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Optogenetic photochemical control of designer K+ channels in mammalian neurons.

Publication ,  Journal Article
Fortin, DL; Dunn, TW; Fedorchak, A; Allen, D; Montpetit, R; Banghart, MR; Trauner, D; Adelman, JP; Kramer, RH
Published in: Journal of neurophysiology
July 2011

Currently available optogenetic tools, including microbial light-activated ion channels and transporters, are transforming systems neuroscience by enabling precise remote control of neuronal firing, but they tell us little about the role of indigenous ion channels in controlling neuronal function. Here, we employ a chemical-genetic strategy to engineer light sensitivity into several mammalian K(+) channels that have different gating and modulation properties. These channels provide the means for photoregulating diverse electrophysiological functions. Photosensitivity is conferred on a channel by a tethered ligand photoswitch that contains a cysteine-reactive maleimide (M), a photoisomerizable azobenzene (A), and a quaternary ammonium (Q), a K(+) channel pore blocker. Using mutagenesis, we identify the optimal extracellular cysteine attachment site where MAQ conjugation results in pore blockade when the azobenzene moiety is in the trans but not cis configuration. With this strategy, we have conferred photosensitivity on channels containing Kv1.3 subunits (which control axonal action potential repolarization), Kv3.1 subunits (which contribute to rapid-firing properties of brain neurons), Kv7.2 subunits (which underlie "M-current"), and SK2 subunits (which are Ca(2+)-activated K(+) channels that contribute to synaptic responses). These light-regulated channels may be overexpressed in genetically targeted neurons or substituted for native channels with gene knockin technology to enable precise optopharmacological manipulation of channel function.

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Published In

Journal of neurophysiology

DOI

EISSN

1522-1598

ISSN

0022-3077

Publication Date

July 2011

Volume

106

Issue

1

Start / End Page

488 / 496

Related Subject Headings

  • Quaternary Ammonium Compounds
  • Protein Engineering
  • Potassium Channels, Calcium-Activated
  • Photochemical Processes
  • Neurons
  • Neurology & Neurosurgery
  • Molecular Sequence Data
  • Maleimides
  • Kv1.3 Potassium Channel
  • KCNQ2 Potassium Channel
 

Citation

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Fortin, D. L., Dunn, T. W., Fedorchak, A., Allen, D., Montpetit, R., Banghart, M. R., … Kramer, R. H. (2011). Optogenetic photochemical control of designer K+ channels in mammalian neurons. Journal of Neurophysiology, 106(1), 488–496. https://doi.org/10.1152/jn.00251.2011
Fortin, Doris L., Timothy W. Dunn, Alexis Fedorchak, Duane Allen, Rachel Montpetit, Matthew R. Banghart, Dirk Trauner, John P. Adelman, and Richard H. Kramer. “Optogenetic photochemical control of designer K+ channels in mammalian neurons.Journal of Neurophysiology 106, no. 1 (July 2011): 488–96. https://doi.org/10.1152/jn.00251.2011.
Fortin DL, Dunn TW, Fedorchak A, Allen D, Montpetit R, Banghart MR, et al. Optogenetic photochemical control of designer K+ channels in mammalian neurons. Journal of neurophysiology. 2011 Jul;106(1):488–96.
Fortin, Doris L., et al. “Optogenetic photochemical control of designer K+ channels in mammalian neurons.Journal of Neurophysiology, vol. 106, no. 1, July 2011, pp. 488–96. Epmc, doi:10.1152/jn.00251.2011.
Fortin DL, Dunn TW, Fedorchak A, Allen D, Montpetit R, Banghart MR, Trauner D, Adelman JP, Kramer RH. Optogenetic photochemical control of designer K+ channels in mammalian neurons. Journal of neurophysiology. 2011 Jul;106(1):488–496.

Published In

Journal of neurophysiology

DOI

EISSN

1522-1598

ISSN

0022-3077

Publication Date

July 2011

Volume

106

Issue

1

Start / End Page

488 / 496

Related Subject Headings

  • Quaternary Ammonium Compounds
  • Protein Engineering
  • Potassium Channels, Calcium-Activated
  • Photochemical Processes
  • Neurons
  • Neurology & Neurosurgery
  • Molecular Sequence Data
  • Maleimides
  • Kv1.3 Potassium Channel
  • KCNQ2 Potassium Channel