A nucleostemin family GTPase, NS3, acts in serotonergic neurons to regulate insulin signaling and control body size.
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[1] P. Léopold,et al. Drosophila ALS regulates growth and metabolism through functional interaction with insulin-like peptides. , 2008, Cell metabolism.
[2] S. Goodwin,et al. Compartmentalization of neuronal and peripheral serotonin synthesis in Drosophila melanogaster , 2007, Genes, brain, and behavior.
[3] C. Thummel,et al. Diabetic larvae and obese flies-emerging studies of metabolism in Drosophila. , 2007, Cell metabolism.
[4] B. Dickson,et al. A genome-wide transgenic RNAi library for conditional gene inactivation in Drosophila , 2007, Nature.
[5] M. Pankratz,et al. Amino acids, taste circuits, and feeding behavior in Drosophila: towards understanding the psychology of feeding in flies and man. , 2007, The Journal of endocrinology.
[6] B. Edgar. How flies get their size: genetics meets physiology , 2006, Nature Reviews Genetics.
[7] M. Scott,et al. Mes2, a MADF‐containing transcription factor essential for Drosophila development , 2006, Developmental dynamics : an official publication of the American Association of Anatomists.
[8] M. W. Schwartz,et al. Central nervous system control of food intake and body weight , 2006, Nature.
[9] M. Scott,et al. A Drosophila model of the Niemann-Pick type C lysosome storage disease: dnpc1a is required for molting and sterol homeostasis , 2005, Development.
[10] R. Pepperkok,et al. Human Lsg1 defines a family of essential GTPases that correlates with the evolution of compartmentalization , 2005, BMC Biology.
[11] B. Condron,et al. Development and sensitivity to serotonin of Drosophila serotonergic varicosities in the central nervous system. , 2005, Developmental biology.
[12] M. Pankratz,et al. Candidate Gustatory Interneurons Modulating Feeding Behavior in the Drosophila Brain , 2005, PLoS biology.
[13] J. Hirsh,et al. Two Functional but Noncomplementing Drosophila Tyrosine Decarboxylase Genes , 2005, Journal of Biological Chemistry.
[14] D. Guertin,et al. Phosphorylation and Regulation of Akt/PKB by the Rictor-mTOR Complex , 2005, Science.
[15] Arlen W. Johnson,et al. Release of the export adapter, Nmd3p, from the 60S ribosomal subunit requires Rpl10p and the cytoplasmic GTPase Lsg1p , 2005, The EMBO journal.
[16] S. Raptis,et al. Serotonin and insulin release in vitro , 1968, Diabetologia.
[17] E. Hafen,et al. The hypoxia-induced paralogs Scylla and Charybdis inhibit growth by down-regulating S6K activity upstream of TSC in Drosophila. , 2004, Genes & development.
[18] E. Rulifson,et al. Conserved mechanisms of glucose sensing and regulation by Drosophila corpora cardiaca cells , 2004, Nature.
[19] William McGinnis,et al. Multiplex Detection of RNA Expression in Drosophila Embryos , 2004, Science.
[20] J. Montagne,et al. A Nutrient Sensor Mechanism Controls Drosophila Growth , 2003, Cell.
[21] T. Wen,et al. Developmental Control of Foraging and Social Behavior by the Drosophila Neuropeptide Y-like System , 2003, Neuron.
[22] Arlen W. Johnson,et al. The Putative GTPases Nog1p and Lsg1p Are Required for 60S Ribosomal Subunit Biogenesis and Are Localized to the Nucleus and Cytoplasm, Respectively , 2003, Molecular and Cellular Biology.
[23] Jay Hirsh,et al. Targeted gene expression in Drosophila dopaminergic cells using regulatory sequences from tyrosine hydroxylase. , 2003, Journal of neurobiology.
[24] E. Hafen,et al. Insulin/IGF and target of rapamycin signaling: a TOR de force in growth control. , 2003, Trends in cell biology.
[25] I. Zhimulev,et al. EcR isoforms in Drosophila: testing tissue-specific requirements by targeted blockade and rescue , 2003, Development.
[26] R. McKay,et al. A nucleolar mechanism controlling cell proliferation in stem cells and cancer cells. , 2002, Genes & development.
[27] Gero Miesenböck,et al. Transmission of Olfactory Information between Three Populations of Neurons in the Antennal Lobe of the Fly , 2002, Neuron.
[28] K. Nairz,et al. Nutrient-Dependent Expression of Insulin-like Peptides from Neuroendocrine Cells in the CNS Contributes to Growth Regulation in Drosophila , 2002, Current Biology.
[29] R. Nusse,et al. Ablation of Insulin-Producing Neurons in Flies: Growth and Diabetic Phenotypes , 2002, Science.
[30] Mei Han,et al. Multiple Amidated Neuropeptides Are Required for Normal Circadian Locomotor Rhythms in Drosophila , 2001, The Journal of Neuroscience.
[31] T. Kitamoto,et al. Drosophila cholinergic neurons and processes visualized with Gal4/UAS-GFP. , 2001, Brain research. Gene expression patterns.
[32] C. Goodman,et al. sidestep Encodes a Target-Derived Attractant Essential for Motor Axon Guidance in Drosophila , 2001, Cell.
[33] G. Korge,et al. Innervation of the ring gland of Drosophila melanogaster , 2001, The Journal of comparative neurology.
[34] T. P. Neufeld,et al. Regulation of cellular growth by the Drosophila target of rapamycin dTOR. , 2000, Genes & development.
[35] C. Vonrhein,et al. Structure of the 30S ribosomal subunit , 2000, Nature.
[36] C. Rouch,et al. Activation of hypothalamic insulin by serotonin is the primary event of the insulin–serotonin interaction involved in the control of feeding , 2000, Brain Research.
[37] S. Woods,et al. Central nervous system control of food intake , 2000, Nature.
[38] J. Hirsh,et al. Ectopic G-protein expression in dopamine and serotonin neurons blocks cocaine sensitization in Drosophila melanogaster , 2000, Current Biology.
[39] G. Ruvkun,et al. Food and metabolic signalling defects in a Caenorhabditis elegans serotonin-synthesis mutant , 2000, Nature.
[40] E. Wilder,et al. Cell-autonomous regulation of cell and organ growth in Drosophila by Akt/PKB , 1999, Nature Cell Biology.
[41] M. Pankratz,et al. Suppression of food intake and growth by amino acids in Drosophila: the role of pumpless, a fat body expressed gene with homology to vertebrate glycine cleavage system. , 1999, Development.
[42] E. Hafen,et al. Autonomous Control of Cell and Organ Size by CHICO, a Drosophila Homolog of Vertebrate IRS1–4 , 1999, Cell.
[43] B. Edgar,et al. Cell-autonomous and non-autonomous growth-defective mutants of Drosophila melanogaster. , 1999, Development.
[44] M. Monastirioti,et al. Biogenic amine systems in the fruit fly Drosophila melanogaster , 1999, Microscopy research and technique.
[45] I. Conlon,et al. Size Control in Animal Development , 1999, Cell.
[46] A. Lambertsson. The minute genes in Drosophila and their molecular functions. , 1998, Advances in genetics.
[47] A. Sirotkin,et al. Melatonin and serotonin regulate the release of insulin-like growth factor-I, oxytocin and progesterone by cultured human granulosa cells. , 2009, Experimental and clinical endocrinology & diabetes : official journal, German Society of Endocrinology [and] German Diabetes Association.
[48] V. Csernus,et al. Influence of melatonin and serotonin on glucose‐stimulated insulin release from perifused rat pancreatic islets in vitro , 1997, Journal of pineal research.
[49] L. Timmons,et al. Green fluorescent protein/beta-galactosidase double reporters for visualizing Drosophila gene expression patterns. , 1997, Developmental genetics.
[50] E. Hafen,et al. The Drosophila phosphoinositide 3‐kinase Dp110 promotes cell growth. , 1996, The EMBO journal.
[51] R. Garofalo,et al. The Drosophila insulin receptor is required for normal growth. , 1996, Endocrinology.
[52] T. Tabata,et al. Creating a Drosophila wing de novo, the role of engrailed, and the compartment border hypothesis. , 1995, Development.
[53] F. Casanueva,et al. Influence of metabolic substrates and obesity on growth hormone secretion , 1995, Trends in Endocrinology & Metabolism.
[54] N. Patel,et al. repo encodes a glial-specific homeo domain protein required in the Drosophila nervous system. , 1994, Genes & development.
[55] C. Kenyon,et al. A C. elegans mutant that lives twice as long as wild type , 1993, Nature.
[56] N. Perrimon,et al. Targeted gene expression as a means of altering cell fates and generating dominant phenotypes. , 1993, Development.
[57] Frank McCormick,et al. The GTPase superfamily: conserved structure and molecular mechanism , 1991, Nature.
[58] S. Lindquist,et al. The FLP recombinase of yeast catalyzes site-specific recombination in the drosophila genome , 1989, Cell.
[59] K. White,et al. Serotonin‐containing neurons in Drosophila melanogaster: Development and distribution , 1988, The Journal of comparative neurology.
[60] K. White,et al. Development of serotonin-containing neurons in Drosophila mutants unable to synthesize serotonin , 1986, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[61] M. Leider. Goodman & Gilman's The Pharmacological Basis of Therapeutics , 1985 .
[62] M. Ashburner,et al. laboratory culture of Drosophila , 1978 .
[63] J. Gagliardino,et al. Insulin Release and Glucose Changes Induced by Serotonin* ** , 1971, Hormone and metabolic research = Hormon- und Stoffwechselforschung = Hormones et metabolisme.
[64] H. Lebovitz,et al. Serotonin inhibition of in vitro insulin release from golden hamster pancreas. , 1970, Endocrinology.
[65] L. Goodman,et al. The Pharmacological Basis of Therapeutics , 1941 .