Sandbox Reserved 1095: Difference between revisions
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=== Primary and secondary structure === | === Primary and secondary structure === | ||
The human AT1 receptor consists of a 376 amino acid string <ref> [http://www.ebi.ac.uk/thornton-srv/databases/cgi-bin/pdbsum/GetPage.pl?pdbcode=4zud&template=main.html Protein Database (PDBsum): 4zud. European Bioinformatics (EBI); 2013.]</ref>. The protein is composed of <scene name='82/829348/Helix_a/1'>18 α helixes</scene> and <scene name='82/829348/B_sheet/1'> | The human AT1 receptor consists of a 376 amino acid string <ref> [http://www.ebi.ac.uk/thornton-srv/databases/cgi-bin/pdbsum/GetPage.pl?pdbcode=4zud&template=main.html Protein Database (PDBsum): 4zud. European Bioinformatics (EBI); 2013.]</ref>. The protein is composed of <scene name='82/829348/Helix_a/1'>18 α helixes</scene> and a <scene name='82/829348/B_sheet/1'>single β sheet</scene> composed of 3 β strands. Moreover, 7 α helixes are made of a majority of hydrophobic amino acids. These helixes are long enough to cross the membrane and create a <scene name='82/829348/Transmambrane_protein/1'>hydrophobic domain</scene> which is situated into the membrane. The human angiotensin receptor is therefore an α helical trans-membrane protein. | ||
Since the angiotensin receptor belongs to the GPCRs family, those 7 α helixes contain 3 extracellular and 3 intracellular loops. The N terminus corresponds to the extracellular domain. The C terminal domain is located intracellularly. | Since the angiotensin receptor belongs to the GPCRs family, those 7 α helixes contain 3 extracellular and 3 intracellular loops. The N terminus corresponds to the extracellular domain. The C terminal domain is located intracellularly. | ||
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=== G protein-binding site === | === G protein-binding site === | ||
When the angiotensin II binds to the angiotensin receptor in the ligand binding pocket, the conformation of the trans-membrane domain changes to create a cytosolic cleft for the binding and activation of G proteins. In this cleft, several conserved residues can be found, which form functional motifs present in all [[GPCRs]] <ref> PMID:30608150 </ref>. | When the angiotensin II binds to the angiotensin receptor in the ligand binding pocket, the conformation of the trans-membrane domain changes to create a cytosolic cleft for the binding and activation of G proteins. In this cleft, several conserved residues can be found, which form functional motifs present in all [[GPCRs]] <ref name='Singh2019'> PMID:30608150 </ref>. | ||
AngII mediates AT1 receptor activation via stacking interactions between Phe8(AngII)/<scene name='82/829348/His_256/2'>His256</scene>(AT1 receptor) and Tyr4(AngII)/<scene name='82/829348/Asn_111/1'>Asn111</scene>(AT1 receptor). This phenomenon results in a conformational change in transmembrane (TM)3-TM6 helixes and in interaction between TM2 and TM7. | AngII mediates AT1 receptor activation via stacking interactions between Phe8(AngII)/<scene name='82/829348/His_256/2'>His256</scene>(AT1 receptor) and Tyr4(AngII)/<scene name='82/829348/Asn_111/1'>Asn111</scene>(AT1 receptor). This phenomenon results in a conformational change in transmembrane (TM)3-TM6 helixes and in interaction between TM2 and TM7 <ref name='Singh2019'/>. | ||
=== Interaction with drugs === | === Interaction with drugs === | ||
Angiotensin Receptor Blockers (ARBs) are used to cure diseases linked to AT1R. | Angiotensin Receptor Blockers (ARBs) are used to cure diseases linked to AT1R. | ||
The ARB [https://en.wikipedia.org/wiki/Olmesartan olmesartan] is anchored to ATR1 by the residues <scene name='82/829348/Tyr35/6'>Tyr35</scene>, <scene name='82/829348/Trp84/5'>Trp84</scene> and <scene name='82/829348/Arg167/3'>Arg167</scene>. | The ARB [https://en.wikipedia.org/wiki/Olmesartan olmesartan] is anchored to ATR1 by the residues <scene name='82/829348/Tyr35/6'>Tyr35</scene>, <scene name='82/829348/Trp84/5'>Trp84</scene> and <scene name='82/829348/Arg167/3'>Arg167</scene>. | ||
Those three amino acids seem to play an important role in the binding of the drug to AT1R, thanks to the formation of extensive networks of hydrogen bonds and salt bridges with the ligand <ref name="Zhang2015"/>. | <scene name='82/829348/3_residues_bound_to_ligand/2'>Those three amino acids</scene> seem to play an important role in the binding of the drug to AT1R, thanks to the formation of extensive networks of hydrogen bonds and salt bridges with the ligand <ref name="Zhang2015"/>. | ||
Many ARBs contain a [https://en.wikipedia.org/wiki/Tetrazole tetrazole] group. Studies showed that tetrazole plays an important role in the binding with AT1R. | Many ARBs contain a [https://en.wikipedia.org/wiki/Tetrazole tetrazole] group. Studies showed that tetrazole plays an important role in the binding with AT1R. | ||
Latest revision as of 09:25, 23 May 2020
| This Sandbox is Reserved from 25/11/2019, through 30/9/2020 for use in the course "Structural Biology" taught by Bruno Kieffer at the University of Strasbourg, ESBS. This reservation includes Sandbox Reserved 1091 through Sandbox Reserved 1115. |
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Human Angiotensin Receptor in complex with olmesartan (4ZUD)
Angiotensin receptors of type 1 belong to the G protein coupled receptor (GPCR) family. These transmembrane proteins interact with angiotensin II, their ligand, and play a crucial role in the renin-angiotensin-aldosterone system. AT1 receptors are predominantly expressed in cardiovascular tissues including heart, endothelium, kidney, vascular smooth muscle cells as well as lungs, brain and adrenal cortex. [1] They are therefore important for the cardiovascular physiology.
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References
- ↑ Thomas WG, Mendelsohn FA. Angiotensin receptors: form and function and distribution. Int J Biochem Cell Biol. 2003 Jun;35(6):774-9. doi:, 10.1016/s1357-2725(02)00263-7. PMID:12676163 doi:https://dx.doi.org/10.1016/s1357-2725(02)00263-7
