Literature DB >> 29845088

Theoretical analysis of low-power fast optogenetic control of firing of Chronos-expressing neurons.

Sant Saran1, Neha Gupta2, Sukhdev Roy2.   

Abstract

A detailed theoretical analysis of low-power, fast optogenetic control of firing of Chronos-expressing neurons has been presented. A three-state model for the Chronos photocycle has been formulated and incorporated in a fast-spiking interneuron circuit model. The effect of excitation wavelength, pulse irradiance, pulse width, and pulse frequency has been studied in detail and compared with ChR2. Theoretical simulations are in excellent agreement with recently reported experimental results and bring out additional interesting features. At very low irradiances ([Formula: see text]), the plateau current in Chronos exhibits a maximum. At [Formula: see text], the plateau current is 2 orders of magnitude smaller and saturates at longer pulse widths ([Formula: see text]) compared to ChR2 ([Formula: see text]). [Formula: see text] in Chronos saturates at much shorter pulse widths (1775 pA at 1.5 ms and [Formula: see text]) than in ChR2. Spiking fidelity is also higher at lower irradiances and longer pulse widths compared to ChR2. Chronos exhibits an average maximal driven rate of over [Formula: see text] in response to [Formula: see text] stimuli, each of 1-ms pulse-width, in the intensity range 0 to [Formula: see text]. The analysis is important to not only understand the photodynamics of Chronos and Chronos-expressing neurons but also to design opsins with optimized properties and perform precision experiments with required spatiotemporal resolution.

Keywords:  ChR2 and Chronos; Hodgkin–Huxley model; Wang–Buzsaki interneuron model; channelrhodopsin; neural firing; optogenetics

Year:  2018        PMID: 29845088      PMCID: PMC5966744          DOI: 10.1117/1.NPh.5.2.025009

Source DB:  PubMed          Journal:  Neurophotonics        ISSN: 2329-423X            Impact factor:   3.593


  32 in total

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9.  Hearing the light: neural and perceptual encoding of optogenetic stimulation in the central auditory pathway.

Authors:  Wei Guo; Ariel E Hight; Jenny X Chen; Nathan C Klapoetke; Kenneth E Hancock; Barbara G Shinn-Cunningham; Edward S Boyden; Daniel J Lee; Daniel B Polley
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  2 in total

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