Focal laser stimulation of fly nociceptors activates distinct axonal and dendritic Ca
Journal
Biophysical journal
ISSN: 1542-0086
Titre abrégé: Biophys J
Pays: United States
ID NLM: 0370626
Informations de publication
Date de publication:
03 08 2021
03 08 2021
Historique:
received:
03
03
2021
revised:
11
05
2021
accepted:
02
06
2021
pubmed:
28
6
2021
medline:
12
8
2021
entrez:
27
6
2021
Statut:
ppublish
Résumé
Drosophila class IV neurons are polymodal nociceptors that detect noxious mechanical, thermal, optical, and chemical stimuli. Escape behaviors in response to attacks by parasitoid wasps are dependent on class IV cells, whose highly branched dendritic arbors form a fine meshwork that is thought to enable detection of the wasp's needle-like ovipositor barb. To understand how mechanical stimuli trigger cellular responses, we used a focused 405-nm laser to create highly localized lesions to probe the precise position needed to evoke responses. By imaging calcium signals in dendrites, axons, and soma in response to stimuli of varying positions, intensities, and spatial profiles, we discovered that there are two distinct nociceptive pathways. Direct stimulation to dendrites (the contact pathway) produces calcium responses in axons, dendrites, and the cell body, whereas stimulation adjacent to the dendrite (the noncontact pathway) produces calcium responses in the axons only. We interpret the noncontact pathway as damage to adjacent cells releasing diffusible molecules that act on the dendrites. Axonal responses have higher sensitivities and shorter latencies. In contrast, dendritic responses have lower sensitivities and longer latencies. Stimulation of finer, distal dendrites leads to smaller responses than stimulation of coarser, proximal dendrites, as expected if the contact response depends on the geometric overlap of the laser profile and the dendrite diameter. Because the axon signals to the central nervous system to trigger escape behaviors, we propose that the density of the dendritic meshwork is high not only to enable direct contact with the ovipositor but also to enable neuronal activation via diffusing signals from damaged surrounding cells. Dendritic contact evokes responses throughout the dendritic arbor, even to regions distant and distal from the stimulus. These dendrite-wide calcium signals may facilitate hyperalgesia or cellular morphological changes after dendritic damage.
Identifiants
pubmed: 34175294
pii: S0006-3495(21)00481-1
doi: 10.1016/j.bpj.2021.06.001
pmc: PMC8390926
pii:
doi:
Types de publication
Journal Article
Research Support, N.I.H., Extramural
Langues
eng
Sous-ensembles de citation
IM
Pagination
3222-3233Subventions
Organisme : NIMH NIH HHS
ID : DP1 MH110065
Pays : United States
Organisme : NINDS NIH HHS
ID : R01 NS118884
Pays : United States
Organisme : NIGMS NIH HHS
ID : T32 GM008283
Pays : United States
Informations de copyright
Copyright © 2021 Biophysical Society. Published by Elsevier Inc. All rights reserved.
Références
Genes Dev. 2012 Jul 15;26(14):1612-25
pubmed: 22759636
J Auton Nerv Syst. 2000 Jul 3;81(1-3):187-94
pubmed: 10869719
Science. 2013 Sep 6;341(6150):1113-6
pubmed: 24009394
Curr Biol. 2017 Feb 20;27(4):R129-R133
pubmed: 28222285
Cell. 2003 Apr 18;113(2):261-73
pubmed: 12705873
Philos Trans R Soc Lond B Biol Sci. 2019 Nov 11;374(1785):20190282
pubmed: 31544619
Development. 2002 Jun;129(12):2867-78
pubmed: 12050135
Nature. 2013 Jul 18;499(7458):295-300
pubmed: 23868258
Annu Rev Physiol. 1999;61:835-56
pubmed: 10099712
Vision Res. 1998 Sep;38(17):2539-49
pubmed: 12116702
Pain. 2002 Jan;95(1-2):41-7
pubmed: 11790466
PLoS One. 2013 Oct 25;8(10):e78704
pubmed: 24205297
Cell Rep. 2014 Nov 20;9(4):1183-90
pubmed: 25457610
Nature. 2010 Dec 16;468(7326):921-6
pubmed: 21068723
J Cell Biol. 1998 Jan 12;140(1):143-52
pubmed: 9425162
Purinergic Signal. 2009 Sep;5(3):269-72
pubmed: 19015952
PLoS Biol. 2004 Aug;2(8):E239
pubmed: 15269788
Proc Natl Acad Sci U S A. 2021 Jul 6;118(27):
pubmed: 34215693
Curr Biol. 2009 May 26;19(10):799-806
pubmed: 19375319
J Microsc. 2018 Oct;272(1):60-66
pubmed: 30044498
J Vis Exp. 2014 Feb 07;(84):e50998
pubmed: 24562098
Neurophotonics. 2020 Jan;7(1):011402
pubmed: 31372367
BMC Neurosci. 2014 Jan 16;15:14
pubmed: 24433322
Cell. 2009 Oct 16;139(2):267-84
pubmed: 19837031
Curr Biol. 2010 Mar 9;20(5):429-34
pubmed: 20171104
Dev Dyn. 2012 Jan;241(1):16-26
pubmed: 21932321
Nature. 2012 Feb 19;483(7388):209-12
pubmed: 22343891
Neuron. 2008 Sep 25;59(6):902-13
pubmed: 18817730
Elife. 2016 Feb 15;5:
pubmed: 26880554
Curr Biol. 2007 Dec 18;17(24):2105-2116
pubmed: 18060782