Related Experiment Videos
Functional interactions between the extracellular domain and the seven-transmembrane domain in Ca2+ receptor
O M Hauache1, J Hu, K Ray
1Metabolic Diseases Branch, NIDDK, NIH, Bethesda, MD, USA.
Abstract:
We studied the activity of mutants involving the aminoterminal extracellular, seven-transmembrane (7TM) and carboxy-terminal tail domains of the human Ca2+ receptor to gain insight into the functional interactions between these domains during receptor activation. Missense mutations of highly conserved residues, D190 and E297, in the extracellular domain (ECD), and a mutation within part of the proximal carboxyterminal tail, A877-880E, resulted in receptors with severely reduced response to Ca2+ despite adequate cell surface expression. Coexpression of either D190A or E297K mutants with A877-880E led to significant reconstitution of function. No such reconstitution occurred when D190A or E297K mutants were coexpressed with a truncation mutant possessing an intact amino-terminal extracellular and first transmembrane domain, despite evidence for heterodimerization and cell surface expression of the respective mutant receptors. In addition, no reconstitution of function was observed when D190A was coexpressed with a deletion Ca2+ receptor mutant lacking only a cysteine-rich region located in the ECD of the Ca2+ receptor (Ca-//-Ca). Moreover, coexpression of this Ca-//-Ca with A877-880E did not recover function. The results show that Ca2+ receptor extracellular and 7TM domains are discrete entities that can communicate within the context of a heterodimer composed of complementary mutant receptors. Two intact 7TM domains and two intact cysteine-rich regions appear to be required for such communication to occur. The results are discussed in the context of a speculative model of receptor structure and function.
Insights
Mutant calcium-sensing receptors (CaSR) show that extracellular and seven-transmembrane (7TM) domains communicate. Complementary mutations can restore CaSR function, requiring intact 7TM and cysteine-rich regions for communication.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Biology
Background:
- The calcium-sensing receptor (CaSR) plays a critical role in calcium homeostasis.
- Understanding CaSR domain interactions is crucial for elucidating receptor activation mechanisms.
Purpose of the Study:
- To investigate functional interactions between the aminoterminal extracellular, seven-transmembrane (7TM), and carboxy-terminal tail domains of the human CaSR during activation.
- To determine the requirements for communication between CaSR domains.
Main Methods:
- Site-directed mutagenesis to create specific CaSR mutants (D190A, E297K, A877-880E).
- Coexpression of mutant CaSRs in cells to assess functional reconstitution.
- Analysis of cell surface expression levels.
Main Results:
- Mutations in conserved extracellular residues (D190, E297) and the carboxy-terminal tail (A877-880E) severely reduced CaSR response.
- Coexpression of complementary mutants (e.g., D190A with A877-880E) reconstituted CaSR function.
- Functional reconstitution was not observed with certain mutant combinations, even with heterodimerization, suggesting specific domain requirements.
Conclusions:
- CaSR extracellular and 7TM domains can communicate within heterodimers of complementary mutants.
- Two intact 7TM domains and two intact cysteine-rich regions are necessary for this inter-domain communication.
- Findings support a model of CaSR structure and function involving domain interactions.