Systems Biology of the Vasopressin V2 Receptor: New Tools for Discovery of Molecular Actions of a GPCR

Author:

Chen Lihe1,Jung Hyun Jun12,Datta Arnab13,Park Euijung1,Poll Brian G.1,Kikuchi Hiroaki1,Leo Kirby T.1,Mehta Yash1,Lewis Spencer1,Khundmiri Syed J.1,Khan Shaza1,Chou Chung-Lin1,Raghuram Viswanathan1,Yang Chin-Rang1,Knepper Mark A.1

Affiliation:

1. Epithelial Systems Biology Laboratory, National Heart, Lung, and Blood Institute, National Institutes of Health, Bethesda, Maryland 20814, USA;

2. Division of Nephrology, Department of Medicine, Johns Hopkins University School of Medicine, Baltimore, Maryland 21287, USA

3. Yenepoya Research Center, Yenepoya, Mangalore 575018, Karnataka, India

Abstract

Systems biology can be defined as the study of a biological process in which all of the relevant components are investigated together in parallel to discover the mechanism. Although the approach is not new, it has come to the forefront as a result of genome sequencing projects completed in the first few years of the current century. It has elements of large-scale data acquisition (chiefly next-generation sequencing–based methods and protein mass spectrometry) and large-scale data analysis (big data integration and Bayesian modeling). Here we discuss these methodologies and show how they can be applied to understand the downstream effects of GPCR signaling, specifically looking at how the neurohypophyseal peptide hormone vasopressin, working through the V2 receptor and PKA activation, regulates the water channel aquaporin-2. The emerging picture provides a detailedframework for understanding the molecular mechanisms involved in water balance disorders, pointing the way to improved treatment of both polyuric disorders and water-retention disorders causing dilutional hyponatremia.

Publisher

Annual Reviews

Subject

Pharmacology,Toxicology

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