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Updated: Jun 23, 2026

In Vivo Calcium Imaging in C. elegans Body Wall Muscles
Published on: October 20, 2019
Pharmacochaperone-mediated rescue of calcium-sensing receptor loss-of-function mutants
Elissa White1, Jennifer McKenna, Alice Cavanaugh
1Weis Center for Research, Geisinger Clinic, Danville, Pennsylvania 17822-2604, USA.
Abstract:
The calcium sensing receptor (CaSR) is a Family C/3 G protein-coupled receptor that translates changes in extracellular Ca(2+) into diverse intracellular signals. Loss-of-function mutations in human CaSR cause familial hypocalciuric hypercalcemia and neonatal severe hyperparathyroidism. CaSR must navigate a number of endoplasmic reticulum quality control checkpoints during biosynthesis, including a conformational/functional checkpoint. Here we examine the biosynthesis of 25 CaSR mutations causing familial hypocalciuric hypercalcemia /neonatal severe hyperparathyroidism using immunoprecipitation, biotinylation, and functional assays. We define classes of CaSR mutants based on their biosynthetic profile. Class I CaSR mutants are not rescued to the plasma membrane. To dissect the organellar compartments that class I mutants can access, we engineered a cleavage site for the proprotein convertase furin into the extracellular domain of wild-type CaSR and class I mutants. Based on absence or presence of cleavage fragments, we find most mutants are degraded from the endoplasmic reticulum (no furin-mediated cleavage), whereas others access the Golgi (furin-mediated cleavage) before degradation. Class II CaSR mutants show increased expression and/or enhanced plasma membrane localization upon treatment with MG132 or the pharmacochaperone NPS R-568, permitting assay of functional activity. Of the 10 CaSR mutants that exhibit plasma membrane localization, only two did not show enhanced functional activity after rescue with NPS R-568. The established approaches can be used with current and newly identified CaSR mutations to identify the location of biosynthetic block and to determine the likelihood of rescue by allosteric agonists.
Insights
This study classifies calcium sensing receptor (CaSR) mutations based on their protein biosynthesis. Most CaSR mutants are degraded early, while some reach the Golgi, and others can be rescued to improve function.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- The calcium sensing receptor (CaSR) is a G protein-coupled receptor crucial for calcium homeostasis.
- Loss-of-function CaSR mutations cause familial hypocalciuric hypercalcemia and neonatal severe hyperparathyroidism.
- CaSR biosynthesis involves endoplasmic reticulum quality control checkpoints.
Purpose of the Study:
- To investigate the biosynthesis of 25 CaSR mutations linked to hypocalcemia and hyperparathyroidism.
- To classify CaSR mutants based on their protein processing and trafficking.
- To assess the potential for rescuing CaSR mutant function.
Main Methods:
- Immunoprecipitation and biotinylation assays to track CaSR mutants.
- Engineering a furin cleavage site to determine organellar localization.
- Functional assays and treatment with pharmacochaperones (MG132, NPS R-568) to assess rescue.
Main Results:
- CaSR mutants were classified into distinct groups based on their biosynthetic pathway.
- Most mutants undergo degradation in the endoplasmic reticulum; some traffic to the Golgi.
- Class II mutants showed improved plasma membrane localization and function upon treatment, with two exceptions.
Conclusions:
- The study defines classes of CaSR mutants based on their biosynthetic defects.
- These methods can identify the site of biosynthetic arrest for CaSR mutations.
- The findings predict the efficacy of allosteric agonists for rescuing CaSR function.
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