Characterization of the human calcitonin gene-related peptide receptor subtypes associated with receptor

Kenji Kuwasako1, Yuan-Ning Cao, Yasuko Nagoshi

  • 1First Department of Internal Medicine, Miyazaki Medical College, 5200 Kihara, Kiyotake, Miyazaki 889-1692, Japan. kuwasako@fc.miyazaki-med.ac.jp

Molecular Pharmacology
|January 15, 2004
PubMed

Insights

Receptor activity-modifying proteins (RAMPs) form functional human calcitonin gene-related peptide (hCGRP) receptors with CTR2 or CRLR. CTR2/RAMP1 shows distinct sensitivity to linear hCGRPalpha analogs, suggesting a CGRP2 receptor classification.

Area of Science:

  • Pharmacology
  • Molecular Biology
  • Receptor Biochemistry

Background:

  • Receptor activity-modifying proteins (RAMPs) modulate the function of G protein-coupled receptors.
  • Calcitonin receptor-like receptor (CRLR) and calcitonin receptor 2 (CTR2) form heterodimeric receptors with RAMPs for human calcitonin gene-related peptide (hCGRP).

Purpose of the Study:

  • To investigate the pharmacological profiles of hCGRP receptors formed by CTR2 and RAMPs.
  • To characterize the function of dominant-negative (DN) RAMP mutants in hCGRP receptor signaling.
  • To determine the relative sensitivities of different CTR2/RAMP and CRLR/RAMP heterodimers to hCGRPalpha analogs.

Main Methods:

  • Transfection of hCGRP receptors (CTR2/RAMP or CRLR/RAMP) into human embryonic kidney 293 cells.
  • Pharmacological characterization using dominant-negative RAMP mutants and various hCGRPalpha analogs.
  • Fluorescence-activated cell sorting (FACS) for cell surface receptor expression analysis.
  • Cyclic adenosine monophosphate (cAMP) production assays to measure receptor signaling.

Main Results:

  • Coexpression of CTR2 with RAMPs significantly increased hCGRPalpha-mediated cAMP production compared to CTR2 alone.
  • CTR2/RAMP1 exhibited higher sensitivity to certain hCGRPalpha analogs compared to CTR2/RAMP2, CTR2/RAMP3, or CRLR/RAMP1.
  • Dominant-negative RAMP3 acted as a negative regulator of CTR2 function, diminishing hCGRPalpha signaling.
  • The relative agonist sensitivity was determined as hCGRPalpha > [Tyr0]hCGRPalpha > [Cys(Et)2,7]hCGRPalpha > [Cys(ACM)2,7]hCGRPalpha.

Conclusions:

  • CTR2/RAMP heterodimers form functional hCGRP receptors with distinct pharmacological properties.
  • CTR2/RAMP1 displays unique sensitivity to linear hCGRPalpha analogs, suggesting its potential classification as a CGRP2 receptor.
  • DN RAMP3 acts as an inhibitor of CTR2 signaling.
  • Iodinated CGRPalpha analogs can be utilized to differentiate CGRP1 and CGRP2 receptors.

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