HOW MUCH BOVINE RHODOPSIN CRYSTAL STRUCTURE IS USEFUL FOR MODELING HUMAN GPCRS? - β2-Adrenergic Receptor as a Test Case
Anwar Rayan, Mohamed Hegaze, Jamal Raiyn
2009
Abstract
Availability of realistic models for human G-Protein Coupled Receptors (hGPCRs) will aid structure-based drug design (SBDD), thus shortening the time period needed for drug development and minimizing cross-reactivity of drugs with other hGPCRs. Many researchers have constructed models for hGPCRs with homology modeling techniques based on the X-ray structure of bovine rhodopsin and recently to β2-adrenergic receptor which are the only two GPCRs that have high resolution crystal structures. In this study, we evaluate the usefulness of the bovine rhodopsin crystal structures for modeling hGPCRs by analysis of large database of human G-protein coupled receptors that are members of family A (rhodopsin family). The recently released structure of β2-adrenergic receptor was used as a test case for validation purposes of our findings. From pair-wise sequence alignment of each of the receptors in the database to bovine rhodopsin, we come to the conclusion that only for few hGPCRs, X-ray structure of rhodopsin could be used as a template for modeling the trans-membrane domains (TMDs).The detailed analysis of the whole database shows that in general, similarity to bovine rhodopsin is found more in the middle/endoplasmic part than in the exoplasmic part. The shift in the cytoplasmic end of TMD-6 that has been seen in the recently released crystal structure of β2-adrenergic receptor could be understood well from our bioinformatics study. On the basis of our results from this research, we propose to regard specific parts from the endoplasmic domain of the rhodopsin helices as appropriate template for constructing models of other GPCRs, while most of the exoplasmic parts of GPCRs in this family require other techniques for their modeling, due to the low sequence similarity between the receptors and rhodopsin in that region.
References
- Gether U., (2000). Uncovering molecular mechanisms involved in activation of G Protein-Coupled Receptors. Endocr Rev, 21, 90-113
- Nurnberg B., Gudermann T., Schultz G., (1995). Receptors and G proteins as primary components of transmembrane signal transduction. J Mol Med, 73, 123-132
- Drews J., (2000). Drug discovery: a historical perspective. Science, 287, 1960-1964
- Nambi P. & Aiyar N., (2003). G protein-coupled receptors in drug discovery. Assay and Drug Development Technologies, 1, 305-310
- Bissantz C., Bernard P., Hibert M. & Rognan D., (2003). Protein-based virtual screening of databases. II. Are homology modeling of G-protein coupled receptors suitable targets. Proteins - Structure Function and Genetics, 50, 5-25
- Palczewski K., Kumasaka T., Hori T., Behnke C.A., Motoshima H., Fox B.A. Le Trong I., Okada T., Stenkamp R.E., Yamamoto M. & Miyano M. (2000). Crystal structure of rhodopsin: a G-protein coupled receptor. Science, 289(5480), 739-45
- Okada T., Nakamichi H., (2004). X-ray crystallography of rhodopsin. Phase Transitions, 77, 21-29
- Rasmussen S.G.F., Choi H.-J., Rosenbaum D.M., Kobilka T.S., Thian F.S., Edwards P.C., Burghammer M., Ratnala V.R.P., Sanishvili R., Fischetti R.F., Schertler G.F.X., Weis W.I. & Kobilka B.K. (2007). Crystal structure of the human ß2 adrenergic G-proteincoupled receptor. Nature, 450(7168), 383-387
- Cherezov V., Rosenbaum D.M., Hanson M.A., Rasmussen S.G.F., Thian F.S., Kobilka T.S., Choi H.-J., Kuhn P., Weis W.I., Kobilka B.K. & Stevens R.C. (2007). Science, 23, 318(5854), 1258-1265
- Rayan A., Siew N., Cheno Schwartzs S., Matzner Y., Bautsch W. Goldblum A., (2000), A novel computational method for predicting the transmembranal structure of G-protein coupled receptors: application to the human C5aR and C3aR. Receptors Channels, 7(2), 121-137
- Eszter H., Zsolt B., (2008), Homology modeling of breast cancer resistance protein (ABCG2). Journal of Structural Biology, 162, 63-74
- http://www.gpcr.org/7tm/ (June 2006 release (10.0))
- Oliveira L., Paiva A.C.M., Vriend G., (2002), Correlated mutation analyses on very large sequence families. Chembiochem, 3, 1010-1017
- Shacham S., et al. (2001). Modeling the 3D structure of GPCRs from sequence. Med Res Rev, 21, 472-483
- Baker D., Sali A., (2001). Protein structure prediction and structural genomics. Science 294 (5540), 93-96
- Baldwin J.M., Schertler G.F., Unger V.M. (1997). An alpha-carbon template for the transmembrane helices in the rhodopsin family of G-protein-coupled receptors. J Mol Biol, 272, 144-164
- Mirzadegan T., Benko G., Filipek S., Palczewski K., (2003). Sequence analyses of G-protein-coupled receptors: Similarities to rhodopsin. Biochemistry, 42, 2759-2767
- Rayan A.M., Raiyn J.A., 2008. Intelligent Learning Engine (ILE) Optimization Technology, provisional patent
- http://www.pdb.org/pdb/explore.do?structureId=1F88
- Rayan A., Noy E., Chema D., Levitzki A., Goldblum A., 2004. Stochastic algorithm for kinase homology model construction. Current Medicinal Chemistry, 11, 675- 692
Paper Citation
in Harvard Style
Rayan A., Hegaze M. and Raiyn J. (2009). HOW MUCH BOVINE RHODOPSIN CRYSTAL STRUCTURE IS USEFUL FOR MODELING HUMAN GPCRS? - β2-Adrenergic Receptor as a Test Case . In Proceedings of the International Conference on Bio-inspired Systems and Signal Processing - Volume 1: BIOSIGNALS, (BIOSTEC 2009) ISBN 978-989-8111-65-4, pages 291-298. DOI: 10.5220/0001542402910298
in Bibtex Style
@conference{biosignals09,
author={Anwar Rayan and Mohamed Hegaze and Jamal Raiyn},
title={HOW MUCH BOVINE RHODOPSIN CRYSTAL STRUCTURE IS USEFUL FOR MODELING HUMAN GPCRS? - β2-Adrenergic Receptor as a Test Case},
booktitle={Proceedings of the International Conference on Bio-inspired Systems and Signal Processing - Volume 1: BIOSIGNALS, (BIOSTEC 2009)},
year={2009},
pages={291-298},
publisher={SciTePress},
organization={INSTICC},
doi={10.5220/0001542402910298},
isbn={978-989-8111-65-4},
}
in EndNote Style
TY - CONF
JO - Proceedings of the International Conference on Bio-inspired Systems and Signal Processing - Volume 1: BIOSIGNALS, (BIOSTEC 2009)
TI - HOW MUCH BOVINE RHODOPSIN CRYSTAL STRUCTURE IS USEFUL FOR MODELING HUMAN GPCRS? - β2-Adrenergic Receptor as a Test Case
SN - 978-989-8111-65-4
AU - Rayan A.
AU - Hegaze M.
AU - Raiyn J.
PY - 2009
SP - 291
EP - 298
DO - 10.5220/0001542402910298