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Optical Regulation of Class C GPCRs by Photoswitchable Orthogonal Remotely Tethered Ligands
Amanda Acosta-Ruiz1, Johannes Broichhagen2, Joshua Levitz3
1Department of Biochemistry, Weill Cornell Medicine, New York, NY, USA.
Abstract:
G protein-coupled receptors (GPCRs) respond to a wide range of extracellular cues to initiate complex downstream signaling cascades that control myriad aspects of cell function. Despite a long-standing appreciation of their importance to both basic physiology and disease treatment, it remains a major challenge to understand the dynamic activation patterns of GPCRs and the mechanisms by which they modulate biological processes at the molecular, cellular, and tissue levels. Unfortunately, classical methods of pharmacology and genetic knockout are often unable to provide the requisite precision needed to probe such questions. This is an especially pressing challenge for the class C GPCR family which includes receptors for the major excitatory and inhibitory neurotransmitters, glutamate and GABA, which signal in a rapid, spatially-delimited manner and contain many different subtypes whose roles are difficult to disentangle. The desire to manipulate class C GPCRs with spatiotemporal precision, genetic targeting, and subtype specificity has led to the development of a variety of photopharmacological tools. Of particular promise are the photoswitchable orthogonal remotely tethered ligands ("PORTLs") which attach to self-labeling tags that are genetically encoded into full length, wild-type metabotropic glutamate receptors (mGluRs) and allow the receptor to be liganded and un-liganded in response to different wavelengths of illumination. While powerful for studying class C GPCRs, a number of detailed considerations must be made when working with these tools. The protocol included here should provide a basis for the development, characterization, optimization, and application of PORTLs for a wide range of GPCRs.
Insights
Researchers developed photoswitchable ligands (PORTLs) to precisely control G protein-coupled receptors (GPCRs), particularly class C subtypes like metabotropic glutamate receptors (mGluRs). This photopharmacological tool enables spatiotemporal manipulation for studying complex cellular signaling pathways.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- G protein-coupled receptors (GPCRs) are crucial for cell signaling but understanding their dynamic activation is challenging.
- Classical methods lack precision for studying rapid signaling, especially for class C GPCRs like metabotropic glutamate receptors (mGluRs).
Purpose of the Study:
- To develop and present a protocol for using photoswitchable orthogonal remotely tethered ligands (PORTLs) to precisely manipulate GPCRs.
- To enable spatiotemporal control over class C GPCR activity with genetic targeting and subtype specificity.
Main Methods:
- Genetically encoding self-labeling tags into full-length, wild-type mGluRs.
- Attaching PORTLs to these tags for light-inducible ligand binding and unbinding.
- Characterization and optimization of PORTL tools for GPCR research.
Main Results:
- PORTLs offer a powerful photopharmacological approach for precise GPCR manipulation.
- The protocol facilitates the development and application of PORTLs across various GPCRs.
- Enables detailed study of GPCR dynamics and signaling at molecular, cellular, and tissue levels.
Conclusions:
- Photoswitchable PORTLs provide unprecedented spatiotemporal control over GPCRs, especially class C subtypes.
- This technology overcomes limitations of traditional methods for studying complex receptor signaling.
- The presented protocol serves as a foundation for advancing GPCR research using photopharmacology.
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