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Updated: Apr 22, 2026

Studies of Chaperone-Cochaperone Interactions using Homogenous Bead-Based Assay
Published on: July 21, 2021
The G protein α chaperone Ric-8 as a potential therapeutic target
Makaía M Papasergi1, Bharti R Patel1, Gregory G Tall2
1Department of Pharmacology and Physiology, University of Rochester Medical Center, Rochester, New York.
Abstract:
Resistance to inhibitors of cholinesterase (Ric-8)A and Ric-8B are essential genes that encode positive regulators of heterotrimeric G protein α subunits. Controversy persists surrounding the precise way(s) that Ric-8 proteins affect G protein biology and signaling. Ric-8 proteins chaperone nucleotide-free Gα-subunit states during biosynthetic protein folding prior to G protein heterotrimer assembly. In organisms spanning the evolutionary window of Ric-8 expression, experimental perturbation of Ric-8 genes results in reduced functional abundances of G proteins because G protein α subunits are misfolded and degraded rapidly. Ric-8 proteins also act as Gα-subunit guanine nucleotide exchange factors (GEFs) in vitro. However, Ric-8 GEF activity could strictly be an in vitro phenomenon stemming from the ability of Ric-8 to induce partial Gα unfolding, thereby enhancing GDP release. Ric-8 GEF activity clearly differs from the GEF activity of G protein-coupled receptors (GPCRs). G protein βγ is inhibitory to Ric-8 action but obligate for receptors. It remains an open question whether Ric-8 has dual functions in cells and regulates G proteins as both a molecular chaperone and GEF. Clearly, Ric-8 has a profound influence on heterotrimeric G protein function. For this reason, we propose that Ric-8 proteins are as yet untested therapeutic targets in which pharmacological inhibition of the Ric-8/Gα protein-protein interface could serve to attenuate the effects of disease-causing G proteins (constitutively active mutants) and/or GPCR signaling. This minireview will chronicle the understanding of Ric-8 function, provide a comparative discussion of the Ric-8 molecular chaperoning and GEF activities, and support the case for why Ric-8 proteins should be considered potential targets for development of new therapies.
Insights
Resistance to inhibitors of cholinesterase (Ric-8) proteins regulate G protein function by acting as molecular chaperones and guanine nucleotide exchange factors (GEFs). Targeting the Ric-8/Gα interface offers a novel therapeutic strategy for G protein-related diseases.
Area of Science:
- Molecular biology
- Cell signaling
- Drug discovery
Background:
- Resistance to inhibitors of cholinesterase (Ric-8)A and Ric-8B are crucial regulators of heterotrimeric G protein α subunits.
- The exact mechanisms by which Ric-8 proteins influence G protein biology and signaling remain debated.
Purpose of the Study:
- To review the current understanding of Ric-8 protein function, including their roles as molecular chaperones and guanine nucleotide exchange factors (GEFs).
- To explore the potential of Ric-8 proteins as therapeutic targets for diseases involving G protein dysregulation.
Main Methods:
- Literature review and comparative analysis of Ric-8 molecular chaperoning and GEF activities.
- Discussion of experimental evidence regarding Ric-8 function in G protein regulation.
Main Results:
- Ric-8 proteins facilitate proper Gα subunit folding and prevent degradation, acting as molecular chaperones.
- Ric-8 proteins exhibit GEF activity in vitro, distinct from that of G protein-coupled receptors (GPCRs).
- Ric-8's function is modulated by G protein βγ subunits.
Conclusions:
- Ric-8 proteins possess dual functions as molecular chaperones and GEFs, profoundly impacting heterotrimeric G protein function.
- Pharmacological inhibition of the Ric-8/Gα interface presents a promising, yet unexplored, therapeutic avenue for diseases driven by aberrant G protein signaling.
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