Orcokinin in the central complex of the locust Schistocerca gregaria: Identification of immunostained neurons and colocalization with other neuroactive substances.

RRID: AB_2307385 RRID: AB_2307443 RRID: AB_2313971 RRID: AB_2314455 RRID: AB_2314497 RRID: AB_2315017 RRID: AB_2315056 RRID: AB_2337258 RRID: AB_2337423 RRID: AB_2337925 RRID: AB_2340411 RRID: AB_2340607 RRID: AB_2340612 RRID: AB_261363 RRID: AB_477019 RRID: AB_572262 RRID: SCR_007353 RRID: SCR_014199 RRID: SCR_014235 RRID: SCR_016951 allatostatin glutamic acid decarboxylase immunocytochemistry insect brain serotonin spatial orientation

Journal

The Journal of comparative neurology
ISSN: 1096-9861
Titre abrégé: J Comp Neurol
Pays: United States
ID NLM: 0406041

Informations de publication

Date de publication:
06 2021
Historique:
revised: 22 10 2020
received: 13 08 2020
accepted: 22 10 2020
pubmed: 1 11 2020
medline: 11 1 2022
entrez: 31 10 2020
Statut: ppublish

Résumé

The central complex is a group of highly interconnected neuropils in the insect brain. It is involved in the control of spatial orientation, based on external compass cues and various internal needs. The functional and neurochemical organization of the central complex has been studied in detail in the desert locust Schistocerca gregaria. In addition to classical neurotransmitters, immunocytochemistry has provided evidence for a major contribution of neuropeptides to neural signaling within the central complex. To complement these data, we have identified all orcokinin-immunoreactive neurons in the locust central complex and associated brain areas. About 50 bilateral pairs of neurons innervating all substructures of the central complex exhibit orcokinin immunoreactivity. Among these were about 20 columnar neurons, 33 bilateral pairs of tangential neurons of the central body, and seven pairs of tangential neurons of the protocerebral bridge. In silico transcript analysis suggests the presence of eight different orcokinin-A type peptides in the desert locust. Double label experiments showed that all orcokinin-immunostained tangential neurons of the lateral accessory lobe cluster were also immunoreactive for GABA and the GABA-synthesizing enzyme glutamic acid decarboxylase. Two types of tangential neurons of the upper division of the central body were, furthermore, also labeled with an antiserum against Dip-allatostatin I. No colocalization was found with serotonin immunostaining. The data provide additional insights into the neurochemical organization of the locust central complex and suggest that orcokinin-peptides of the orcokinin-A gene act as neuroactive substances at all stages of signal processing in this brain area.

Identifiants

pubmed: 33128250
doi: 10.1002/cne.25062
doi:

Substances chimiques

Neuropeptides 0
orcokinin 145344-97-4

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

1876-1894

Informations de copyright

© 2020 The Authors. The Journal of Comparative Neurology published by Wiley Periodicals LLC.

Références

Beetz, M. J., el Jundi, B., Heinze, S., & Homberg, U. (2015). Topographic organization and possible function of the posterior optic tubercles in the brain of the desert locust Schistocerca gregaria. Journal of Comparative Neurology, 523, 1589-1607.
Bungart, D., Dircksen, H., & Keller, R. (1994). Quantitative determination and distribution of the myotropic neuropeptide orcokinin in the nervous system of astacidean crustaceans. Peptides, 15, 393-400.
Bungart, D., Hilbich, C., Dircksen, H., & Keller, R. (1995). Occurrence of analogues of the myotropic neuropeptide orcokinin in the shore crab, Carcinus maenas: Evidence for a novel neuropeptide family. Peptides, 16, 67-72.
Chen, J., Choi, M. S., Mizoguchi, A., Veenstra, J. A., Kang, K., Kim, Y. J., & Kwon, J. Y. (2015). Isoform-specific expression of the neuropeptide orcokinin in Drosophila melanogaster. Peptides, 68, 50-57.
Clancy, B., & Cauller, L. J. (1998). Reduction of background autofluorescence in brain sections following immersion in sodium borohydride. Journal of Neuroscience Methods, 83, 97-102.
Dacke, M., & el Jundi, B. (2018). The dung beetle compass. Current Biology, 28, R993-R997.
Dircksen, H., Burdzik, S., Sauter, A., & Keller, R. (2000). Two orcokinins and the novel octapeptide orcomyotropin in the hindgut of the crayfish Orconectes limosus: Identified myostimulatory neuropeptides originating together in neurones of the terminal abdominal ganglion. Journal of Experimental Biology, 203, 2807-2818.
Dircksen, H., & Homberg, U. (1995). Crustacean cardioactive peptide-immunoreactive neurons innervating brain neuropils, retrocerebral complex and stomatogastric nervous system of the locust, Locusta migratoria. Cell and Tissue Research, 279, 495-515.
Dircksen, H., Neupert, S., Predel, R., Verleyen, P., Huybrechts, J., Strauss, J., … Grimmelikhuijzen, C. J. (2011). Genomics, transcriptomics, and peptidomics of Daphnia pulex neuropeptides and protein hormones. Journal of Proteome Research, 10, 4478-4504.
Donlea, J. M., Pimentel, D., Talbot, C. B., Kempf, A., Omoto, J. J., Hartenstein, V., & Miesenbröck, G. (2018). Recurrent circuitry for balancing sleep need and sleep. Neuron, 97, 378-389.
el Jundi, B., Warrant, E. J., Pfeiffer, K., & Dacke, M. (2018). Neuroarchitecture of the dung beetle central complex. Journal of Comparative Neurology, 526, 2612-2630.
Franconville, R., Beron, C., & Jayaraman, V. (2018). Building a functional connectome of the Drosophila central complex. eLife, 7, e37017.
Gellerer, A., Franke, A., Neupert, S., Predel, R., Zhou, X., Liu, S., Reiher, W., Wegener, C., & Homberg, U. (2015). Identification and distribution of SIFamide in the nervous system of the desert locust Schistocerca gregaria. Journal of Comparative Neurology, 523, 108-125.
Green, J., Adachi, A., Shah, K. K., Hirokawa, J. D., Magani, P. S., & Maimon, G. (2017). A neural circuit architecture for angular integration in Drosophila. Nature, 546, 101-106.
Green, J., & Maimon, G. (2018). Building a heading signal from anatomically defined neuron types in the Drosophila central complex. Current Opinion in Neurobiology, 52, 156-164.
Hall, T. A. (1999). BioEdit: A user-friendly biological sequence alignment editor and analysis program for windows 95/98/NT. Nucleic Acids Symposium Series, 41, 95-98.
Heinze, S., Florman, J., Asokaraj, S., el Jundi, B., & Reppert, S. M. (2013). Anatomical basis of sun compass navigation II: The neuronal composition of the central complex of the monarch butterfly. Journal of Comparative Neurology, 521, 267-298.
Heinze, S., & Homberg, U. (2007). Maplike representation of celestial E-vector orientations in the brain of an insect. Science, 315, 995-997.
Heinze, S., & Homberg, U. (2008). Neuroarchitecture of the central complex of the desert locust: Intrinsic and columnar neurons. Journal of Comparative Neurology, 511, 454-478.
Heinze, S., & Homberg, U. (2009). Linking the input to the output: New sets of neurons complement the polarization vision network in the locust central complex. Journal of Neuroscience, 29, 4911-4921.
Hensgen, R., England, L., Homberg, U., & Pfeiffer, K. (2020). Neuroarchitecture of the central complex in the brain of the honeybee: Neuronal cell types. Journal of Comparative Neurology, (2020 May 6). https://doi.org/10.1002/cne.24941.
Hofer, S., Dircksen, H., Tollbäck, P., & Homberg, U. (2005). Novel insect orcokinins: Characterization and neuronal distribution in the brains of selected dicondylian insects. Journal of Comparative Neurology, 490, 57-71.
Hofer, S., & Homberg, U. (2006). Evidence for a role of orcokinin-related peptides in the circadian clock controlling locomotor activity of the cockroach Leucophaea maderae. Journal of Experimental Biology, 209, 2794-2803.
Homberg, U. (1991). Neuroarchitecture of the central complex in the brain of the locust Schistocerca gregaria and S. americana as revealed by serotonin immunocytochemistry. Journal of Comparative Neurology, 303, 245-254.
Homberg, U. (2002). Neurotransmitters and neuropeptides in the brain of the locust. Microscopy Research and Technique, 56, 189-209.
Homberg, U., Vitzthum, H., Müller, M., & Binkle, U. (1999). Immunocytochemistry of GABA in the central complex of the locust Schistocerca gregaria: Identification of immunoreactive neurons and colocalization with neuropeptides. Journal of Comparative Neurology, 409, 495-507.
Honkanen, A., Aden, A., da Silva Freitas, J., & Heinze, S. (2019). The insect central complex and the neural basis of navigational strategies. Journal of Experimental Biology, 222, jeb188854.
Hou, L., Jiang, F., Yang, P., Wang, X., & Kang, L. (2015). Molecular characterization and expression profiles of neuropeptide precursors in the migratory locust. Insect Biochemistry and Molecular Biology, 63, 63-71.
Jékely, G. (2013). Global view of the evolution and diversity of metazoan neuropeptide signaling. Proceedings of the National Academy of Science U.S.A., 110, 8702-8710.
Jiang, H., Kim, H. G., & Park, Y. (2015). Alternatively spliced orcokinin isoforms and their functions in Tribolium castaneum. Insect Biochemistry and Molecular Biology, 65, 1-9.
Kahsai, L., Martin, J.-R., & Winther, A. M. E. (2010). Neuropeptides in the Drosophila central complex in modulation of locomotor behavior. Journal of Experimental Biology, 213, 2256-2265.
Kahsai, L., & Winther, A. M. E. (2011). Chemical neuroanatomy of the Drosophila central complex: Distribution of multiple neuropeptides in relation to neurotransmitters. Journal of Comparative Neurology, 519, 290-315.
Konopová, B., Buchberger, E., & Crisp, A. (2020). Transcriptome of pleuropodia from locust embryos supports that these organs produce enzymes enabling the larva to hatch. Frontiers in Zoology, 17, 4.
Kurylas, A. E., Ott, S. R., Schachtner, J., Elphick, M. R., Williams, L., & Homberg, U. (2005). Localization of nitric oxide synthase in the central complex and surrounding midbrain neuropils of the locust Schistocerca gregaria. Journal of Comparative Neurology, 484, 206-223.
Liang, X., Ho, M. C. W., Zhang, Y., Li, Y., Wu, M. N., Holy, T. E., & Taghert, P. H. (2019). Morning and evening circadian pacemakers independently drive premotor centers va a specific dopamine relay. Neuron, 102, 1-15.
Lin, M., Egertová, M., Zampronio, C. G., Jones, A. M., & Elphick, M. R. (2018). Functional characterization of a second pedal peptide/orcokinin-type neuropeptide signaling system in the starfish Asterias rubens. Journal of Comparative Neurology, 526, 858-876.
Liu, S., Liu, Q., Tabuchi, M., & Wu, M. N. (2016). Sleep drive is encoded by neural plastic changes in a dedicated circuit. Cell, 165, 1347-1360.
Martin, J. P., Guo, L. M., Harley, C. M., & Ritzmann, R. E. (2015). Central-complex control of movement in the freely walking cockroach. Current Biology, 25, 2795-2803.
Müller, M., Homberg, U., & Kühn, A. (1997). Neuroarchitecture of the lower division of the central body in the brain of the locust Schistocerca gregaria. Cell and Tissue Research, 288, 159-176.
Nässel, D. R., & Homberg, U. (2006). Neuropeptides in interneurons of the insect brain. Cell and Tissue Research, 326, 1-24.
NCBI Resource Coordinators. (2016). Database resources of the National Center for biotechnology information. Nucleic Acids Research, 44, D7-D19.
Ofstad, T. A., Zuker, C. S., & Reiser, M. B. (2011). Visual place learning in Drosophila melanogaster. Nature, 474, 204-207.
Omoto, J. J., Nguyen, B. M., Kandimalla, P., Lovick, J. K., Donlea, J. M., & Hartenstein, V. (2018). Neuronal constituents and putative interactions within the Drosophila ellipsoid body neuropil. Frontiers in Neural Circuits, 12, 103.
Ons, S., Belles, X., & Maestro, J. L. (2015). Orcokinins contribute to the regulation of vitellogenin transcription in the cockroach Blattella germanica. Journal of Insect Physiology, 82, 129-133.
Pegel, U., Pfeiffer, K., & Homberg, U. (2018). Integration of celestial compass cues in the central complex of the locust brain. Journal of Experimental Biology, 221, jeb171207.
Pegel, U., Pfeiffer, K., Scholtyssek, C., & Homberg, U. (2019). Two compasses in the central complex of the locust brain. Journal of Neuroscience, 39, 3070-3080.
Petersen, T. N., Brunak, S., von Heijne, G., & Nielsen, H. (2011). SignalP 4.0: discriminating signal peptides from transmembrane regions. Nature Methods, 8, 785-786.
Pfeiffer, K., & Homberg, U. (2014). Organization and functional roles of the central complex in the insect brain. Annual Review of Entomology, 59, 165-184.
Rosner, R., Pegel, U., & Homberg, U. (2019). Responses of compass neurons in the locust brain to visual motion and leg motor activity. Journal of Experimental Biology, 222, jeb196261.
Scheffer, L. K., Xu, C. S., Januszewski, M., Lu, Z., Takemura, S., Hayworth, K. J., … Plaza, S. M. (2020). A connectome of the adult Drosophila central brain. eLife, 9, e57443.
Schendzielorz, J., & Stengl, M. (2014). Candidates for the light entrainment pathway to the circadian clock of the Madeira cockroach Rhyparobia maderae. Cell and Tissue Research, 355, 447-462.
Seelig, J. D., & Jayaraman, V. (2015). Neural dynamics for landmark orientation and angular path integration. Nature, 521, 186-191.
Stapleton, A., Tyrer, N. M., Goosey, M. W., & Cooper, M. E. (1989). A rapid purification of L-glutamic acid decarboxylase from the brain of the locust Schistocerca gregaria. Journal of Neurochemistry, 53, 1126-1133.
Sterkel, M., Olivera, P. L., Urlaub, H., Hernandez-Martinez, S., Rivera-Pomar, R., & Ons, S. (2012). OKB, a novel family of brain-gut neuropeptides in insects. Insect Biochemistry and Molecular Biology, 42, 466-473.
Stern, M. (2009). The PM1 neurons, movement sensitive centrifugal visual brain neurons in the locust: Anatomy, physiology, and modulation by identified octopaminergic neurons. Journal of Comparative Physiology A, 195, 123-137.
Sternberger, L. A. (1979). Immunocytochemistry. New York: John Wiley and Sons.
Tanaka, Y. (2016, 2016). Chapter 68 - Orcokinins. In Y. Takei, H. Ando, & K. Tsutsui (Eds.), Handbook of hormones (pp. 440-e68-440-e65). San Diego: Academic Press. https://doi.org/10.1016/B978-0-12-801028-0.00068-4.
Turner-Evans, D., Wegener, S., Rouault, H., Franconville, R., Wolff, T., Seelig, J. D., … Jayaraman, V. (2017). Angular velocity integration in a fly heading circuit. eLife, 6, e23496.
Varga, A. G., Kathman, N. D., Martin, J. P., Guo, P., & Ritzmann, R. (2017). Spatial navigation and the central complex: Sensory acquisition, orientation, and motor control. Frontiers in Behavioral Neuroscience, 11, 4.
Veenstra, J. A. (2014). The contribution of the genomes of a termite and a locust to our understanding of insect neuropeptides and neurohormones. Frontiers in Physiology, 5, 454.
Veenstra, J. A., & Šimo, L. (2020). The TRH-ortholog EFLamide in the migratory locust. Insect Biochemistry and Molecular Biology, 116, 103281.
Vitzthum, H., & Homberg, U. (1998). Immunocytochemical demonstration of locustatachykinin-related peptides in the central complex of the locust brain. Journal of Comparative Neurology, 390, 455-469.
Vitzthum, H., Homberg, U., & Agricola, H. (1996). Distribution of Dip-allatostatin I-like immunoreactivity in the brain of the locust Schistocerca gregaria with detailed analysis of immunostaining in the central complex. Journal of Comparative Neurology, 369, 419-437.
von Hadeln, J., Althaus, V., Häger, L., & Homberg, U. (2018). Anatomical organization of the cerebrum of the desert locust Schistocerca gregaria. Cell and Tissue Research, 374, 39-62.
von Hadeln, J., Hensgen, R., Bockhorst, T., Rosner, R., Heidasch, R., Pegel, U., … Homberg, U. (2020). Neuroarchitecture of the central complex of the desert locust: Tangential neurons. Journal of Comparative Neurology, 528, 906-934.
Weir, P. T., Schnell, B., & Dickinson, M. H. (2014). Central complex neurons exhibit behaviorally gated responses to visual motion in Drosophila. Journal of Neurophysiology, 111, 62-71.
Wendt, B., & Homberg, U. (1992). Immunocytochemistry of dopamine in the brain of the locust Schistocerca gregaria. Journal of Comparative Neurology, 321, 387-403.
Wolff, T., Iyer, N. A., & Rubin, G. M. (2015). Neuroarchitecture and neuroanatomy of the Drosophila central complex: A GAL4-based dissection of protocerebral bridge neurons and circuits. Journal of Comparative Neurology, 523, 997-1037.
Wolff, T., & Rubin, G. M. (2018). Neuroarchitecture of the Drosophila central complex: A catalog of nodulus and asymmetrical body neurons and a revision of the protocerebral bridge catalog. Journal of Comparative Neurology, 526, 2585-2611.
Wulff, J. P., Capriotti, N., & Ons, S. (2018). Orcokinins regulate the expression of neuropeptide precursor genes related to ecdysis in the hemimetabolous insect Rhodnius prolixus. Journal of Insect Physiology, 108, 31-39.
Wulff, J. P., Sierra, I., Sterkel, M., Holtof, M., Van Wielendaele, P., Francini, F., … Ons, S. (2017). Orcokinin neuropeptides regulate ecdysis in the hemimetabolous insect Rhodnius prolixus. Insect Biochemistry and Molecular Biology, 81, 91-102.
Yamanaka, N., Roller, L., Zitnan, D., Satake, H., Mizoguchi, A., Kataoka, H., & Tanaka, Y. (2011). Bombyx orcokinins are brain-gut peptides involved in the neuronal regulation of ecdysteroidogenesis. Journal of Comparative Neurology, 519, 238-246.
Yasuda-Kamatani, Y., & Yasuda, A. (2000). Identification of orcokinin gene-related peptides in the brain of the crayfish Procambarus clarkii by the combination of MALDI-TOF and on-line capillary HPLC/Q-TOF mass spectrometries and molecular cloning. General and Comparative Endocrinology, 118, 161-172.
Young, J. M., & Armstrong, J. D. (2010). Structure of the adult central complex in Drosophila: Organization of distinct neuronal subsets. Journal of Comparative Neurology, 518, 1500-1524.
Zittrell, F., Pfeiffer, K., & Homberg, U. (2020). Matched-filter coding of sky polarization results in an internal sun compass in the brain of the desert locust. Proceedings of the National Academy of Sciences U. S. A., 117, 25810-25817.

Auteurs

Uwe Homberg (U)

Department of Biology, Animal Physiology & Center for Mind, Brain and Behavior (CMBB), University of Marburg and Justus Liebig University Giessen, Marburg, Germany.

Ronja Hensgen (R)

Department of Biology, Animal Physiology & Center for Mind, Brain and Behavior (CMBB), University of Marburg and Justus Liebig University Giessen, Marburg, Germany.

Evelyn Rieber (E)

Department of Biology, Animal Physiology & Center for Mind, Brain and Behavior (CMBB), University of Marburg and Justus Liebig University Giessen, Marburg, Germany.
Behavioral Physiology and Sociobiology, Biocenter, University of Würzburg, Würzburg, Germany.

Jutta Seyfarth (J)

Department of Biology, Animal Physiology & Center for Mind, Brain and Behavior (CMBB), University of Marburg and Justus Liebig University Giessen, Marburg, Germany.

Martina Kern (M)

Department of Biology, Animal Physiology & Center for Mind, Brain and Behavior (CMBB), University of Marburg and Justus Liebig University Giessen, Marburg, Germany.

Stefan Dippel (S)

Department of Biology, Animal Physiology & Center for Mind, Brain and Behavior (CMBB), University of Marburg and Justus Liebig University Giessen, Marburg, Germany.

Heinrich Dircksen (H)

Department of Zoology, Stockholm University, Stockholm, Sweden.

Lisa Spänig (L)

Department of Biology, Animal Physiology & Center for Mind, Brain and Behavior (CMBB), University of Marburg and Justus Liebig University Giessen, Marburg, Germany.

Yelda Pakize Kina (YP)

Department of Biology, Animal Physiology & Center for Mind, Brain and Behavior (CMBB), University of Marburg and Justus Liebig University Giessen, Marburg, Germany.

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