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PMID: 23459413 Published · epublish English Journal Article

Genetically encoded calcium indicators for multi-color neural activity imaging and combination with optogenetics.

Frontiers in molecular neuroscience ·Vol. 6 ·2013-00-00 ·Pages 2

Akerboom J, Carreras Calderón N, Tian L, Wabnig S, Prigge M, Tolö J, Gordus A, Orger MB, Severi KE, Macklin JJ, Patel R, Pulver SR, Wardill TJ, Fischer E, Schüler C, Chen TW, Sarkisyan KS, Marvin JS, Bargmann CI, Kim DS, Kügler S, Lagnado L, Hegemann P, Gottschalk A, Schreiter ER, Looger LL

Abstract

Genetically encoded calcium indicators (GECIs) are powerful tools for systems neuroscience. Here we describe red, single-wavelength GECIs, "RCaMPs," engineered from circular permutation of the thermostable red fluorescent protein mRuby. High-resolution crystal structures of mRuby, the red sensor RCaMP, and the recently published red GECI R-GECO1 give insight into the chromophore environments of the Ca(2+)-bound state of the sensors and the engineered protein domain interfaces of the different indicators. We characterized the biophysical properties and performance of RCaMP sensors in vitro and in vivo in Caenorhabditis elegans, Drosophila larvae, and larval zebrafish. Further, we demonstrate 2-color calcium imaging both within the same cell (registering mitochondrial and somatic [Ca(2+)]) and between two populations of cells: neurons and astrocytes. Finally, we perform integrated optogenetics experiments, wherein neural activation via channelrhodopsin-2 (ChR2) or a red-shifted variant, and activity imaging via RCaMP or GCaMP, are conducted simultaneously, with the ChR2/RCaMP pair providing independently addressable spectral channels. Using this paradigm, we measure calcium responses of naturalistic and ChR2-evoked muscle contractions in vivo in crawling C. elegans. We systematically compare the RCaMP sensors to R-GECO1, in terms of action potential-evoked fluorescence increases in neurons, photobleaching, and photoswitching. R-GECO1 displays higher Ca(2+) affinity and larger dynamic range than RCaMP, but exhibits significant photoactivation with blue and green light, suggesting that integrated channelrhodopsin-based optogenetics using R-GECO1 may be subject to artifact. Finally, we create and test blue, cyan, and yellow variants engineered from GCaMP by rational design. This engineered set of chromatic variants facilitates new experiments in functional imaging and optogenetics.

Keywords
calcium imaging genetically encoded calcium indicator multi-color imaging optogenetics protein engineering
Authors & Affiliations
26 authors, click to expand affiliations / ORCID
Akerboom Jasper
Janelia Farm Research Campus, Howard Hughes Medical Institute Ashburn, VA, USA.
Carreras Calderón Nicole
Tian Lin
Wabnig Sebastian
Prigge Matthias
Tolö Johan
Gordus Andrew
Orger Michael B
Severi Kristen E
Macklin John J
Patel Ronak
Pulver Stefan R
Wardill Trevor J
Fischer Elisabeth
Schüler Christina
Chen Tsai-Wen
Sarkisyan Karen S
Marvin Jonathan S
Bargmann Cornelia I
Kim Douglas S
Kügler Sebastian
Lagnado Leon
Hegemann Peter
Gottschalk Alexander
Schreiter Eric R
Looger Loren L
References (110)
110 references, click to expand
  1. An improved genetically encoded red fluorescent Ca2+ indicator for detecting optically evoked action potentials.
    PLoS One. 2012;7(7):e39933 PMID: 22808076
  2. An optimized fluorescent probe for visualizing glutamate neurotransmission.
    Nat Methods. 2013 Feb;10(2):162-70 PMID: 23314171
  3. Improving the photostability of bright monomeric orange and red fluorescent proteins.
    Nat Methods. 2008 Jun;5(6):545-51 PMID: 18454154
  4. Calcium-dependent folding of single calmodulin molecules.
    Proc Natl Acad Sci U S A. 2012 Oct 30;109(44):17814-9 PMID: 22753517
  5. Crystallographic study of red fluorescent protein eqFP578 and its far-red variant Katushka reveals opposite pH-induced isomerization of chromophore.
    Protein Sci. 2011 Jul;20(7):1265-74 PMID: 21563226
  6. Trans-cis isomerization is responsible for the red-shifted fluorescence in variants of the red fluorescent protein eqFP611.
    J Am Chem Soc. 2008 Sep 24;130(38):12578-9 PMID: 18761441
  7. A Cre-dependent GCaMP3 reporter mouse for neuronal imaging in vivo.
    J Neurosci. 2012 Feb 29;32(9):3131-41 PMID: 22378886
  8. Optogenetic analysis of synaptic function.
    Nat Methods. 2008 Oct;5(10):895-902 PMID: 18794862
  9. Structure of the Escherichia coli phosphonate binding protein PhnD and rationally optimized phosphonate biosensors.
    J Mol Biol. 2011 Dec 2;414(3):356-69 PMID: 22019591
  10. Excitation spectra and brightness optimization of two-photon excited probes.
    Biophys J. 2012 Feb 22;102(4):934-44 PMID: 22385865
  11. Overview of the CCP4 suite and current developments.
    Acta Crystallogr D Biol Crystallogr. 2011 Apr;67(Pt 4):235-42 PMID: 21460441
  12. Evolutionary optimization of fluorescent proteins for intracellular FRET.
    Nat Biotechnol. 2005 Mar;23(3):355-60 PMID: 15696158
  13. Crystal structure of the Aequorea victoria green fluorescent protein.
    Science. 1996 Sep 6;273(5280):1392-5 PMID: 8703075
  14. Two-photon absorption properties of fluorescent proteins.
    Nat Methods. 2011 May;8(5):393-9 PMID: 21527931
  15. A crystallographic study of bright far-red fluorescent protein mKate reveals pH-induced cis-trans isomerization of the chromophore.
    J Biol Chem. 2008 Oct 24;283(43):28980-7 PMID: 18682399
  16. MAM: more than just a housekeeper.
    Trends Cell Biol. 2009 Feb;19(2):81-8 PMID: 19144519
  17. Channelrhodopsin-2, a directly light-gated cation-selective membrane channel.
    Proc Natl Acad Sci U S A. 2003 Nov 25;100(24):13940-5 PMID: 14615590
  18. Cyan and yellow super fluorescent proteins with improved brightness, protein folding, and FRET Förster radius.
    Biochemistry. 2006 May 30;45(21):6570-80 PMID: 16716067
  19. Neuronal calcium sensor proteins: generating diversity in neuronal Ca2+ signalling.
    Nat Rev Neurosci. 2007 Mar;8(3):182-93 PMID: 17311005
  20. Bright cyan fluorescent protein variants identified by fluorescence lifetime screening.
    Nat Methods. 2010 Feb;7(2):137-9 PMID: 20081836
  21. A genetically targeted optical sensor to monitor calcium signals in astrocyte processes.
    Nat Neurosci. 2010 Jun;13(6):759-66 PMID: 20495558
  22. Two-photon calcium imaging of evoked activity from L5 somatosensory neurons in vivo.
    Nat Neurosci. 2011 Jul 10;14(8):1089-93 PMID: 21743473
  23. Efficient selection for high-expression transfectants with a novel eukaryotic vector.
    Gene. 1991 Dec 15;108(2):193-9 PMID: 1660837
  24. Imaging cellular signals in the heart in vivo: Cardiac expression of the high-signal Ca2+ indicator GCaMP2.
    Proc Natl Acad Sci U S A. 2006 Mar 21;103(12):4753-8 PMID: 16537386
  25. The spread of Na+ spikes determines the pattern of dendritic Ca2+ entry into hippocampal neurons.
    Nature. 1992 May 21;357(6375):244-6 PMID: 1350327
  26. Solution structure of Ca(2+)-calmodulin reveals flexible hand-like properties of its domains.
    Nat Struct Biol. 2001 Nov;8(11):990-7 PMID: 11685248
  27. Osmotic induction of calcium accumulation in human embryonic kidney cells detected with a high sensitivity FRET calcium sensor.
    Cell Calcium. 2009 Aug;46(2):130-5 PMID: 19628278
  28. The structure of Ca2+ sensor Case16 reveals the mechanism of reaction to low Ca2+ concentrations.
    Sensors (Basel). 2010;10(9):8143-60 PMID: 22163646
  29. The expression pattern of the Drosophila vesicular glutamate transporter: a marker protein for motoneurons and glutamatergic centers in the brain.
    Gene Expr Patterns. 2006 Mar;6(3):299-309 PMID: 16378756
  30. A genetically encoded, high-signal-to-noise maltose sensor.
    Proteins. 2011 Nov;79(11):3025-36 PMID: 21989929
  31. Circularly permuted green fluorescent proteins engineered to sense Ca2+.
    Proc Natl Acad Sci U S A. 2001 Mar 13;98(6):3197-202 PMID: 11248055
  32. Imaging neural activity in worms, flies and mice with improved GCaMP calcium indicators.
    Nat Methods. 2009 Dec;6(12):875-81 PMID: 19898485
  33. Advanced tracing tools: functional neuronal expression of virally encoded fluorescent calcium indicator proteins.
    J Neurovirol. 2009 Sep;15(5-6):458-64 PMID: 20105103
  34. The first mutant of the Aequorea victoria green fluorescent protein that forms a red chromophore.
    Biochemistry. 2008 Apr 22;47(16):4666-73 PMID: 18366185
  35. Electrophysiological methods.
    Methods Cell Biol. 1995;48:251-69 PMID: 8531728
  36. Optogenetic activation during detector "dead time" enables compatible real-time fluorescence imaging.
    Neurosci Res. 2012 Aug;73(4):341-7 PMID: 22652483
  37. Millisecond-timescale, genetically targeted optical control of neural activity.
    Nat Neurosci. 2005 Sep;8(9):1263-8 PMID: 16116447
  38. Molecular basis for the modulation of native T-type Ca2+ channels in vivo by Ca2+/calmodulin-dependent protein kinase II.
    J Clin Invest. 2006 Sep;116(9):2403-12 PMID: 16917542
  39. Escape behavior elicited by single, channelrhodopsin-2-evoked spikes in zebrafish somatosensory neurons.
    Curr Biol. 2008 Aug 5;18(15):1133-7 PMID: 18682213
  40. Single-step assembly of a gene and entire plasmid from large numbers of oligodeoxyribonucleotides.
    Gene. 1995 Oct 16;164(1):49-53 PMID: 7590320
  41. Imaging local estrogen production in single living cells with recombinant fluorescent indicators.
    Biosens Bioelectron. 2011 Jan 15;26(5):2147-53 PMID: 20947335
  42. Structural basis for calcium sensing by GCaMP2.
    Structure. 2008 Dec 10;16(12):1817-27 PMID: 19081058
  43. Reducing the environmental sensitivity of yellow fluorescent protein. Mechanism and applications.
    J Biol Chem. 2001 Aug 3;276(31):29188-94 PMID: 11387331
  44. The 2.0-A crystal structure of eqFP611, a far red fluorescent protein from the sea anemone Entacmaea quadricolor.
    J Biol Chem. 2003 Nov 7;278(45):44626-31 PMID: 12909624
  45. Optimization of a GCaMP calcium indicator for neural activity imaging.
    J Neurosci. 2012 Oct 3;32(40):13819-40 PMID: 23035093
  46. Blue fluorescent proteins with enhanced brightness and photostability from a structurally targeted library.
    Nat Biotechnol. 2006 Dec;24(12):1569-71 PMID: 17115054
  47. High-efficiency channelrhodopsins for fast neuronal stimulation at low light levels.
    Proc Natl Acad Sci U S A. 2011 May 3;108(18):7595-600 PMID: 21504945
  48. Microbial opsins: a family of single-component tools for optical control of neural activity.
    Cold Spring Harb Protoc. 2011 Mar 01;2011(3):top102 PMID: 21363959
  49. A structural basis for the pH-dependent increase in fluorescence efficiency of chromoproteins.
    J Mol Biol. 2007 May 11;368(4):998-1010 PMID: 17376484
  50. Directed evolution of a monomeric, bright and photostable version of Clavularia cyan fluorescent protein: structural characterization and applications in fluorescence imaging.
    Biochem J. 2006 Dec 15;400(3):531-40 PMID: 16859491
  51. A genetically encoded fluorescent reporter of ATP:ADP ratio.
    Nat Methods. 2009 Feb;6(2):161-6 PMID: 19122669
  52. A variant of yellow fluorescent protein with fast and efficient maturation for cell-biological applications.
    Nat Biotechnol. 2002 Jan;20(1):87-90 PMID: 11753368
  53. Photoconversion of purified fluorescent proteins and dual-probe optical highlighting in live cells.
    J Vis Exp. 2010 Jun 26;(40): PMID: 20613710
  54. Engineering strain-sensitive yellow fluorescent protein.
    Chem Commun (Camb). 2012 Aug 14;48(63):7871-3 PMID: 22751284
  55. Imaging calcium concentration dynamics in small neuronal compartments.
    Sci STKE. 2004 Feb 03;2004(219):pl5 PMID: 14872098
  56. The microbial opsin family of optogenetic tools.
    Cell. 2011 Dec 23;147(7):1446-57 PMID: 22196724
  57. An expanded palette of genetically encoded Ca²⁺ indicators.
    Science. 2011 Sep 30;333(6051):1888-91 PMID: 21903779
  58. A high signal-to-noise Ca(2+) probe composed of a single green fluorescent protein.
    Nat Biotechnol. 2001 Feb;19(2):137-41 PMID: 11175727
  59. High-performance genetically targetable optical neural silencing by light-driven proton pumps.
    Nature. 2010 Jan 7;463(7277):98-102 PMID: 20054397
  60. Some precautions in using chelators to buffer metals in biological solutions.
    Cell Calcium. 2004 May;35(5):427-31 PMID: 15003852
  61. A bacteria colony-based screen for optimal linker combinations in genetically encoded biosensors.
    BMC Biotechnol. 2011 Nov 10;11:105 PMID: 22074568
  62. Features and development of Coot.
    Acta Crystallogr D Biol Crystallogr. 2010 Apr;66(Pt 4):486-501 PMID: 20383002
  63. Activity in motor-sensory projections reveals distributed coding in somatosensation.
    Nature. 2012 Sep 13;489(7415):299-303 PMID: 22922646
  64. An improved cyan fluorescent protein variant useful for FRET.
    Nat Biotechnol. 2004 Apr;22(4):445-9 PMID: 14990965
  65. Crystal structures of the GCaMP calcium sensor reveal the mechanism of fluorescence signal change and aid rational design.
    J Biol Chem. 2009 Mar 6;284(10):6455-64 PMID: 19098007
  66. Optical interrogation of neural circuits in Caenorhabditis elegans.
    Nat Methods. 2009 Dec;6(12):891-6 PMID: 19898486
  67. Chromophore structure of the kindling fluorescent protein asFP595 from Anemonia sulcata.
    J Am Chem Soc. 2007 Jun 27;129(25):7748-9 PMID: 17536802
  68. The structure of the chromophore within DsRed, a red fluorescent protein from coral.
    Proc Natl Acad Sci U S A. 2000 Oct 24;97(22):11990-5 PMID: 11050230
  69. An update on nuclear calcium signalling.
    J Cell Sci. 2009 Jul 15;122(Pt 14):2337-50 PMID: 19571113
  70. Optogenetic analysis of a nociceptor neuron and network reveals ion channels acting downstream of primary sensors.
    Curr Biol. 2012 May 8;22(9):743-52 PMID: 22483941
  71. Exploration of new chromophore structures leads to the identification of improved blue fluorescent proteins.
    Biochemistry. 2007 May 22;46(20):5904-10 PMID: 17444659
  72. iMOSFLM: a new graphical interface for diffraction-image processing with MOSFLM.
    Acta Crystallogr D Biol Crystallogr. 2011 Apr;67(Pt 4):271-81 PMID: 21460445
  73. The green fluorescent protein.
    Annu Rev Biochem. 1998;67:509-44 PMID: 9759496
  74. Improved monomeric red, orange and yellow fluorescent proteins derived from Discosoma sp. red fluorescent protein.
    Nat Biotechnol. 2004 Dec;22(12):1567-72 PMID: 15558047
  75. Fast, repetitive light-activation of CaV3.2 using channelrhodopsin 2.
    Channels (Austin). 2010 May-Jun;4(3):241-7 PMID: 20714225
  76. A genetically encoded reporter of synaptic activity in vivo.
    Nat Methods. 2009 Dec;6(12):883-9 PMID: 19898484
  77. Optimized and far-red-emitting variants of fluorescent protein eqFP611.
    Chem Biol. 2008 Mar;15(3):224-33 PMID: 18355722
  78. Improved green and blue fluorescent proteins for expression in bacteria and mammalian cells.
    Biochemistry. 2007 Mar 27;46(12):3775-83 PMID: 17323929
  79. Channelrhodopsin-2-assisted circuit mapping of long-range callosal projections.
    Nat Neurosci. 2007 May;10(5):663-8 PMID: 17435752
  80. Targeted gene expression as a means of altering cell fates and generating dominant phenotypes.
    Development. 1993 Jun;118(2):401-15 PMID: 8223268
  81. Improving FRET dynamic range with bright green and red fluorescent proteins.
    Nat Methods. 2012 Oct;9(10):1005-12 PMID: 22961245
  82. Efficient site-directed mutagenesis using uracil-containing DNA.
    Methods Enzymol. 1991;204:125-39 PMID: 1943776
  83. Circularly permuted monomeric red fluorescent proteins with new termini in the beta-sheet.
    Protein Sci. 2010 Aug;19(8):1490-9 PMID: 20521333
  84. Calmodulin as a direct detector of Ca2+ signals.
    Nat Neurosci. 2011 Mar;14(3):301-4 PMID: 21258328
  85. Light modulation of cellular cAMP by a small bacterial photoactivated adenylyl cyclase, bPAC, of the soil bacterium Beggiatoa.
    J Biol Chem. 2011 Jan 14;286(2):1181-8 PMID: 21030594
  86. Engineering green fluorescent protein for improved brightness, longer wavelengths and fluorescence resonance energy transfer.
    Curr Biol. 1996 Feb 1;6(2):178-82 PMID: 8673464
  87. Genetically encoded calcium indicators.
    Chem Rev. 2008 May;108(5):1550-64 PMID: 18447377
  88. Genetically encoded fluorescent sensors for intracellular NADH detection.
    Cell Metab. 2011 Oct 5;14(4):555-66 PMID: 21982715
  89. Neocortical excitation/inhibition balance in information processing and social dysfunction.
    Nature. 2011 Jul 27;477(7363):171-8 PMID: 21796121
  90. Genetic visualization with an improved GCaMP calcium indicator reveals spatiotemporal activation of the spinal motor neurons in zebrafish.
    Proc Natl Acad Sci U S A. 2011 Mar 29;108(13):5425-30 PMID: 21383146
  91. A synthetic GFP-like chromophore undergoes base-catalyzed autoxidation into acylimine red form.
    J Org Chem. 2011 Apr 15;76(8):2782-91 PMID: 21391723
  92. Imaging calcium dynamics in dendritic spines.
    Curr Opin Neurobiol. 1996 Jun;6(3):372-8 PMID: 8794079
  93. Phaser crystallographic software.
    J Appl Crystallogr. 2007 Aug 1;40(Pt 4):658-674 PMID: 19461840
  94. Multimodal fast optical interrogation of neural circuitry.
    Nature. 2007 Apr 5;446(7136):633-9 PMID: 17410168
  95. Detection of calcium transients in Drosophila mushroom body neurons with camgaroo reporters.
    J Neurosci. 2003 Jan 1;23(1):64-72 PMID: 12514202
  96. Calcium binding decreases the stokes radius of calmodulin and mutants R74A, R90A, and R90G.
    Biophys J. 1996 Dec;71(6):3407-20 PMID: 8968610
  97. NIH Image to ImageJ: 25 years of image analysis.
    Nat Methods. 2012 Jul;9(7):671-5 PMID: 22930834
  98. Genetically encoded bright Ca2+ probe applicable for dynamic Ca2+ imaging of dendritic spines.
    Anal Chem. 2005 Sep 15;77(18):5861-9 PMID: 16159115
  99. mRuby, a bright monomeric red fluorescent protein for labeling of subcellular structures.
    PLoS One. 2009;4(2):e4391 PMID: 19194514
  100. Multiple dynamic representations in the motor cortex during sensorimotor learning.
    Nature. 2012 Apr 25;484(7395):473-8 PMID: 22538608
  101. Improved orange and red Ca²± indicators and photophysical considerations for optogenetic applications.
    ACS Chem Neurosci. 2013 Jun 19;4(6):963-72 PMID: 23452507
  102. Temporal dynamics of neuronal activation by Channelrhodopsin-2 and TRPA1 determine behavioral output in Drosophila larvae.
    J Neurophysiol. 2009 Jun;101(6):3075-88 PMID: 19339465
  103. Novel chromophores and buried charges control color in mFruits.
    Biochemistry. 2006 Aug 15;45(32):9639-47 PMID: 16893165
  104. Protein production by auto-induction in high density shaking cultures.
    Protein Expr Purif. 2005 May;41(1):207-34 PMID: 15915565
  105. The functional microarchitecture of the mouse barrel cortex.
    PLoS Biol. 2007 Jul;5(7):e189 PMID: 17622195
  106. Genetically encoded fluorescent indicator for intracellular hydrogen peroxide.
    Nat Methods. 2006 Apr;3(4):281-6 PMID: 16554833
  107. Characterization and subcellular targeting of GCaMP-type genetically-encoded calcium indicators.
    PLoS One. 2008 Mar 19;3(3):e1796 PMID: 18350138
  108. 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
  109. Wavelength mutations and posttranslational autoxidation of green fluorescent protein.
    Proc Natl Acad Sci U S A. 1994 Dec 20;91(26):12501-4 PMID: 7809066
  110. FRET-based genetically encoded sensors allow high-resolution live cell imaging of Ca²⁺ dynamics.
    Plant J. 2012 Jan;69(1):181-92 PMID: 21910770
Article Info
Journal
Frontiers in molecular neuroscience
Abbr.
Front Mol Neurosci
ISSN
1662-5099
Published
2013-00-00
Epub
2013-00-04
Pages
2
Language
English
Region
Switzerland
NLM ID
101477914
PMCID
PMC3586699
Grants
Medical Research Council · MC_U105178794 · United Kingdom
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