Mutations in the gene drop-dead (drd) cause diverse phenotypes in adult Drosophila melanogaster including early lethality, neurodegeneration, tracheal defects, gut dysfunction, reduced body mass, and female sterility. Despite the identification of the drd gene itself, the causes of early lethality and neurodegeneration in the mutant flies remain unknown. To determine the pattern of drd expression associated with the neurodegenerative phenotype, knockdown of drd with various Gal4 drivers was performed. Early adult lethality and neurodegeneration were observed upon knockdown of drd in the tracheal system with two independent insertions of the breathless-Gal4 driver and upon knockdown in the tracheal system and elsewhere with the DJ717-Gal4 driver. Surprisingly, rescue of drd expression exclusively in the tracheae in otherwise mutant flies rescued the neurodegenerative phenotype but not adult lethality. Gut dysfunction, as measured by defecation rate, was not rescued in these flies, and gut function appeared normal upon tracheal-specific knockdown of drd. Finally, the hypothesis that tracheal dysfunction in drd mutants results in hypoxia was tested. Hypoxia-sensitive reporter transgenes (LDH-Gal4 and LDH-LacZ) were placed on a drd mutant background, but enhanced expression of these reporters was not observed. In addition, manipulation of drd expression in the tracheae did not affect expression of the hypoxia-induced genes LDH, tango, and similar. Overall, these results indicate that there are at least two causes of adult lethality in drd mutants, that gut dysfunction and neurodegeneration are independent phenotypes, and that neurodegeneration is associated with tracheal expression of drd but not with hypoxia.
References
[1]
Benzer S (1971) From the gene to behavior. J Am Med Assoc 218: 1015–1022.
[2]
Blumenthal EM (2008) Cloning of the neurodegeneration gene drop-dead and characterization of additional phenotypes of its mutation. Fly 2: 180–188.
[3]
Buchanan RL, Benzer S (1993) Defective glia in the Drosophila brain degeneration mutant drop-dead. Neuron 10: 839–850.
[4]
Kim JY, Jang W, Lee HW, Park E, Kim C (2012) Neurodegeneration of Drosophila drop-dead mutants is associated with hypoxia in the brain. Genes Brain Behav 11: 177–184.
[5]
Lehmann FO, Cierotzki V (2010) Locomotor performance in the Drosophila brain mutant drop-dead. Comp. Biochem. Physiol A Mol Integr Physiol 156: 337–343.
[6]
Tsch?pe JA, Bettencourt da Cruz A, Kretzschmar D (2003) Progressive neurodegeneration in Drosophila: a model system. J Neural Transm Suppl 65: 51–62.
[7]
Peller CR, Bacon EM, Bucheger JA, Blumenthal EM (2009) Defective gut function in drop-dead mutant Drosophila. J Insect Physiol 55: 834–839.
[8]
Sansone CL, Blumenthal EM (2012) Developmental expression of drop-dead is required for early adult survival and normal body mass in Drosophila melanogaster. Insect Biochem Mol Biol 42: 690–698.
[9]
Choy RK, Thomas JH (1999) Fluoxetine-resistant mutants in C. elegans define a novel family of transmembrane proteins. Mol Cell 4: 143–152.
[10]
Simon JA, Lis JT (1987) A germline transformation analysis reveals flexibility in the organization of heat shock consensus elements. Nucleic Acids Res 15: 2971–2988.
[11]
Sato M, Kornberg TB (2002) FGF is an essential mitogen and chemoattractant for the air sacs of the Drosophila tracheal system. Dev Cell 3: 195–207.
[12]
Weaver M, Krasnow MA (2008) Dual origin of tissue-specific progenitor cells in Drosophila tracheal remodeling. Science 321: 1496–1499.
[13]
Seroude L, Brummel T, Kapahi P, Benzer S (2002) Spatio-temporal analysis of gene expression during aging in Drosophila melanogaster.. Aging Cell 1: 47–56.
[14]
Gleixner E, Abriss D, Adryan B, Kraemer M, Gerlach F, et al. (2008) Oxygen-induced changes in hemoglobin expression in Drosophila. FEBS J 275: 5108–5116.
[15]
van Uden P, Kenneth NS, Webster R, Müller HA, Mudie S, et al. (2011) Evolutionary conserved regulation of HIF-1β by NK-κB. PLoS Genet. 7: e10001285.
[16]
Liu G, Roy J, Johnson EA (2006) Identification and function of hypoxia-response genes in Drosophila melanogaster. Physiol Genomics 13: 134–141.
[17]
Azad P, Zhou D, Russo E, Haddad GG (2009) Distinct mechanisms underlying tolerance to intermittent and constant hypoxia in Drosophila melanogaster. PLoS One 4: e5371.
[18]
Lavista-Llanos S, Centanin L, Irisarri M, Russo DM, Gleadle JM, et al. (2002) Control of the hypoxic response in Drosophila melanogaster by the basic helix-loop-helix PAS protein similar. Mol Cell Biol 22: 6842–6853.
[19]
Sonnenfeld MJ, Delvecchio C, Sun X (2005) Analysis of the transcriptional activation domain of the Drosophila tango bHLH-PAS transcription factor. Dev Genes Evol 215: 221–229.
[20]
Hotta Y, Benzer S (1972) Mapping of behaviour in Drosophila mosaics. Nature 240: 527–535.
[21]
Morin P Jr, McMullen DC, Storey KB (2005) HIF-1alpha involvement in low temperature and anoxia survival by a freeze tolerant insect. Mol Cell Biochem 280: 99–106.
[22]
Celniker SE, Dillon LA, Gerstein MB, Gunsalus KC, Henikoff S, et al. (2009) Unlocking the secrets of the genome. Nature 459: 927–930.
[23]
Pereanu W, Spindler S, Cruz L, Hartenstein V (2007) Tracheal development in the Drosophila brain is constrained by glial cells. Dev Biol 302: 169–180.
[24]
Danjo R, Kawasaki F, Ordway RW (2011) A tripartite synapse model in Drosophila. PLoS One 6: e17131.