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G protein-coupled receptor-targeted proteolysis-targeting chimeras in cancer therapeutics
Victoria R Saca1, Thomas Huber2, Thomas P Sakmar2
1Laboratory of Chemical Biology and Signal Transduction, The Rockefeller University, New York, New York; Tri-Institutional PhD Program in Chemical Biology, New York, New York.
Abstract:
G protein-coupled receptors (GPCRs) comprise a family of heptahelical membrane proteins that mediate intracellular and intercellular transmembrane signaling. Defects in GPCR signaling pathways are implicated in the pathophysiology of many diseases, including cardiovascular disease, endocrinopathies, immune disorders, and cancer. Although GPCRs are attractive drug targets, only a small number of Food and Drug Administration-approved anticancer therapeutics target GPCRs. Targeted protein degradation (TPD) technology allows for the direct modulation of the cellular expression level of a protein of interest. TPD methods such as proteolysis-targeting chimeras (PROTACs) use the ubiquitin-proteasome system to degrade a protein of interest selectively. Although the PROTAC system has not been widely applied to GPCRs and other membrane proteins, there is evidence that PROTACs or other TPD methods could be applied to the GPCRome. Current GPCR PROTACs show the feasibility of using PROTACs to degrade GPCRs; however, the degradation mechanism for some of these GPCR PROTACs is uncertain. Additional studies aimed at elucidating the degradation mechanism of GPCRs with PROTACs are necessary. Discovery of new allosteric intracellular small molecule binders of GPCRs will be required for the development of intracellularly oriented PROTACs. Promising early results in targeted degradation of GPCRs suggest that TPD drug discovery platforms will be useful in developing PROTACs targeting pathological GPCRs. SIGNIFICANCE STATEMENT: Aberrant signaling of G protein-coupled receptors (GPCRs) can contribute to the pathophysiology of cancer. Although GPCRs are generally highly attractive drug targets, many individual GPCRs are currently undrugged using traditional drug discovery approaches. Targeted protein degradation technologies, such as proteolysis-targeting chimeras, provide a new approach to drug discovery for targeting previously undruggable GPCRs relevant to the molecular pathophysiology of cancer.
Insights
Targeted protein degradation (TPD) offers a novel approach to target G protein-coupled receptors (GPCRs) for cancer therapy. This technology, including proteolysis-targeting chimeras (PROTACs), shows promise for developing new drugs against previously undruggable GPCRs.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- G protein-coupled receptors (GPCRs) are crucial for transmembrane signaling, and their dysregulation is linked to various diseases, including cancer.
- Despite being attractive drug targets, many GPCRs remain undrugged due to limitations in traditional therapeutic approaches.
Purpose of the Study:
- To explore the potential of Targeted Protein Degradation (TPD) technologies, specifically proteolysis-targeting chimeras (PROTACs), for modulating GPCR expression and activity.
- To highlight the feasibility and challenges of applying TPD to the GPCRome for therapeutic development.
Main Methods:
- Review of current literature on TPD applications, focusing on PROTACs and their use against GPCRs.
- Analysis of existing studies demonstrating the degradation of GPCRs using PROTAC technology.
Main Results:
- Early evidence indicates that PROTACs can effectively degrade GPCRs, showcasing the potential of TPD for GPCR targeting.
- The precise degradation mechanisms for some GPCR PROTACs require further investigation.
- Development of intracellularly oriented PROTACs necessitates the discovery of novel allosteric small molecule binders.
Conclusions:
- TPD platforms represent a promising avenue for developing novel therapeutics targeting pathological GPCRs in cancer.
- Further research into GPCR degradation mechanisms and the identification of new binders is essential for advancing TPD-based drug discovery for GPCRs.
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