Ai H, Nishino H, Itoh T (2007) Topographic organization of sensory afferents of Johnston’s organ in the honeybee brain. J Comp Neurol 502:1030–1046
Anderson DT (1973) Embryology and phylogeny in annelids and arthropods. Pergamon Press, Oxford, New York
Bacon JP, Möhl B (1979) Activity of an identified wind interneurone in a flying locust. Nature 278:638–640
Bentley D, Keshishian H, Shankland M, Torian-Raymond A (1979) Quantitative staging of embryonic development of the grasshopper, Schistocerca nitens. J Embryol Exp Morphol 54:47–74
Boekhoff-Falk G (2005) Hearing in Drosophila: development of Johnston´s organ and emerging parallels to vertebrate ear development. Dev Dyn 232:550–558
Article CAS PubMed Google Scholar
Blöchl R, Selzer R (1988) Embryogenesis of the connective chordotonal organ in the pedicel of the American cockroach: cell lineage and morphological differentiation. Cell Tissue Res 252:669–678
Boyan G, Ehrhardt E (2015) Pioneer neurons of the antennal nervous system project to protocerebral pioneers in the grasshopper Schistocerca gregaria. Dev Genes Evol 225:377–382
Boyan G, Ehrhardt E (2019) Dysregulation of axogenesis in the antennal nervous system of the embryonic grasshopper Schistocerca gregaria. Inv Neurosci 19:3
Boyan G, Ehrhardt E (2022) Early embryonic development of Johnston’s Organ in the antenna of the desert locust Schistocerca gregaria. Dev Genes Evol 232:103–113
Article PubMed PubMed Central Google Scholar
Boyan G, Niederleitner B (2011) Patterns of dye coupling involving serotonergic neurons provide insights into the cellular organization of a central complex lineage of the embryonic grasshopper Schistocerca gregaria. Dev Genes Evol 22:297–313
Boyan GS, Williams JLD (2004) Embryonic development of the sensory innervation of the antenna of the grasshopper Schistocerca gregaria. Arthr Struct Dev 33:381–397
Boyan GS, Williams JLD (2007) Embryonic development of a peripheral nervous system: nerve tract associated cells and pioneer neurons in the antenna of the grasshopper Schistocerca gregaria. Arthr Struct Dev 36:336–350
Boyan GS, Hirth F, Reichert H (2003) Commissure formation in the embryonic insect brain. Arthr Struct Dev 32:61–77
Boyan GS, Williams L, Meier T (1993) Organization of the commissural fibers in the adult brain of the locust. J Comp Neurol 332:358–377
Article CAS PubMed Google Scholar
Brockmann A, Robinson GE (2007) Central projections of sensory systems involved in honey bee dance language communication. Brain Behav Evol 70:125–136
Chang WS, Serikawa K, Allen K, Bentley D (1992) Disruption of pioneer growth cone guidance in vivo by removal of glycosylphosphatidylinositol-anchored cell surface proteins. Development 114:507–519
Article CAS PubMed Google Scholar
Dickson BJ (2002) Molecular mechanisms of axon guidance. Science 298:1959
Article CAS PubMed Google Scholar
Eberl DF, Boekhoff-Falk G (2007) Development of Johnston’s organ in Drosophila. Int J Dev Biol 51:679–687
Article CAS PubMed PubMed Central Google Scholar
Ehrhardt E, Liu Y, Boyan GS (2015) Axogenesis in the antennal nervous system of the grasshopper Schistocerca gregaria revisited: the base pioneers. Dev Genes Evol 225:39–45
Article CAS PubMed Google Scholar
Ganfornina MD, Sánchez D, Bastiani MJ (1995) Lazarillo, a new GPI-linked surface lipocalin, is restricted to a subset of neurons in the grasshopper embryo. Development 121:123–134
Article CAS PubMed Google Scholar
Gewecke M (1970) Antennae: another wind-sensitive receptor in locusts. Nature 225:1263–1264
Article CAS PubMed Google Scholar
Gewecke M (1972) Bewegungsmechanismus und Gelenkrezeptoren der Antennen von Locusta migratoria L. (Insecta, Orthoptera). Zeit Morph Ökol Tiere 71:128–149
Gewecke M (1979) Central projections of antennal afferents for the flight motor in Locusta migratoria (Orthoptera: Acrididae). Entom Gen 5:317–320
Goodman CS (1996) Mechanisms and molecules that control growth cone guidance. Ann Rev Neurosci 19:341–377
Article CAS PubMed Google Scholar
Göpfert M, Robert D (2001a) Turning the key on Drosophila audition. Nature 411:908
Göpfert M, Robert D (2001b) Active auditory mechanics in mosquitoes. Proc R Soc Lond B 268:333–339
Griss C, Rowell CHF (1986) Three descending interneurons reporting deviation from course in the locust. I. Anatomy. J Comp Physiol A 158:765–774
Article CAS PubMed Google Scholar
Grob R, Tritscher C, Grübel K, Stigloher C, Groh C, Fleischmann PN, Rössler W (2021) Johnston’s organ and its central projections in Cataglyphis desert ants. J Comp Neurol 529:2138–2155
Hansson BS, Ochieng SA, Grosmaitre X, Anton S, Njagi PGN (1996) Physiological responses and central nervous projections of antennal olfactory neurones in the adult desert locust, Schistocerca gregaria (Orthoptera: Acrididae). J Comp Physiol A 179:157–167
Ho RK, Goodman CS (1982) Peripheral pathways are pioneered by an array of central and peripheral neurones in grasshopper embryos. Nature 297:404–406
Article CAS PubMed Google Scholar
Ito K, Shinomiya K, Ito M, Armstrong JD, Boyan G, Hartenstein V, Harzsch S, Heisenberg M, Homberg U, Jenett A, Keshishian H, Restifo LL, Rössler W, Simpson JH, Strausfeld NJ, Strauss R, Vosshall LB (2014) A systematic nomenclature for the insect brain. Neuron 81:755–765
Article CAS PubMed Google Scholar
Jan LY, Jan YN (1982) Antibodies to horseradish-peroxidase as specific neuronal markers in Drosophila and grasshopper embryos. Proc Natl Acad Sci USA 79:2700–2704
Article CAS PubMed PubMed Central Google Scholar
Jarman AP (2014) Development of the auditory organ (Johnston’s organ) in Drosophila. In: Romand R, Varela-Nieto I (eds) Development of auditory and vestibular systems. Academic Press, Cambridge, pp 31–63
Kamikouchi A, Shimada T, Ito K (2006) Comprehensive classification of the auditory sensory projections in the brain of the fruit fly Drosophila melanogaster. J Comp Neurol 499:317–356
Keil TA (1997) Comparative morphogenesis of sensilla: a review. Int J Insect Morphol Embryol 26:151–160
Keil TA, Steiner C (1990) Morphogenesis of the antenna of the male silk moth, Antheraea polyphemus. II. Differential mitoses of ‘dark’ precursor cells create the Anlagen of sensilla. Tissue Cell 22:705–720
Article CAS PubMed Google Scholar
Mamiya A, Dickinson MH (2015) Antennal mechanosensory neurons mediate wing motor reflexes in flying Drosophila. J Neurosci 35:7977–7991
Article CAS PubMed PubMed Central Google Scholar
Manning A (1967) Antennae and sexual receptivity in Drosophila melanogaster females. Science 158:136–137
Article CAS PubMed Google Scholar
O’Shea M, Williams JLD (1974) The anatomy and output connection of a locust visual interneurone; the lobula giant movement detector (LGMD) neurone. J Comp Physiol 91:257–266
O’Shea M, Rowell CHF, Williams JLD (1974) The anatomy of a locust visual interneurone; the descending contralateral movement detector. J Exp Biol 60:1–12
Patella P, Wilson RI (2018) Functional maps of mechanosensory features in the Drosophila brain. Current Biol 28:1189–1203
Pareto A (1972) Die zentrale Verteilung der Fühlerafferenz bei Arbeiterinnen der Honigbiene, Apis mellifera L. Z Zellforsch 131:109–140
Article CAS PubMed Google Scholar
Rowell CHF (1971) The Orthopteran Descending Movement Detector (DMD) neurones: A characterisation and review. Z Vergl Physiol 73:167–194
Rowell CHF (1988) Mechanisms of flight steering in locusts. Experientia 44:389–395
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