Detection of Ca2+ transients near ryanodine receptors by targeting fluorescent Ca2+ sensors to the triad

Author:

Sanchez Colline1,Berthier Christine1ORCID,Tourneur Yves2ORCID,Monteiro Laloé1,Allard Bruno1ORCID,Csernoch Laszlo3ORCID,Jacquemond Vincent1ORCID

Affiliation:

1. Université Lyon, Université Claude Bernard Lyon 1, Centre National de la Recherche Scientifique UMR-5310, Institut National de la Santé et de la Recherche Médicale U-1217, Institut NeuroMyoGène, Lyon, France

2. Departamento Nutrição, Universidade Federal de Pernambuco, Recife, Brazil

3. Department of Physiology, Faculty of Medicine, University of Debrecen, Debrecen, Hungary

Abstract

In intact muscle fibers, functional properties of ryanodine receptor (RYR)–mediated sarcoplasmic reticulum (SR) Ca2+ release triggered by activation of the voltage sensor CaV1.1 have so far essentially been addressed with diffusible Ca2+-sensitive dyes. Here, we used a domain (T306) of the protein triadin to target the Ca2+-sensitive probe GCaMP6f to the junctional SR membrane, in the immediate vicinity of RYR channels, within the triad region. Fluorescence of untargeted GCaMP6f was distributed throughout the muscle fibers and experienced large Ca2+-dependent changes, with obvious kinetic delays, upon application of voltage-clamp depolarizing pulses. Conversely, T306-GCaMP6f localized to the triad and generated Ca2+-dependent fluorescence transients of lower amplitude and faster kinetics for low and intermediate levels of Ca2+ release than those of untargeted GCaMP6f. By contrast, model simulation of the spatial gradients of Ca2+ following Ca2+ release predicted limited kinetic differences under the assumptions that the two probes were present at the same concentration and suffered from identical kinetic limitations. At the spatial level, T306-GCaMP6f transients within distinct regions of a same fiber yielded a uniform time course, even at low levels of Ca2+ release activation. Similar observations were made using GCaMP6f fused to the γ1 auxiliary subunit of CaV1.1. Despite the probe's limitations, our results point out the remarkable synchronicity of voltage-dependent Ca2+ release activation and termination among individual triads and highlight the potential of the approach to visualize activation or closure of single groups of RYR channels. We anticipate targeting of improved Ca2+ sensors to the triad will provide illuminating insights into physiological normal RYR function and its dysfunction under stress or pathological conditions.

Funder

Centre National de la Recherche Scientifique

Institut National de la Santé et de la Recherche Médicale

Université Claude Bernard Lyon 1

AFM-Téléthon

National Research, Development and Innovation Office

Publisher

Rockefeller University Press

Subject

Physiology

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