Complete Connectomic Reconstruction of Olfactory Projection Neurons in the Fly Brain

被引:106
作者
Bates, Alexander S. [1 ]
Schlegel, Philipp [1 ,2 ]
Roberts, Ruairi J., V [2 ]
Drummond, Nikolas [2 ]
Tamimi, Imaan F. M. [2 ]
Turnbull, Robert [2 ]
Zhao, Xincheng [2 ,3 ]
Marin, Elizabeth C. [2 ]
Popovici, Patricia D. [1 ]
Dhawan, Serene [2 ]
Jamasb, Arian [2 ]
Javier, Alexandre [2 ]
Capdevila, Laia Serratosa [2 ]
Li, Feng [4 ]
Rubin, Gerald M. [4 ]
Waddell, Scott [5 ]
Bock, Davi D. [6 ]
Costa, Marta [2 ]
Jefferis, Gregory S. X. E. [1 ,2 ]
机构
[1] MRC, Neurobiol Div, Lab Mol Biol, Cambridge CB2 0QH, England
[2] Univ Cambridge, Dept Zool, Cambridge CB2 3EJ, England
[3] Henan Agr Univ, Coll Plant Protect, Dept Entomol, Zhengzhou 450002, Peoples R China
[4] Howard Hughes Med Inst, Janelia Res Campus, Ashburn, VA 20147 USA
[5] Univ Oxford, Ctr Neural Circuits & Behav, Oxford OX1 3SR, England
[6] Univ Vermont, Larner Coll Med, Dept Neurol Sci, Burlington, VT 05405 USA
基金
英国医学研究理事会; 欧洲研究理事会; 英国惠康基金;
关键词
MUSHROOM BODY; ANTENNAL LOBE; POSTEMBRYONIC LINEAGES; GAIN-CONTROL; WILD-TYPE; DROSOPHILA; ORGANIZATION; BEHAVIOR; CIRCUIT; MAP;
D O I
10.1016/j.cub.2020.06.042
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Nervous systems contain sensory neurons, local neurons, projection neurons, and motor neurons. To understand how these building blocks form whole circuits, we must distil these broad classes into neuronal cell types and describe their network connectivity. Using an electron micrograph dataset for an entire Drosophila melanogaster brain, we reconstruct the first complete inventory of olfactory projections connecting the antennal lobe, the insect analog of the mammalian olfactory bulb, to higher-order brain regions in an adult animal brain. We then connect this inventory to extant data in the literature, providing synaptic-resolution "holotypes" both for heavily investigated and previously unknown cell types. Projection neurons are approx-imately twice as numerous as reported by light level studies; cell types are stereotyped, but not identical, in cell and synapse numbers between brain hemispheres. The lateral horn, the insect analog of the mammalian cortical amygdala, is the main target for this olfactory information and has been shown to guide innate behavior. Here, we find new connectivity motifs, including axo-axonic connectivity between projection neurons, feedback, and lateral inhibition of these axons by a large population of neurons, and the convergence of different inputs, including non-olfactory inputs and memory-related feedback onto third-order olfactory neurons. These features are less prominent in the mushroom body calyx, the insect analog of the mammalian piriform cortex and a center for associative memory. Our work provides a complete neuroanatomical platform for future studies of the adult Drosophila olfactory system.
引用
收藏
页码:3183 / +
页数:23
相关论文
共 103 条
[1]   Acid sensing by the Drosophila olfactory system [J].
Ai, Minrong ;
Min, Soohong ;
Grosjean, Yael ;
Leblanc, Charlotte ;
Bell, Rati ;
Benton, Richard ;
Suh, Greg S. B. .
NATURE, 2010, 468 (7324) :691-U112
[2]   Neuronal mechanisms underlying innate and learned olfactory processing in Drosophila [J].
Amin, Hoger ;
Lin, Andrew C. .
CURRENT OPINION IN INSECT SCIENCE, 2019, 36 :9-17
[3]   Mushroom body output neurons encode valence and guide memory-based action selection in Drosophila [J].
Aso, Yoshinori ;
Sitaraman, Divya ;
Ichinose, Toshiharu ;
Kaun, Karla R. ;
Vogt, Katrin ;
Belliart-Guerin, Ghislain ;
Placais, Pierre-Yves ;
Robie, Alice A. ;
Yamagata, Nobuhiro ;
Schnaitmann, Christopher ;
Rowell, William J. ;
Johnston, Rebecca M. ;
Ngo, Teri-T B. ;
Chen, Nan ;
Korff, Wyatt ;
Nitabach, Michael N. ;
Heberlein, Ulrike ;
Preat, Thomas ;
Branson, Kristin M. ;
Tanimoto, Hiromu ;
Rubin, Gerald M. .
ELIFE, 2014, 3 :e04580
[4]   The neuronal architecture of the mushroom body provides a logic for associative learning [J].
Aso, Yoshinori ;
Hattori, Daisuke ;
Yu, Yang ;
Johnston, Rebecca M. ;
Iyer, Nirmala A. ;
Ngo, Teri-T B. ;
Dionne, Heather ;
Abbott, L. F. ;
Axel, Richard ;
Tanimoto, Hiromu ;
Rubin, Gerald M. .
ELIFE, 2014, 3 :e04577
[5]   Decoding of Context-Dependent Olfactory Behavior in Drosophila [J].
Badel, Laurent ;
Ohta, Kazumi ;
Tsuchimoto, Yoshiko ;
Kazama, Hokto .
NEURON, 2016, 91 (01) :155-167
[6]   STABILITY OF 2 HIERARCHICAL GROUPING TECHNIQUES CASE 1 - SENSITIVITY TO DATA ERRORS [J].
BAKER, FB .
JOURNAL OF THE AMERICAN STATISTICAL ASSOCIATION, 1974, 69 (346) :440-445
[7]   The natverse, a versatile toolbox for combining and analysing neuroanatomical data [J].
Bates, Alexander Shakeel ;
Manton, James D. ;
Jagannathan, Sridhar R. ;
Costa, Marta ;
Schlegel, Philipp ;
Rohlfing, Torsten ;
Jefferis, Gregory S. X. E. .
ELIFE, 2020, 9
[8]   Neuronal cell types in the fly: single-cell anatomy meets single-cell genomics [J].
Bates, Alexander Shakeel ;
Janssens, Jasper ;
Jefferis, Gregory S. X. E. ;
Aerts, Stein .
CURRENT OPINION IN NEUROBIOLOGY, 2019, 56 :125-134
[9]   The wiring diagram of a glomerular olfactory system [J].
Berck, Matthew E. ;
Khandelwal, Avinash ;
Claus, Lindsey ;
Hernandez-Nunez, Luis ;
Si, Guangwei ;
Tabone, Christopher J. ;
Li, Feng ;
Truman, James W. ;
Fetter, Rick D. ;
Louis, Matthieu ;
Samuel, Aravinthan D. T. ;
Cardona, Albert .
ELIFE, 2016, 5
[10]   Sensory processing in the Drosophila antennal lobe increases reliability and separability of ensemble odor representations [J].
Bhandawat, Vikas ;
Olsen, Shawn R. ;
Gouwens, Nathan W. ;
Schlief, Michelle L. ;
Wilson, Rachel I. .
NATURE NEUROSCIENCE, 2007, 10 (11) :1474-1482