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Photoactivatable Agonist–Antagonist Pair as a Tool for Precise Spatiotemporal Control of Serotonin Receptor 2C Signaling

[Image: see text] Orthogonal recreation of the signaling profile of a chemical synapse is a current challenge in neuroscience. This is due in part to the kinetics of synaptic signaling, where neurotransmitters are rapidly released and quickly cleared by active reuptake machinery. One strategy to pro...

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Autores principales: Kim, Spencer T., Doukmak, Emma J., Shanguhyia, Michelle, Gray, Dylan J., Steinhardt, Rachel C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10557072/
https://www.ncbi.nlm.nih.gov/pubmed/37721710
http://dx.doi.org/10.1021/acschemneuro.3c00290
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author Kim, Spencer T.
Doukmak, Emma J.
Shanguhyia, Michelle
Gray, Dylan J.
Steinhardt, Rachel C.
author_facet Kim, Spencer T.
Doukmak, Emma J.
Shanguhyia, Michelle
Gray, Dylan J.
Steinhardt, Rachel C.
author_sort Kim, Spencer T.
collection PubMed
description [Image: see text] Orthogonal recreation of the signaling profile of a chemical synapse is a current challenge in neuroscience. This is due in part to the kinetics of synaptic signaling, where neurotransmitters are rapidly released and quickly cleared by active reuptake machinery. One strategy to produce a rapid rise in an orthogonally controlled signal is via photocaged compounds. In this work, photocaged compounds are employed to recreate both the rapid rise and equally rapid fall in activation at a chemical synapse. Specifically, a complementary pair of photocages based on BODIPY were conjugated to a 5-HT(2C) subtype-selective agonist, WAY-161503, and antagonist, N-desmethylclozapine, to generate “caged” versions of these drugs. These conjugates release the bioactive drug upon illumination with green light (agonist) or red light (antagonist). We report on the synthesis, characterization, and bioactivity testing of the conjugates against the 5-HT(2C) receptor. We then characterize the kinetics of photolysis quantitatively using HPLC and qualitatively in cell culture conditions stimulating live cells. The compounds are shown to be stable in the dark for 48 h at room temperature, yet photolyze rapidly when irradiated with visible light. In live cells expressing the 5-HT(2C) receptor, precise spatiotemporal control of the degree and length of calcium signaling is demonstrated. By loading both compounds in tandem and leveraging spectral multiplexing as a noninvasive method to control local small-molecule drug availability, we can reproducibly initiate and suppress intracellular calcium flux on a timescale not possible by traditional methods of drug dosing. These tools enable a greater spatiotemporal control of 5-HT(2C) modulation and will allow for more detailed studies of the receptors’ signaling, interactions with other proteins, and native physiology.
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spelling pubmed-105570722023-10-07 Photoactivatable Agonist–Antagonist Pair as a Tool for Precise Spatiotemporal Control of Serotonin Receptor 2C Signaling Kim, Spencer T. Doukmak, Emma J. Shanguhyia, Michelle Gray, Dylan J. Steinhardt, Rachel C. ACS Chem Neurosci [Image: see text] Orthogonal recreation of the signaling profile of a chemical synapse is a current challenge in neuroscience. This is due in part to the kinetics of synaptic signaling, where neurotransmitters are rapidly released and quickly cleared by active reuptake machinery. One strategy to produce a rapid rise in an orthogonally controlled signal is via photocaged compounds. In this work, photocaged compounds are employed to recreate both the rapid rise and equally rapid fall in activation at a chemical synapse. Specifically, a complementary pair of photocages based on BODIPY were conjugated to a 5-HT(2C) subtype-selective agonist, WAY-161503, and antagonist, N-desmethylclozapine, to generate “caged” versions of these drugs. These conjugates release the bioactive drug upon illumination with green light (agonist) or red light (antagonist). We report on the synthesis, characterization, and bioactivity testing of the conjugates against the 5-HT(2C) receptor. We then characterize the kinetics of photolysis quantitatively using HPLC and qualitatively in cell culture conditions stimulating live cells. The compounds are shown to be stable in the dark for 48 h at room temperature, yet photolyze rapidly when irradiated with visible light. In live cells expressing the 5-HT(2C) receptor, precise spatiotemporal control of the degree and length of calcium signaling is demonstrated. By loading both compounds in tandem and leveraging spectral multiplexing as a noninvasive method to control local small-molecule drug availability, we can reproducibly initiate and suppress intracellular calcium flux on a timescale not possible by traditional methods of drug dosing. These tools enable a greater spatiotemporal control of 5-HT(2C) modulation and will allow for more detailed studies of the receptors’ signaling, interactions with other proteins, and native physiology. American Chemical Society 2023-09-18 /pmc/articles/PMC10557072/ /pubmed/37721710 http://dx.doi.org/10.1021/acschemneuro.3c00290 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Kim, Spencer T.
Doukmak, Emma J.
Shanguhyia, Michelle
Gray, Dylan J.
Steinhardt, Rachel C.
Photoactivatable Agonist–Antagonist Pair as a Tool for Precise Spatiotemporal Control of Serotonin Receptor 2C Signaling
title Photoactivatable Agonist–Antagonist Pair as a Tool for Precise Spatiotemporal Control of Serotonin Receptor 2C Signaling
title_full Photoactivatable Agonist–Antagonist Pair as a Tool for Precise Spatiotemporal Control of Serotonin Receptor 2C Signaling
title_fullStr Photoactivatable Agonist–Antagonist Pair as a Tool for Precise Spatiotemporal Control of Serotonin Receptor 2C Signaling
title_full_unstemmed Photoactivatable Agonist–Antagonist Pair as a Tool for Precise Spatiotemporal Control of Serotonin Receptor 2C Signaling
title_short Photoactivatable Agonist–Antagonist Pair as a Tool for Precise Spatiotemporal Control of Serotonin Receptor 2C Signaling
title_sort photoactivatable agonist–antagonist pair as a tool for precise spatiotemporal control of serotonin receptor 2c signaling
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10557072/
https://www.ncbi.nlm.nih.gov/pubmed/37721710
http://dx.doi.org/10.1021/acschemneuro.3c00290
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