat Avoidance , 2014, Neuron.
[33] E. Nollen,et al. Genetic screens in Caenorhabditis elegans models for neurodegenerative diseases. , 2014, Biochimica et biophysica acta.
[34] Stephen B. McMahon,et al. Opening paths to novel analgesics: the role of potassium channels in chronic pain , 2014, Trends in Neurosciences.
[35] P. Dougherty,et al. An overview of animal models of pain: disease models and outcome measures. , 2013, The journal of pain : official journal of the American Pain Society.
[36] Dominique A. Glauser. How and why Caenorhabditis elegans uses distinct escape and avoidance regimes to minimize exposure to noxious heat , 2013, Worm.
[37] Dominique A. Glauser,et al. Dynamic switching between escape and avoidance regimes reduces Caenorhabditis elegans exposure to noxious heat , 2013, Nature Communications.
[38] W. Ryu,et al. Behavioral response of Caenorhabditis elegans to localized thermal stimuli , 2013, BMC Neuroscience.
[39] Thomas Meitinger,et al. Genome-wide meta-analysis identifies new susceptibility loci for migraine , 2013, Nature Genetics.
[40] I. Wilson,et al. Array-assisted Characterization of a Fucosyltransferase Required for the Biosynthesis of Complex Core Modifications of Nematode N-Glycans* , 2013, The Journal of Biological Chemistry.
[41] L. Kruglyak,et al. Multiparameter behavioral profiling reveals distinct thermal response regimes in Caenorhabditis elegans , 2012, BMC Biology.
[42] Holly Mills,et al. The interaction of octopamine and neuropeptides to slow aversive responses in C. elegans mimics the modulation of chronic pain in mammals , 2012, Worm.
[43] Shu Liu,et al. Temperature- and Touch-Sensitive Neurons Couple CNG and TRPV Channel Activities to Control Heat Avoidance in Caenorhabditis elegans , 2012, PloS one.
[44] R. Komuniecki,et al. Monoamines activate neuropeptide signaling cascades to modulate nociception in C. elegans: a useful model for the modulation of chronic pain? , 2012, Invertebrate Neuroscience.
[45] Zhaoyang Feng,et al. The Neural Circuits and Synaptic Mechanisms Underlying Motor Initiation in C. elegans , 2011, Cell.
[46] F. Calahorro,et al. Caenorhabditis elegans as an experimental tool for the study of complex neurological diseases: Parkinson’s disease, Alzheimer’s disease and autism spectrum disorder , 2011, Invertebrate Neuroscience.
[47] I. Belfer,et al. Genetic basis of pain variability: recent advances , 2011, Journal of Medical Genetics.
[48] D. Goldberg,et al. Pain as a global public health priority , 2011, BMC public health.
[49] P. Komuniecki,et al. Dissecting the Serotonergic Food Signal Stimulating Sensory-Mediated Aversive Behavior in C. elegans , 2011, PloS one.
[50] Rex A. Kerr,et al. High-Throughput Behavioral Analysis in C. elegans , 2011, Nature Methods.
[51] Iva Greenwald,et al. OrthoList: A Compendium of C. elegans Genes with Human Orthologs , 2011, PloS one.
[52] Zhaoyang Feng,et al. The neural circuits and sensory channels mediating harsh touch sensation in Caenorhabditis elegans. , 2011, Nature communications.
[53] Miriam B Goodman,et al. Heat Avoidance Is Regulated by Transient Receptor Potential (TRP) Channels and a Neuropeptide Signaling Pathway in Caenorhabditis elegans , 2011, Genetics.
[54] Maria Markaki,et al. Modeling human diseases in Caenorhabditis elegans , 2010, Biotechnology journal.
[55] W. Schafer,et al. Specific roles for DEG/ENaC and TRP channels in touch and thermosensation in C. elegans nociceptors , 2010, Nature Neuroscience.
[56] S. Pryor,et al. The effect of opioids and their antagonists on the nocifensive response of Caenorhabditis elegans to noxious thermal stimuli , 2009, Invertebrate Neuroscience.
[57] J. Mogil. Animal models of pain: progress and challenges , 2009, Nature Reviews Neuroscience.
[58] P. Sandøe,et al. Painful dilemmas: the ethics of animal-based pain research , 2009, Animal Welfare.
[59] M. Nonet,et al. Direct interactions between C. elegans RAB-3 and Rim provide a mechanism to target vesicles to the presynaptic density , 2008, Neuroscience Letters.
[60] A. V. Maricq,et al. Memory in Caenorhabditis elegans Is Mediated by NMDA-Type Ionotropic Glutamate Receptors , 2008, Current Biology.
[61] John N. Wood,et al. Pain Genes , 2008, PLoS genetics.
[62] P. Komuniecki,et al. Tyramine and Octopamine Independently Inhibit Serotonin-Stimulated Aversive Behaviors in Caenorhabditis elegans through Two Novel Amine Receptors , 2007, The Journal of Neuroscience.
[63] M. Koelle,et al. Biogenic amine neurotransmitters in C. elegans. , 2007, WormBook : the online review of C. elegans biology.
[64] P. Berninsone. Carbohydrates and glycosylation. , 2006, WormBook : the online review of C. elegans biology.
[65] B. Collett,et al. Survey of chronic pain in Europe: Prevalence, impact on daily life, and treatment , 2006, European journal of pain.
[66] A. V. Maricq,et al. Ionotropic glutamate receptors: genetics, behavior and electrophysiology. , 2006, WormBook : the online review of C. elegans biology.
[67] William R Schafer,et al. Deciphering the Neural and Molecular Mechanisms of C. elegans Behavior , 2005, Current Biology.
[68] R. Kerr,et al. In vivo imaging of C. elegans ASH neurons: cellular response and adaptation to chemical repellents , 2005, The EMBO journal.
[69] M. Schachner,et al. Glycans and neural cell interactions , 2004, Nature Reviews Neuroscience.
[70] W. Ryu,et al. The CMK-1 CaMKI and the TAX-4 Cyclic Nucleotide-Gated Channel Regulate Thermosensory Neuron Gene Expression and Function in C. elegans , 2004, Current Biology.
[71] Beibei Zhao,et al. Reversal Frequency in Caenorhabditis elegans Represents an Integrated Response to the State of the Animal and Its Environment , 2003, The Journal of Neuroscience.
[72] O. Hobert. Behavioral plasticity in C. elegans: paradigms, circuits, genes. , 2003, Journal of neurobiology.
[73] N. Wittenburg,et al. Thermal avoidance in Caenorhabditis elegans: an approach to the study of nociception. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[74] R. Hosono,et al. Functional Properties of the unc-64 Gene Encoding aCaenorhabditis elegans Syntaxin* , 1998, The Journal of Biological Chemistry.
[75] H. Horvitz,et al. A dual mechanosensory and chemosensory neuron in Caenorhabditis elegans. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[76] Cori Bargmann. Genetic and cellular analysis of behavior in C. elegans. , 1993, Annual review of neuroscience.
[77] S. Brenner,et al. The structure of the nervous system of the nematode Caenorhabditis elegans. , 1986, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[78] J. Culotti,et al. Osmotic avoidance defective mutants of the nematode Caenorhabditis elegans. , 1978, Genetics.