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=== Binding Sites ===
=== Binding Sites ===
[[Image:HGPR40bind3.png|200 px|right|thumb|Figure 2. Third proposed binding site of hGPR40 with surface shown. Substrate would bind in the pocket below TM7 and above and inbetween TM 1 and 2.]][http://metislabs.com/radioligand-binding-assays Radioligand binding studies] identified multiple [https://en.wikipedia.org/wiki/Binding_site binding sites] in hGPR40.<ref name="Srivastava"/> [https://en.wikipedia.org/wiki/Agonist Full agonists] and [https://en.wikipedia.org/wiki/Partial_agonist partial agonists] were shown to bind in separate sites with positive [http://www.britannica.com/science/cooperativity cooperativity].<ref name="Lin">PMID:22859723</ref> The <scene name='72/721541/Tak_binding_site/4'>binding site for the partial agonist TAK-875</scene> has been identified, but other binding sites were hypothesized. TAK-875 binds between transmembrane helices 3, 4, and 5 and underneath ECL2. By visual inspection, a second possible binding site was proposed between transmembrane helices 3, 4, and 5 on the intracellular side of the transmembrane helices (Figure 1). Also by visual inspection, a third possible binding site was proposed between transmembrane helices 1, 2, and 7 on the extracellular side of hGPR40, close to the TAK-875 binding site (Figure 2).<ref name="Srivastava"/> These binding sites could potentially serve as regulation points for hGPR40. Many proteins are regulated by the binding of inhibitors.
[[Image:HGPR40bind3.png|200 px|right|thumb|Figure 2. Third proposed binding site of hGPR40 with surface shown. Substrate would bind in the pocket below TM7 and above and inbetween TM 1 and 2.]][http://metislabs.com/radioligand-binding-assays Radioligand binding studies] identified multiple [https://en.wikipedia.org/wiki/Binding_site binding sites] in hGPR40.<ref name="Srivastava"/> [https://en.wikipedia.org/wiki/Agonist Full agonists] and [https://en.wikipedia.org/wiki/Partial_agonist partial agonists] were shown to bind in separate sites with positive [http://www.britannica.com/science/cooperativity cooperativity].<ref name="Lin">PMID:22859723</ref> The <scene name='72/721541/Tak_binding_site/4'>binding site for the partial agonist TAK-875</scene> has been identified, but other binding sites were hypothesized. TAK-875 binds between transmembrane helices 3, 4, and 5 and underneath ECL2. By visual inspection, a second possible binding site was proposed between transmembrane helices 3, 4, and 5 on the intracellular side of the transmembrane helices (Figure 1). The location of this binding site with respect to the membrane proposes that substrates would gain entry to the membrane by binding in this site. Also by visual inspection, a third possible binding site was proposed between transmembrane helices 1, 2, and 7 on the extracellular side of hGPR40, close to the TAK-875 binding site (Figure 2).<ref name="Srivastava"/> These binding sites could potentially serve as regulation points for hGPR40. Many proteins that exhibit cooperativity are regulated by the binding of inhibitors.


=== Charge Network ===
=== Charge Network ===
[[Image:hydrogen bonding black.png|200 px|right|thumb|Figure 3. TAK-875 with key binding residues Tyr91, Arg183, Tyr240, and Arg258. These residues all hydrogen bond to the carboxylate moiety of TAK-875.]]hGPR40 has a distinct binding pocket that is established by <scene name='72/721541/All_binding_residues/1'>eight key residues</scene>: Tyr91, Glu172, Arg183, Ser187, Tyr240, Asn241, Asn244, and Arg258. The importance of these residues for agonist binding was determined by alanine [https://www.neb.com/applications/cloning-and-synthetic-biology/site-directed-mutagenesis mutagenesis] studies. Each of these residues have either a [http://www.proteinstructures.com/Structure/Structure/amino-acids.html charged or polar R-group] that creates a charge network that keeps these residues in a stable, unbound state until exposed to a substrate. When the substrate (an agonist) enters the binding pocket, four of the eight <scene name='72/721541/Hydrogen_binding_1/6'>key binding residues</scene> interact directly with the carboxylate moiety of the agonist including two key arginines (Arg183 and Arg258) in the binding pocket.<ref name="Sum">PMID: 17699519</ref><ref name="Sum, C.">PMID:19068482</ref> Along with the two arginine residues, the charge network incorporates two tyrosine residues (Figure 3). These residues (Tyr91 and Tyr240) also stabilize the carboxylate group on the agonists. It was further determined that Tyr240 is especially important for binding. Mutation of Tyr240 caused a reduction in the binding affinity of TAK-875 by eight fold and had a significant effect on the [https://en.wikipedia.org/wiki/Dissociation_constant K<sub>D</sub>] of the protein.<ref name="Srivastava"/>  
[[Image:hydrogen bonding black.png|200 px|right|thumb|Figure 3. TAK-875 with key binding residues Tyr91, Arg183, Tyr240, and Arg258. These residues all hydrogen bond to the carboxylate moiety of TAK-875.]]hGPR40 has a distinct binding pocket that is established by <scene name='72/721541/All_binding_residues/1'>eight key residues</scene>: Tyr91, Glu172, Arg183, Ser187, Tyr240, Asn241, Asn244, and Arg258. The importance of these residues for agonist binding was determined by alanine [https://www.neb.com/applications/cloning-and-synthetic-biology/site-directed-mutagenesis mutagenesis] studies. Each of these residues have either a [http://www.proteinstructures.com/Structure/Structure/amino-acids.html charged or polar R-group] that creates a charge network that keeps these residues in a stable, unbound state until exposed to a substrate. When the substrate (an agonist) enters the binding pocket, four of the eight <scene name='72/721541/Hydrogen_binding_1/7'>key binding residues</scene> interact directly with the carboxylate moiety of the agonist including two key arginines (Arg183 and Arg258) in the binding pocket.<ref name="Sum">PMID: 17699519</ref><ref name="Sum, C.">PMID:19068482</ref> Along with the two arginine residues, the charge network incorporates two tyrosine residues (Figure 3). These residues (Tyr91 and Tyr240) also stabilize the carboxylate group on the agonists. It was further determined that Tyr240 is especially important for binding. Mutation of Tyr240 caused a reduction in the binding affinity of TAK-875 by eight fold and had a significant effect on the [https://en.wikipedia.org/wiki/Dissociation_constant K<sub>D</sub>] of the protein.<ref name="Srivastava"/>  


=== ECL2 ===
=== ECL2 ===

Revision as of 18:48, 13 April 2016

Human GPR40 (hGPR40), also known as Free Fatty Acid Receptor 1 (FFAR1)

Human G-Protein Receptor 40 (hGPR40) visualized at 2.3Å resolution by X-ray crystallography (PDB: 4PHU). The natural substrates of this protein are free fatty acids, giving rise to its secondary name, Free Fatty Acid Receptor 1 (FFAR1).

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References