4.8 Article

Bioorthogonal, Fluorogenic Targeting of Voltage-Sensitive Fluorophores for Visualizing Membrane Potential Dynamics in Cellular Organelles

期刊

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
卷 144, 期 27, 页码 12138-12146

出版社

AMER CHEMICAL SOC
DOI: 10.1021/jacs.2c02664

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资金

  1. Camille Dreyfus Teacher Scholar Awards program
  2. NIH [R35GM119855, T32GM06698, R01GM131372, R35GM134963, S10OD024998]
  3. Gordon and Betty Moore Foundation

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This study presents the design, synthesis, and application of LUnAR RhoVR, an optical detector for monitoring membrane potential changes in the endoplasmic reticulum (ER) of living cells. By combining a fluorescence probe with molecules that target the ER, voltage changes in the ER can be accurately observed. The study validates the electroneutrality of calcium release and provides direct evidence of the ER potential response to plasma membrane potential changes. This research offers a new tool for exploring organelle physiology.
ABSTRACT: Electrical potential differences across lipid bilayers play foundational roles in cellular physiology. Plasma membrane voltage is the most widely studied; however, the bilayers of organelles like mitochondria, lysosomes, nuclei, and the endoplasmic reticulum (ER) also provide opportunities for ionic compartmentalization and the generation of transmembrane tered within the cell, remain recalcitrant to traditional approaches like patch-clamp electrophysiology. To address the challenge of monitoring changes in organelle membrane potential, we describe the design, synthesis, and application of the LUnAR RhoVR (Ligation Unquenched for Activation and Redistribution Rhodamine-based Voltage Reporter) for optically monitoring membrane potential changes in the ER of living cells. We pair a tetrazine-quenched RhoVR for voltage sensing with a transcyclooctene (TCO)-conjugated ceramide (Cer-TCO) for targeting to the ER. Bright fluorescence is observed only at the coincidence of the LUnAR RhoVR and TCO in the ER, minimizing non-specific, off-target fluorescence. We show that the product of the LUnAR RhoVR and Cer-TCO is voltage-sensitive and that the LUnAR RhoVR can be targeted to an intact ER in living cells. Using the LUnAR RhoVR, we use two-color, ER-localized, fast voltage imaging coupled with cytosolic Ca2+ imaging to validate the electroneutrality of Ca2+ release from internal stores. Finally, we use the LUnAR RhoVR to directly visualize functional coupling between the plasma-ER membranes in patch clamped cell lines, providing the first direct evidence of the sign of the ER potential response to plasma membrane potential changes. We envision that the LUnAR RhoVR, along with other existing organelle-targeting TCO probes, could be applied widely for exploring organelle physiology.

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