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PMID: 22483941 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Optogenetic analysis of a nociceptor neuron and network reveals ion channels acting downstream of primary sensors.

Current biology : CB ·Vol. 22 ·No. 9 ·2012-05-08 ·Pages 743-52

Husson SJ, Costa WS, Wabnig S, Stirman JN, Watson JD, Spencer WC, Akerboom J, Looger LL, Treinin M, Miller DM, Lu H, Gottschalk A

Abstract

Nociception generally evokes rapid withdrawal behavior in order to protect the tissue from harmful insults. Most nociceptive neurons responding to mechanical insults display highly branched dendrites, an anatomy shared by Caenorhabditis elegans FLP and PVD neurons, which mediate harsh touch responses. Although several primary molecular nociceptive sensors have been characterized, less is known about modulation and amplification of noxious signals within nociceptor neurons. First, we analyzed the FLP/PVD network by optogenetics and studied integration of signals from these cells in downstream interneurons. Second, we investigated which genes modulate PVD function, based on prior single-neuron mRNA profiling of PVD. Selectively photoactivating PVD, FLP, and downstream interneurons via Channelrhodopsin-2 (ChR2) enabled the functional dissection of this nociceptive network, without interfering signals by other mechanoreceptors. Forward or reverse escape behaviors were determined by PVD and FLP, via integration by command interneurons. To identify mediators of PVD function, acting downstream of primary nocisensor molecules, we knocked down PVD-specific transcripts by RNAi and quantified light-evoked PVD-dependent behavior. Cell-specific disruption of synaptobrevin or voltage-gated Ca(2+) channels (VGCCs) showed that PVD signals chemically to command interneurons. Knocking down the DEG/ENaC channel ASIC-1 and the TRPM channel GTL-1 indicated that ASIC-1 may extend PVD's dynamic range and that GTL-1 may amplify its signals. These channels act cell autonomously in PVD, downstream of primary mechanosensory molecules. Our work implicates TRPM channels in modifying excitability of and DEG/ENaCs in potentiating signal output from a mechano-nociceptor neuron. ASIC-1 and GTL-1 homologs, if functionally conserved, may denote valid targets for novel analgesics.

MeSH Terms
Ion Channels/metabolism Neurons/cytology,metabolism
Chemicals
Ion Channels
Authors & Affiliations
12 authors, click to expand affiliations / ORCID
Husson Steven J
Buchmann Institute for Molecular Life Sciences, Goethe-University Frankfurt, Max von Laue Str. 15, 60438 Frankfurt, Germany.
Costa Wagner Steuer
Wabnig Sebastian
Stirman Jeffrey N
Watson Joseph D
Spencer W Clay
Akerboom Jasper
Looger Loren L
Treinin Millet
Miller David M
Lu Hang
Gottschalk Alexander
References (44)
44 references, click to expand
  1. Presynaptic CaV2 calcium channel traffic requires CALF-1 and the alpha(2)delta subunit UNC-36.
    Nat Neurosci. 2009 Oct;12(10):1257-65 PMID: 19718034
  2. Axon guidance genes identified in a large-scale RNAi screen using the RNAi-hypersensitive Caenorhabditis elegans strain nre-1(hd20) lin-15b(hd126).
    Proc Natl Acad Sci U S A. 2007 Jan 16;104(3):834-9 PMID: 17213328
  3. Systematic functional analysis of the Caenorhabditis elegans genome using RNAi.
    Nature. 2003 Jan 16;421(6920):231-7 PMID: 12529635
  4. Pickpocket is a DEG/ENaC protein required for mechanical nociception in Drosophila larvae.
    Curr Biol. 2010 Mar 9;20(5):429-34 PMID: 20171104
  5. The DRASIC cation channel contributes to the detection of cutaneous touch and acid stimuli in mice.
    Neuron. 2001 Dec 20;32(6):1071-83 PMID: 11754838
  6. Time-lapse imaging and cell-specific expression profiling reveal dynamic branching and molecular determinants of a multi-dendritic nociceptor in C. elegans.
    Dev Biol. 2010 Sep 1;345(1):18-33 PMID: 20537990
  7. A novel molecular solution for ultraviolet light detection in Caenorhabditis elegans.
    PLoS Biol. 2008 Aug 5;6(8):e198 PMID: 18687026
  8. LIM homeobox gene-dependent expression of biogenic amine receptors in restricted regions of the C. elegans nervous system.
    Dev Biol. 2003 Nov 1;263(1):81-102 PMID: 14568548
  9. Bi-stable neural state switches.
    Nat Neurosci. 2009 Feb;12(2):229-34 PMID: 19079251
  10. Optogenetic long-term manipulation of behavior and animal development.
    PLoS One. 2011 Apr 20;6(4):e18766 PMID: 21533086
  11. Specification of auditory sensitivity by Drosophila TRP channels.
    Nat Neurosci. 2006 Aug;9(8):999-1000 PMID: 16819519
  12. Mutations in the alpha1 subunit of an L-type voltage-activated Ca2+ channel cause myotonia in Caenorhabditis elegans.
    EMBO J. 1997 Oct 15;16(20):6066-76 PMID: 9321386
  13. A synaptic DEG/ENaC ion channel mediates learning in C. elegans by facilitating dopamine signalling.
    EMBO J. 2008 Dec 17;27(24):3288-99 PMID: 19037257
  14. The mec-3 gene of Caenorhabditis elegans requires its own product for maintained expression and is expressed in three neuronal cell types.
    Genes Dev. 1989 Dec;3(12A):1823-33 PMID: 2576011
  15. painless, a Drosophila gene essential for nociception.
    Cell. 2003 Apr 18;113(2):261-73 PMID: 12705873
  16. C. elegans TRP family protein TRP-4 is a pore-forming subunit of a native mechanotransduction channel.
    Neuron. 2010 Aug 12;67(3):381-91 PMID: 20696377
  17. Complementary RNA amplification methods enhance microarray identification of transcripts expressed in the C. elegans nervous system.
    BMC Genomics. 2008 Feb 19;9:84 PMID: 18284693
  18. Specific roles for DEG/ENaC and TRP channels in touch and thermosensation in C. elegans nociceptors.
    Nat Neurosci. 2010 Jul;13(7):861-8 PMID: 20512132
  19. A calcium-channel homologue required for adaptation to dopamine and serotonin in Caenorhabditis elegans.
    Nature. 1995 May 4;375(6526):73-8 PMID: 7723846
  20. Invertebrate nociception: behaviors, neurons and molecules.
    J Neurobiol. 2004 Oct;61(1):161-74 PMID: 15362159
  21. The neural circuit for touch sensitivity in Caenorhabditis elegans.
    J Neurosci. 1985 Apr;5(4):956-64 PMID: 3981252
  22. Cellular and molecular mechanisms of pain.
    Cell. 2009 Oct 16;139(2):267-84 PMID: 19837031
  23. OSM-9, a novel protein with structural similarity to channels, is required for olfaction, mechanosensation, and olfactory adaptation in Caenorhabditis elegans.
    J Neurosci. 1997 Nov 1;17(21):8259-69 PMID: 9334401
  24. Efficient and cell specific knock-down of gene function in targeted C. elegans neurons.
    Gene. 2007 Jun 15;395(1-2):170-6 PMID: 17459615
  25. The mammalian sodium channel BNC1 is required for normal touch sensation.
    Nature. 2000 Oct 26;407(6807):1007-11 PMID: 11069180
  26. The structure of the nervous system of the nematode Caenorhabditis elegans.
    Philos Trans R Soc Lond B Biol Sci. 1986 Nov 12;314(1165):1-340 PMID: 22462104
  27. Real-time multimodal optical control of neurons and muscles in freely behaving Caenorhabditis elegans.
    Nat Methods. 2011 Feb;8(2):153-8 PMID: 21240278
  28. Nociceptive neurons protect Drosophila larvae from parasitoid wasps.
    Curr Biol. 2007 Dec 18;17(24):2105-2116 PMID: 18060782
  29. Lateral facilitation between primary mechanosensory neurons controls nose touch perception in C. elegans.
    Neuron. 2011 Apr 28;70(2):299-309 PMID: 21521615
  30. DEG/ENaC but not TRP channels are the major mechanoelectrical transduction channels in a C. elegans nociceptor.
    Neuron. 2011 Sep 8;71(5):845-57 PMID: 21903078
  31. Two interdependent TRPV channel subunits, inactive and Nanchung, mediate hearing in Drosophila.
    J Neurosci. 2004 Oct 13;24(41):9059-66 PMID: 15483124
  32. The MEC-4 DEG/ENaC channel of Caenorhabditis elegans touch receptor neurons transduces mechanical signals.
    Nat Neurosci. 2005 Jan;8(1):43-50 PMID: 15580270
  33. Analyses of habituation in Caenorhabditis elegans.
    Learn Mem. 2001 Mar-Apr;8(2):63-9 PMID: 11274251
  34. The acid-activated ion channel ASIC contributes to synaptic plasticity, learning, and memory.
    Neuron. 2002 Apr 25;34(3):463-77 PMID: 11988176
  35. A TRPV family ion channel required for hearing in Drosophila.
    Nature. 2003 Jul 3;424(6944):81-4 PMID: 12819662
  36. Caenorhabditis elegans TRPA-1 functions in mechanosensation.
    Nat Neurosci. 2007 May;10(5):568-77 PMID: 17450139
  37. Food sensitizes C. elegans avoidance behaviours through acute dopamine signalling.
    EMBO J. 2011 Mar 16;30(6):1110-22 PMID: 21304491
  38. The Parallel Worm Tracker: a platform for measuring average speed and drug-induced paralysis in nematodes.
    PLoS One. 2008 May 21;3(5):e2208 PMID: 18493300
  39. mRuby, a bright monomeric red fluorescent protein for labeling of subcellular structures.
    PLoS One. 2009;4(2):e4391 PMID: 19194514
  40. The DEG/ENaC protein MEC-10 regulates the transduction channel complex in Caenorhabditis elegans touch receptor neurons.
    J Neurosci. 2011 Aug 31;31(35):12695-704 PMID: 21880930
  41. Transducing touch in Caenorhabditis elegans.
    Annu Rev Physiol. 2003;65:429-52 PMID: 12524464
  42. The neural circuits and sensory channels mediating harsh touch sensation in Caenorhabditis elegans.
    Nat Commun. 2011;2:315 PMID: 21587232
  43. The fusogen EFF-1 controls sculpting of mechanosensory dendrites.
    Science. 2010 Jun 4;328(5983):1285-8 PMID: 20448153
  44. Light activation of channelrhodopsin-2 in excitable cells of Caenorhabditis elegans triggers rapid behavioral responses.
    Curr Biol. 2005 Dec 20;15(24):2279-84 PMID: 16360690
Article Info
Journal
Current biology : CB
Abbr.
Curr Biol
ISSN
1879-0445
Published
2012-05-08
Epub
2012-00-05
Pages
743-52
Language
English
Region
England
NLM ID
9107782
PMCID
PMC3350619
Subset
IM
Grants
NEI NIH HHS · P30 EY08126 · United States
NIMH NIH HHS · T32 MH064913-04 · United States
NICHD NIH HHS · P30 HD015052 · United States
NEI NIH HHS · P30 EY008126 · United States
NIDDK NIH HHS · P60 DK020593-22 · United States
NCI NIH HHS · P30 CA068485 · United States
NINDS NIH HHS · F31 NS49743 · United States
NINDS NIH HHS · F31 NS049743-02 · United States
NIDDK NIH HHS · P60 DK20593 · United States
NIDDK NIH HHS · P30 DK58404 · United States
NIDDK NIH HHS · P30 DK058404-10 · United States
NIMH NIH HHS · T32 MH064913 · United States
NCI NIH HHS · P30 CA068485-06 · United States
NINDS NIH HHS · R01 NS026115-21 · United States
NIMH NIH HHS · T32 MH64913 · United States
NIDDK NIH HHS · P60 DK020593 · United States
NEI NIH HHS · P30 EY008126-15 · United States
NINDS NIH HHS · R21 NS066882 · United States
NINDS NIH HHS · F31 NS049743 · United States
NINDS NIH HHS · R01 NS026115 · United States
NCI NIH HHS · P30 CA68485 · United States
NINDS NIH HHS · R21 NS06882 · United States
NIDDK NIH HHS · P30 DK058404 · United States
NICHD NIH HHS · P30 HD015052-25 · United States
NICHD NIH HHS · HD15052 · United States
NINDS NIH HHS · R21 NS066882-02 · United States
NINDS NIH HHS · R01 NS26115 · United States
NHLBI NIH HHS · P01 HL6744 · United States
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