Simpson, J.H. Mapping and manipulating neural circuits in the fly brain. Adv. Genet.65, 79–143 (2009). ArticleCASPubMed Google Scholar
Bellen, H.J., Tong, C. & Tsuda, H. 100 years of Drosophila research and its impact on vertebrate neuroscience: a history lesson for the future. Nat. Rev. Neurosci.11, 514–522 (2010). ArticleCASPubMedPubMed Central Google Scholar
Lai, S.L. & Lee, T. Genetic mosaic with dual binary transcriptional systems in Drosophila. Nat. Neurosci.9, 703–709 (2006). ArticleCASPubMed Google Scholar
Yu, H.H., Chen, C.H., Shi, L., Huang, Y. & Lee, T. Twin-spot MARCM to reveal the developmental origin and identity of neurons. Nat. Neurosci.12, 947–953 (2009). ArticleCASPubMedPubMed Central Google Scholar
Livet, J. et al. Transgenic strategies for combinatorial expression of fluorescent proteins in the nervous system. Nature450, 56–62 (2007). ArticleCASPubMed Google Scholar
Sakaue-Sawano, A. et al. Visualizing spatiotemporal dynamics of multicellular cell-cycle progression. Cell132, 487–498 (2008). ArticleCASPubMed Google Scholar
Ai, H.-W., Henderson, J.N., Remington, S.J. & Campbell, R.E. Directed evolution of a monomeric, bright and photostable version of Clavularia cyan fluorescent protein: structural characterization and applications in fluorescence imaging. Biochem. J.400, 531–540 (2006). ArticleCASPubMedPubMed Central Google Scholar
Busch, S., Selcho, M., Ito, K. & Tanimoto, H. A map of octopaminergic neurons in the Drosophila brain. J. Comp. Neurol.513, 643–667 (2009). ArticlePubMed Google Scholar
Masse, N.Y., Turner, G.C. & Jefferis, G.S. Olfactory information processing in Drosophila. Curr. Biol.19, R700–R713 (2009). ArticleCASPubMed Google Scholar
Jefferis, G.S., Marin, E.C., Stocker, R.F. & Luo, L. Target neuron prespecification in the olfactory map of Drosophila. Nature414, 204–208 (2001). ArticleCASPubMed Google Scholar
Marin, E.C., Jefferis, G.S., Komiyama, T., Zhu, H. & Luo, L. Representation of the glomerular olfactory map in the Drosophila brain. Cell109, 243–255 (2002). ArticleCASPubMed Google Scholar
Wong, A.M., Wang, J.W. & Axel, R. Spatial representation of the glomerular map in the Drosophila protocerebrum. Cell109, 229–241 (2002). ArticleCASPubMed Google Scholar
Lai, S.L., Awasaki, T., Ito, K. & Lee, T. Clonal analysis of Drosophila antennal lobe neurons: diverse neuronal architectures in the lateral neuroblast lineage. Development135, 2883–2893 (2008). ArticleCASPubMed Google Scholar
Siegal, M.L. & Hartl, D.L. Transgene Coplacement and high efficiency site-specific recombination with the Cre/loxP system in Drosophila. Genetics144, 715–726 (1996). CASPubMedPubMed Central Google Scholar
Heidmann, D. & Lehner, C.F. Reduction of Cre recombinase toxicity in proliferating Drosophila cells by estrogen-dependent activity regulation. Dev. Genes Evol.211, 458–465 (2001). ArticleCASPubMed Google Scholar
Jefferis, G.S. et al. Comprehensive maps of Drosophila higher olfactory centers: spatially segregated fruit and pheromone representation. Cell128, 1187–1203 (2007). ArticleCASPubMedPubMed Central Google Scholar
Ito, K. & Awasaki, T. Clonal unit architecture of the adult fly brain. in Brain Development in Drosophila melanogaster Vol. 628. (ed., G.M. Technau) 137–159 (Landes Bioscience and Springer Science and Business Media, 2008). Chapter Google Scholar
Lee, T., Lee, A. & Luo, L. Development of the Drosophila mushroom bodies: sequential generation of three distinct types of neurons from a neuroblast. Development126, 4065–4076 (1999). CASPubMed Google Scholar
Siegal, M.L. & Hartl, D.L. Application of Cre/loxP in Drosophila. Site-specific recombination and transgene coplacement. Methods Mol. Biol.136, 487–495 (2000). CASPubMed Google Scholar
Yagi, R., Mayer, F. & Basler, K. Refined LexA transactivators and their use in combination with the Drosophila Gal4 system. Proc. Natl. Acad. Sci. USA107, 16166–16171 (2010). ArticleCASPubMedPubMed Central Google Scholar
de Velasco, B. et al. Specification and development of the pars intercerebralis and pars lateralis, neuroendocrine command centers in the Drosophila brain. Dev. Biol.302, 309–323 (2007). ArticleCASPubMed Google Scholar
Busch, S. & Tanimoto, H. Cellular configuration of single octopamine neurons in Drosophila. J. Comp. Neurol.518, 2355–2364 (2010). ArticleCASPubMed Google Scholar
Manoli, D.S. et al. Male-specific fruitless specifies the neural substrates of Drosophila courtship behaviour. Nature436, 395–400 (2005). ArticleCASPubMed Google Scholar
Demir, E. & Dickson, B.J. Fruitless splicing specifies male courtship behavior in Drosophila. Cell121, 785–794 (2005). ArticleCASPubMed Google Scholar
Kimura, K., Hachiya, T., Koganezawa, M., Tazawa, T. & Yamamoto, D. Fruitless and doublesex coordinate to generate male-specific neurons that can initiate courtship. Neuron59, 759–769 (2008). ArticleCASPubMed Google Scholar
Cachero, S., Ostrovsky, A.D., Yu, J.Y., Dickson, B.J. & Jefferis, G.S. Sexual dimorphism in the fly brain. Curr. Biol.20, 1589–1601 (2010). ArticleCASPubMedPubMed Central Google Scholar
Yu, J.Y., Kanai, M.I., Demir, E., Jefferis, G.S. & Dickson, B.J. Cellular organization of the neural circuit that drives Drosophila courtship behavior. Curr. Biol.20, 1602–1614 (2010). ArticleCASPubMed Google Scholar
Isono, K. & Morita, H. Molecular and cellular designs of insect taste receptor system. Front. Cell Neurosci.4, 20 (2010). PubMedPubMed Central Google Scholar
Vosshall, L.B. & Stocker, R.F. Molecular architecture of smell and taste in Drosophila. Annu. Rev. Neurosci.30, 505–533 (2007). ArticleCASPubMed Google Scholar
Rajashekhar, K.P. & Singh, R.N. Neuroarchitecture of the tritocerebrum of Drosophila melanogaster. J. Comp. Neurol.349, 633–645 (1994). ArticleCASPubMed Google Scholar
Tissot, M., Gendre, N. & Stocker, R.F. Drosophila P[Gal4] lines reveal that motor neurons involved in feeding persist through metamorphosis. J. Neurobiol.37, 237–250 (1998). ArticleCASPubMed Google Scholar
Miller, A. The internal anatomy and histology of the imago of Drosophila melanogaster. in Biology of Drosophila. (ed., Demerec, M.) 420–534 (Cold Spring Harbor Laboratory Press, Cold Spring Harbor, New York, USA, 1950). Google Scholar
Groth, A.C., Fish, M., Nusse, R. & Calos, M.P. Construction of transgenic Drosophila by using the site-specific integrase from phage phiC31. Genetics166, 1775–1782 (2004). ArticleCASPubMedPubMed Central Google Scholar
Rodin, S. & Georgiev, P. Handling three regulatory elements in one transgene: combined use of cre-lox, FLP-FRT, and I-Scel recombination systems. Biotechniques39, 871–876 (2005). ArticleCASPubMed Google Scholar
Stocker, R.F., Heimbeck, G., Gendre, N. & de Belle, J.S. Neuroblast ablation in Drosophila P[GAL4] lines reveals origins of olfactory interneurons. J. Neurobiol.32, 443–456 (1997). ArticleCASPubMed Google Scholar
Cole, S.H. et al. Two functional but noncomplementing Drosophila tyrosine decarboxylase genes: distinct roles for neural tyramine and octopamine in female fertility. J. Biol. Chem.280, 14948–14955 (2005). ArticleCASPubMed Google Scholar
Connolly, J.B. et al. Associative learning disrupted by impaired Gs signaling in Drosophila mushroom bodies. Science274, 2104–2107 (1996). ArticleCASPubMed Google Scholar
Wu, J.S. & Luo, L. A protocol for dissecting Drosophila melanogaster brains for live imaging or immunostaining. Nat. Protoc.1, 2110–2115 (2006). ArticleCASPubMed Google Scholar
Panchuk-Voloshina, N. et al. Alexa dyes, a series of new fluorescent dyes that yield exceptionally bright, photostable conjugates. J. Histochem. Cytochem.47, 1179–1188 (1999). ArticleCASPubMed Google Scholar