Effects of oxygen on growth and size: synthesis of molecular, organismal, and evolutionary studies with Drosophila melanogaster.
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[1] J. Harrison,et al. The effect of developmental stage on the sensitivity of cell and body size to hypoxia in Drosophila melanogaster , 2011, Journal of Experimental Biology.
[2] Daniela C. Zarnescu,et al. Fragile X protein controls neural stem cell proliferation in the Drosophila brain. , 2010, Human molecular genetics.
[3] J. VandenBrooks,et al. Atmospheric oxygen level and the evolution of insect body size , 2010, Proceedings of the Royal Society B: Biological Sciences.
[4] P. Vigne,et al. Hypoxia modifies the feeding preferences of Drosophila. Consequences for diet dependent hypoxic survival , 2010, BMC Physiology.
[5] J. Lighton,et al. Critical oxygen partial pressures and maximal tracheal conductances for Drosophila melanogaster reared for multiple generations in hypoxia or hyperoxia. , 2010, Journal of insect physiology.
[6] Lázaro Centanin,et al. Tracheal remodelling in response to hypoxia , 2010, Journal of insect physiology.
[7] Mengwei Zang,et al. AMPK exerts dual regulatory effects on the PI3K pathway , 2010, Journal of molecular signaling.
[8] J. Harrison,et al. Single and multigenerational responses of body mass to atmospheric oxygen concentrations in Drosophila melanogaster : evidence for roles of plasticity and evolution , 2009, Journal of evolutionary biology.
[9] W. V. Van Voorhies. Metabolic function in Drosophila melanogaster in response to hypoxia and pure oxygen , 2009, Journal of Experimental Biology.
[10] D. Peet,et al. From Polyps to People , 2009, Annals of the New York Academy of Sciences.
[11] A. McCulloch,et al. Metabolism as means for hypoxia adaptation: metabolic profiling and flux balance analysis , 2009, BMC Systems Biology.
[12] Lázaro Centanin,et al. S12-02 Oxygen-dependent plasticity of the Drosophila tracheal system , 2009, Mechanisms of Development.
[13] Gabriel G. Haddad,et al. Distinct Mechanisms Underlying Tolerance to Intermittent and Constant Hypoxia in Drosophila melanogaster , 2009, PloS one.
[14] G. Mills,et al. Oxygen sensor boosts growth factor signaling , 2009, Nature Medicine.
[15] X. Mao,et al. Survival from Hypoxia in C. elegans by Inactivation of Aminoacyl-tRNA Synthetases , 2009, Science.
[16] Kevin P. White,et al. Mechanisms Underlying Hypoxia Tolerance in Drosophila melanogaster: hairy as a Metabolic Switch , 2008, PLoS genetics.
[17] R. Schuh,et al. Oxygen‐induced changes in hemoglobin expression in Drosophila , 2008, The FEBS journal.
[18] Mark W. Dewhirst,et al. Cycling hypoxia and free radicals regulate angiogenesis and radiotherapy response , 2008, Nature Reviews Cancer.
[19] Kristofor Langlais,et al. Synaptic transmission in neurons that express the Drosophila atypical soluble guanylyl cyclases, Gyc-89Da and Gyc-89Db, is necessary for the successful completion of larval and adult ecdysis , 2008, Journal of Experimental Biology.
[20] J. Harrison,et al. Atmospheric Hypoxia Limits Selection for Large Body Size in Insects , 2008, PloS one.
[21] Matthew A. Zapala,et al. Gene expression in mouse brain following chronic hypoxia: role of sarcospan in glial cell death. , 2008, Physiological genomics.
[22] J. Lighton,et al. Oxygen Reperfusion Damage in an Insect , 2007, PloS one.
[23] D. Rio,et al. Ligand binding and inhibition of an oxygen-sensitive soluble guanylate cyclase, Gyc-88E, from Drosophila. , 2007, Biochemistry.
[24] C. Lehner,et al. Rapid effects of acute anoxia on spindle kinetochore interactions activate the mitotic spindle checkpoint , 2007, Journal of Cell Science.
[25] J. Truman,et al. 2.7. Critical weight as a switch in the developmental response to starvation: the role of ecdysone in the maturation of Drosophila wing discs , 2007 .
[26] Lázaro Centanin,et al. Role of the hypoxia–response pathway on cell size determination and growth control , 2007 .
[27] Gabriel G. Haddad,et al. Experimental Selection for Drosophila Survival in Extremely High O2 Environments , 2007, PloS one.
[28] J. VandenBrooks,et al. Oxygen and Evolution , 2007, Science.
[29] L. Peck. Oxygen limited thermal tolerance: The scale of individual variation, and the effects of size , 2007 .
[30] Hoby P Hetherington,et al. Chronic intermittent but not constant hypoxia decreases NAA/Cr ratios in neonatal mouse hippocampus and thalamus. , 2007, American journal of physiology. Regulatory, integrative and comparative physiology.
[31] Masato Yano,et al. Tyrosinase localization in mollusc shells. , 2007, Comparative biochemistry and physiology. Part B, Biochemistry & molecular biology.
[32] N. Chandel,et al. The cellular basis for diverse responses to oxygen. , 2007, Free radical biology & medicine.
[33] J. Harrison,et al. Responses of terrestrial insects to hypoxia or hyperoxia , 2006, Respiratory Physiology & Neurobiology.
[34] C. Proud,et al. The mTOR pathway in the control of protein synthesis. , 2006, Physiology.
[35] T. P. Neufeld,et al. TOR coordinates bulk and targeted endocytosis in the Drosophila melanogaster fat body to regulate cell growth , 2006, The Journal of cell biology.
[36] M. Gassmann,et al. Sensing and responding to hypoxia via HIF in model invertebrates. , 2006, Journal of insect physiology.
[37] R. Douglas,et al. Effect of chronic continuous or intermittent hypoxia and reoxygenation on cerebral capillary density and myelination. , 2006, American journal of physiology. Regulatory, integrative and comparative physiology.
[38] Kristofor Langlais,et al. Oxygen-sensitive guanylyl cyclases in insects and their potential roles in oxygen detection and in feeding behaviors. , 2006, Journal of insect physiology.
[39] N. Bernier. The corticotropin-releasing factor system as a mediator of the appetite-suppressing effects of stress in fish. , 2006, General and comparative endocrinology.
[40] S. Morley,et al. From cells to colonies: at what levels of body organization does the ‘temperature‐size rule’ apply? , 2006, Evolution & development.
[41] G. Semenza,et al. HIF-1-mediated expression of pyruvate dehydrogenase kinase: a metabolic switch required for cellular adaptation to hypoxia. , 2006, Cell metabolism.
[42] Lázaro Centanin,et al. Reversion of lethality and growth defects in Fatiga oxygen‐sensor mutant flies by loss of Hypoxia‐Inducible Factor‐α/Sima , 2005, EMBO reports.
[43] L. Peck,et al. Limitation of size by hypoxia in the fruit fly Drosophila melanogaster. , 2005, Journal of experimental zoology. Part A, Comparative experimental biology.
[44] F. Lehmann,et al. Unconventional mechanisms control cyclic respiratory gas release in flying Drosophila , 2005, Journal of Experimental Biology.
[45] J. Harrison,et al. Respiratory changes throughout ontogeny in the tobacco hornworm caterpillar, Manduca sexta , 2005, Journal of Experimental Biology.
[46] E. Ma,et al. Identification of new targets of Drosophila pre-mRNA adenosine deaminase. , 2005, Physiological genomics.
[47] D. Morton. Atypical Soluble Guanylyl Cyclases in Drosophila Can Function as Molecular Oxygen Sensors* , 2004, Journal of Biological Chemistry.
[48] 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.
[49] D. Rio,et al. Regulatory role of dADAR in ROS metabolism in Drosophila CNS. , 2004, Brain research. Molecular brain research.
[50] J. Harrison,et al. Plastic and evolved responses of larval tracheae and mass to varying atmospheric oxygen content in Drosophila melanogaster , 2004, Journal of Experimental Biology.
[51] L. Peck,et al. Amphipod crustacean size spectra: new insights in the relationship between size and oxygen , 2004 .
[52] James H. Brown,et al. Toward a metabolic theory of ecology , 2004 .
[53] Kristofor Langlais,et al. Preliminary characterization of two atypical soluble guanylyl cyclases in the central and peripheral nervous system of Drosophila melanogaster , 2004, Journal of Experimental Biology.
[54] B. Edgar,et al. Drosophila cyclin D/Cdk4 requires Hif-1 prolyl hydroxylase to drive cell growth. , 2004, Developmental cell.
[55] K. Behar,et al. Expression of Drosophila Trehalose-Phosphate Synthase in HEK-293 Cells Increases Hypoxia Tolerance* , 2003, Journal of Biological Chemistry.
[56] L. Peck,et al. Reduced oxygen at high altitude limits maximum size , 2003, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[57] E. Hafen,et al. The Drosophila Forkhead transcription factor FOXO mediates the reduction in cell number associated with reduced insulin signaling , 2003, Journal of biology.
[58] R. Douglas,et al. Genetic models in applied physiology: invited review: effect of oxygen deprivation on cell cycle activity: a profile of delay and arrest. , 2003, Journal of applied physiology.
[59] R. Hustert,et al. Evidence for oxygen and carbon dioxide receptors in insect CNS influencing ventilation. , 2002, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[60] Lázaro Centanin,et al. Control of the Hypoxic Response in Drosophila melanogaster by the Basic Helix-Loop-Helix PAS Protein Similar , 2002, Molecular and Cellular Biology.
[61] J. Howe,et al. RNA Editing of Neurotransmitter Receptors in the Mammalian Brain , 2002, Science's STKE.
[62] R. Garofalo. Genetic analysis of insulin signaling in Drosophila , 2002, Trends in Endocrinology & Metabolism.
[63] K. Behar,et al. Role of Trehalose Phosphate Synthase in Anoxia Tolerance and Development in Drosophila melanogaster * , 2002, The Journal of Biological Chemistry.
[64] E. Ma,et al. Book Review: Neuronal Tolerance to O2 Deprivation in Drosophila: Novel Approaches Using Genetic Models , 2001, The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry.
[65] J. Harrison,et al. Interactive Effects of Rearing Temperature and Oxygen on the Development of Drosophila melanogaster , 2001, Physiological and Biochemical Zoology.
[66] X. Gu,et al. Mutation in pre-mRNA adenosine deaminase markedly attenuates neuronal tolerance to O2 deprivation in Drosophila melanogaster. , 2001, The Journal of clinical investigation.
[67] E. Hafen,et al. An evolutionarily conserved function of the Drosophila insulin receptor and insulin-like peptides in growth control , 2001, Current Biology.
[68] D. Reznick,et al. Life‐History Evolution in Guppies. VII. The Comparative Ecology of High‐ and Low‐Predation Environments , 2001, The American Naturalist.
[69] R. Reenan,et al. A-to-I Pre-mRNA Editing in Drosophila Is Primarily Involved in Adult Nervous System Function and Integrity , 2000, Cell.
[70] R. Reenan,et al. RNA editing of the Drosophila para Na(+) channel transcript. Evolutionary conservation and developmental regulation. , 2000, Genetics.
[71] R. Reenan,et al. The mlenapts RNA Helicase Mutation in Drosophila Results in a Splicing Catastrophe of the para Na+ Channel Transcript in a Region of RNA Editing , 2000, Neuron.
[72] Eric Johnson,et al. Oxygen Regulation of Airway Branching in Drosophila Is Mediated by Branchless FGF , 1999, Cell.
[73] A. Gibbs,et al. Laboratory selection for the comparative physiologist. , 1999, The Journal of experimental biology.
[74] P. O’Farrell,et al. Nitric Oxide Contributes to Behavioral, Cellular, and Developmental Responses to Low Oxygen in Drosophila , 1999, Cell.
[75] Lloyd S. Peck,et al. Polar gigantism dictated by oxygen availability , 1999, Nature.
[76] W. Pak,et al. Diversification of Drosophila Chloride Channel Gene by Multiple Posttranscriptional mRNA Modifications , 1999, Journal of neurochemistry.
[77] J. C. Hall,et al. RNA editing in the Drosophila DMCA1A calcium-channel alpha 1 subunit transcript. , 1998, Journal of neurogenetics.
[78] R Margreiter,et al. Mitochondrial oxygen affinity, respiratory flux control and excess capacity of cytochrome c oxidase. , 1998, The Journal of experimental biology.
[79] R. Wyman,et al. Genetic basis of tolerance to O2 deprivation in Drosophila melanogaster. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[80] Francisco Bezanilla,et al. RNA Editing Generates a Diverse Array of Transcripts Encoding Squid Kv2 K+ Channels with Altered Functional Properties , 1997, Neuron.
[81] R. Emeson,et al. Regulation of serotonin-2C receptor G-protein coupling by RNA editing , 1997, Nature.
[82] K. Nishikura,et al. Editing of glutamate receptor B subunit ion channel RNAs by four alternatively spliced DRADA2 double-stranded RNA adenosine deaminases , 1997, Molecular and cellular biology.
[83] P. Seeburg,et al. Cloning of a human RNA editing deaminase (ADARB1) of glutamate receptors that maps to chromosome 21q22.3. , 1997, Genomics.
[84] R. Wyman,et al. Behavioral and Electrophysiologic Responses of Drosophila melanogaster to Prolonged Periods of Anoxia. , 1997, Journal of insect physiology.
[85] P. Seeburg,et al. RED2, a Brain-specific Member of the RNA-specific Adenosine Deaminase Family* , 1996, The Journal of Biological Chemistry.
[86] A. Ar,et al. Effects of chronic hypoxia, normoxia and hyperoxia on larval development in the beetle Tenebrio molitor , 1996 .
[87] P. W. Hochachka,et al. Unifying theory of hypoxia tolerance: molecular/metabolic defense and rescue mechanisms for surviving oxygen lack. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[88] P. Seeburg,et al. Structural Requirements for RNA Editing in Glutamate Receptor Pre-mRNAs by Recombinant Double-stranded RNA Adenosine Deaminase (*) , 1996, The Journal of Biological Chemistry.
[89] G. Wegener,et al. The regulation of trehalose metabolism in insects , 1996, Experientia.
[90] P. Seeburg,et al. A mammalian RNA editing enzyme , 1996, Nature.
[91] C. Gans,et al. Implications of the late Palaeozoic oxygen pulse for physiology and evolution , 1995, Nature.
[92] F. Léon-Velarde,et al. Physiological adaptation to high altitude: oxygen transport in mammals and birds. , 1991, Physiological reviews.
[93] A. Rosenberg,et al. Home oxygen promotes weight gain in infants with bronchopulmonary dysplasia. , 1987, American journal of diseases of children.
[94] O. Rosen,et al. Acquisition of insulin-dependent protein tyrosine kinase activity during Drosophila embryogenesis. , 1985, The Journal of biological chemistry.
[95] B. Alberts,et al. Reversible chromosome condensation induced in Drosophila embryos by anoxia: visualization of interphase nuclear organization , 1985, The Journal of cell biology.
[96] L. Greksa,et al. Effect of altitude on the physical growth of upper-class children of European ancestry. , 1985, Annals of human biology.
[97] G. Somero,et al. Biochemical Adaptation: Mechanism and Process in Physiological Evolution , 1984 .
[98] G. Kloek. Oxygen levels safe for continued reproduction of Drosophila in normal and hypobaric atmospheres. , 1979, Aviation, space, and environmental medicine.
[99] Melanie R. Frazier. Alpine insects: physiology and evolution in cold, thin air , 2007 .
[100] Mark R. Brown,et al. Signaling and function of insulin-like peptides in insects. , 2006, Annual review of entomology.
[101] J. Karlberg,et al. Postnatal Growth in Southern Chinese Children with Symptomatic Congenital Heart Disease , 2000, Journal of pediatric endocrinology & metabolism : JPEM.
[102] G. Gäde. Anaerobic Energy Metabolism , 1984 .
[103] K. Schmidt-Nielsen,et al. Scaling, why is animal size so important? , 1984 .
[104] D. Segrè,et al. Supporting Online Material Materials and Methods Tables S1 and S2 References the Effect of Oxygen on Biochemical Networks and the Evolution of Complex Life , 2022 .