4.7 Article

Optogenetic interrogation of neural circuits: technology for probing mammalian brain structures

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NATURE PROTOCOLS
卷 5, 期 3, 页码 439-456

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NATURE PUBLISHING GROUP
DOI: 10.1038/nprot.2009.226

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资金

  1. Deisseroth laboratory
  2. NIH NRSA
  3. SGF
  4. SIGF (Stanford Graduate Fellowships)
  5. Fonds National de la Recherche Scientifique
  6. NARSAD, NIH [K99]
  7. Fondation Leon Fredericq
  8. NIDA
  9. DARPA
  10. NARSAD
  11. William M. Keck Foundation
  12. Snyder Foundation
  13. Albert Yu and Mary Bechmann Foundation
  14. Wallace Coulter Foundation
  15. California Institute for Regenerative Medicine
  16. McKnight Foundation
  17. Esther A. and Joseph Klingenstein Fund
  18. NSF
  19. National Institute of Mental Health
  20. National Institute on Drug Abuse
  21. NATIONAL INSTITUTE OF NEUROLOGICAL DISORDERS AND STROKE [F31NS059160, K99NS065009] Funding Source: NIH RePORTER
  22. OFFICE OF THE DIRECTOR, NATIONAL INSTITUTES OF HEALTH [DP1OD000616] Funding Source: NIH RePORTER

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Elucidation of the neural substrates underlying complex animal behaviors depends on precise activity control tools, as well as compatible readout methods. Recent developments in optogenetics have addressed this need, opening up new possibilities for systems neuroscience. Interrogation of even deep neural circuits can be conducted by directly probing the necessity and sufficiency of defined circuit elements with millisecond-scale, cell type-specific optical perturbations, coupled with suitable readouts such as electrophysiology, optical circuit dynamics measures and freely moving behavior in mammals. Here we collect in detail our strategies for delivering microbial opsin genes to deep mammalian brain structures in vivo, along with protocols for integrating the resulting optical control with compatible readouts (electrophysiological, optical and behavioral). The procedures described here, from initial virus preparation to systems-level functional readout, can be completed within 4-5 weeks. Together, these methods may help in providing circuit-level insight into the dynamics underlying complex mammalian behaviors in health and disease.

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