Brown and colleagues (Nature 1993) have cloned a novel calcium-sensing receptor (CaR) which is a member of the G protein-coupled receptor superfamily similar in structure to the metabotropic glutamate receptors. The CaR is expressed in a limited range of cell types including kidney, brain, thyroid C cells, and most prominently parathyroid cells. The CaR cDNA predicts a 7 transmembrane core typical of G protein-coupled receptors but with a large (approximately 600 residue) N-terminal extracellular domain (ECD). We are studying several aspects of the receptor's structure and function in order to understand how calcium binding to the receptor leads to G protein activation. We have raised polyclonal antisera to several synthetic peptides corresponding to sequences in the large extracellular domain of the receptor. These recognize the receptor on western blots. Monoclonal antibodies were raised against the 2 most immunogenic ECD peptides. These monoclonals have been extensively characterized and have proved very useful in immunoblot, immunocytochemistry, and flow cytometry studies of the receptor. For example we have been able to show that glycosylation of the ECD is essential for CaR expression at the cell surface. We have also defined by mutagenesis, regions of the 200 residue C-terminus critical for receptor expression and G protein coupling. Detailed mutagenesis studies of key residues (e.g. conserved cysteines, putative glycosylation sites) in the ECD have also been performed, and have defined cysteines and glycosylation sites critical for receptor expression at the cell membrane. We have succeeded in expressing and purifying the ECD. Biochemical characterization of the ECD included N-terminal sequencing to define site of signal peptide cleavage, definition of carbohydrate content, secondary structure by CD, and sites of tryptic cleavage. We found that the ECD is an intermolecular disulfide-linked dimer that accounts for the dimeric nature of the intact receptor. We have also succeeded in generating a battery of monoclonal antibodies against the purified ECD which have interesting functional effects on the CaR, and which are being evaluated for their epitopes in a further effort to define receptor structure/function. Finally, we have characterized the functional effects of missense mutations identified in subjects with autosomal dominant hypocalcemia. Most such mutations cause increased sensitivity of the receptor to calcium, but one in the 7th transmembrane domain causes true constitutive activation of the receptor, even in the context of a truncated receptor lacking the ECD.

Agency
National Institute of Health (NIH)
Institute
National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK)
Type
Intramural Research (Z01)
Project #
1Z01DK043011-05
Application #
6105446
Study Section
Special Emphasis Panel (MDB)
Project Start
Project End
Budget Start
Budget End
Support Year
5
Fiscal Year
1998
Total Cost
Indirect Cost
City
State
Country
United States
Zip Code
Goebel, S U; Peghini, P L; Goldsmith, P K et al. (2000) Expression of the calcium-sensing receptor in gastrinomas. J Clin Endocrinol Metab 85:4131-7
Hauache, O M; Hu, J; Ray, K et al. (2000) Effects of a calcimimetic compound and naturally activating mutations on the human Ca2+ receptor and on Ca2+ receptor/metabotropic glutamate chimeric receptors. Endocrinology 141:4156-63
Spiegel, A M (2000) G protein defects in signal transduction. Horm Res 53 Suppl 3:17-22
Hauache, O M; Hu, J; Ray, K et al. (2000) Functional interactions between the extracellular domain and the seven-transmembrane domain in Ca2+ receptor activation. Endocrine 13:63-70
Hu, J; Hauache, O; Spiegel, A M (2000) Human Ca2+ receptor cysteine-rich domain. Analysis of function of mutant and chimeric receptors. J Biol Chem 275:16382-9
Zhao, X M; Hauache, O; Goldsmith, P K et al. (1999) A missense mutation in the seventh transmembrane domain constitutively activates the human Ca2+ receptor. FEBS Lett 448:180-4
Goldsmith, P K; Fan, G F; Ray, K et al. (1999) Expression, purification, and biochemical characterization of the amino-terminal extracellular domain of the human calcium receptor. J Biol Chem 274:11303-9
Spiegel, A M (1999) Hormone resistance caused by mutations in G proteins and G protein-coupled receptors. J Pediatr Endocrinol Metab 12 Suppl 1:303-9
Ray, K; Hauschild, B C; Steinbach, P J et al. (1999) Identification of the cysteine residues in the amino-terminal extracellular domain of the human Ca(2+) receptor critical for dimerization. Implications for function of monomeric Ca(2+) receptor. J Biol Chem 274:27642-50