Sandbox Reserved 1167: Difference between revisions
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== Function == | == Function == | ||
The glucagon receptor plays an important role in glucose homeostasis. During times of fasting (or low blood sugar) the pancreas produces glucagon to activate the GCGR in the liver. The [http://www.nature.com/nature/journal/v499/n7459/fig_tab/nature12393_F5.html binding of glucagon] | The glucagon receptor plays an important role in glucose homeostasis. During times of fasting (or low blood sugar) the pancreas produces glucagon to activate the GCGR in the liver. The [http://www.nature.com/nature/journal/v499/n7459/fig_tab/nature12393_F5.html binding of glucagon] to the extracellular side of GCGR leads to the activation of the receptor. On the intracellular side, upon this activation, a guanine diphosphate (GDP) is exchanged for a guanine triphosphate (GTP) - which, in turn, activates adenylate cyclase. Converting adenosine triphosphate (ATP) into cyclic adenosine monophosphate (cAMP), adenylate cyclase initiates protein kinase A (PKA) activity, which releases glucose into the blood stream. Overall, activation of the GCGR elevates blood sugar levels. | ||
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However, one particular difference between class A receptors and class B receptors is an inward shift of the intracellular component of Helix VII. In class A receptors this inward shift is instrumental in receptor activation, yet in class B receptors it remains unclear what role this shift plays<ref name ='structure_article'>PMID:23863937</ref>. | However, one particular difference between class A receptors and class B receptors is an inward shift of the intracellular component of Helix VII. In class A receptors this inward shift is instrumental in receptor activation, yet in class B receptors it remains unclear what role this shift plays<ref name ='structure_article'>PMID:23863937</ref>. | ||
In contrast to class A glucagon receptors which have a [https://en.wikipedia.org/wiki/Proline proline] kink, in all [https://en.wikipedia.org/wiki/Secretin_receptor_family secretin-like class B glucagon receptors] a [https://en.wikipedia.org/wiki/Glycine Glycine] at position 393 in Helix VII allows for a <scene name='72/721537/Gly_393_helical_bend/ | In contrast to class A glucagon receptors which have a [https://en.wikipedia.org/wiki/Proline proline] kink, in all [https://en.wikipedia.org/wiki/Secretin_receptor_family secretin-like class B glucagon receptors] a [https://en.wikipedia.org/wiki/Glycine Glycine] at position 393 in Helix VII allows for a <scene name='72/721537/Gly_393_helical_bend/3'>helical bend</scene>. This glycine helical bend is fully [https://en.wikipedia.org/wiki/Conserved_sequence conserved] in all secretin-like class B receptors. | ||
Another important structural component found in all secretin-like class B receptors are the two conserved [https://en.wikipedia.org/wiki/Salt_bridge_%28protein_and_supramolecular%29 salt bridges] found between [https://en.wikipedia.org/wiki/Arginine Arg] 346 and [https://en.wikipedia.org/wiki/Glutamic_acid Glu] 406 and Arg 173 and Glu 406 | Another important structural component found in all secretin-like class B receptors are the two conserved [https://en.wikipedia.org/wiki/Salt_bridge_%28protein_and_supramolecular%29 salt bridges] found between [https://en.wikipedia.org/wiki/Arginine Arg] 346 and [https://en.wikipedia.org/wiki/Glutamic_acid Glu] 406 and Arg 173 and Glu 406. These <scene name='72/721537/Salt_bridges/2'>salt bridges</scene> are a distinct feature of class B receptors because their interaction results in the distinct stalk found only in class B receptors<ref name ='structure_article'>PMID:23863937</ref>. | ||
While interface interactions between helices VI, V, and III, are not unique to class B receptors because certain homologous and even conserved residues exist in class A receptors (like [https://en.wikipedia.org/wiki/Tyrosine Tyr] 239 and Leu 358), as a part of the interface <scene name='72/721537/Helical_interactions_vi-v-iii/2'>stabilization</scene> between helices VI, V, and III, a Class B-specific [https://en.wikipedia.org/wiki/Hydrogen_bond hydrogen bond] occurs between [https://en.wikipedia.org/wiki/Asparagine Asn] 318 of Helix V and [https://en.wikipedia.org/wiki/Leucine Leu] 242 of Helix III <ref name ='structure_article'>PMID:23863937</ref>. | |||
=== GCGR-Specific Traits === | === GCGR-Specific Traits === | ||
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====Other Unique Structural Features ==== | ====Other Unique Structural Features ==== | ||
An important interface stabilization interaction between Helices I and VII occurs between [https://en.wikipedia.org/wiki/Serine Ser] 152 of Helix I and Ser 390 of Helix VII. Due to their close proximity to one another, they form an important <scene name='72/721537/Ser-ser_hydrogen_bond/ | An important interface stabilization interaction between Helices I and VII occurs between [https://en.wikipedia.org/wiki/Serine Ser] 152 of Helix I and Ser 390 of Helix VII. Due to their close proximity to one another, they form an important <scene name='72/721537/Ser-ser_hydrogen_bond/3'>hydrogen bond</scene> which stabilizes the structure of GCGR. Mutations to the homologous residues Ser 135 and Ser 392 have been shown to alter receptor signaling in [https://en.wikipedia.org/wiki/Glucagon-like_peptide_1_receptor glucagon-like peptide-1 receptor] (GLP1R). | ||
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== Clinical Relevance == | == Clinical Relevance == | ||
Because of GCGR's role in glucose homeostasis, GCGRis a potential drug target for [https://en.wikipedia.org/wiki/Diabetes_mellitus_type_2 Type 2 diabetes]. Specifically, molecules that antagonize the glucagon receptor may be able to lower blood sugar levels. Among experimental treatments, two antibodies, mAb1 and mAb23, target the ECD domain of the GCGR interrupting glucagon binding<ref name= | Because of GCGR's role in glucose homeostasis, GCGRis a potential drug target for [https://en.wikipedia.org/wiki/Diabetes_mellitus_type_2 Type 2 diabetes]. Specifically, molecules that antagonize the glucagon receptor may be able to lower blood sugar levels. Among experimental treatments, two antibodies, mAb1 and mAb23, target the ECD domain of the GCGR interrupting glucagon binding<ref name='other_article'>PMID:22908259</ref>. While the entire cleft of the ECD is blocked by mAb1, mAb3 blocks glucagon binding by stabilizing a conformation of the ECD that promotes receptor inactivation <ref name='other_article'>PMID:22908259</ref>. Another antibody, mAb7, inhibits GCGR allosterically<ref>PMID:24189067</ref>. Through binding to a site outside of the binding pocket, mAb7 inhibits the receptor without interacting with essential glucagon binding residues. Disrupting the normal interactions between the ECD and the 7tm domains, these antibodies inhibit the receptor's function and help to lower blood glucose level. | ||
As GCGR holds great promise as a therapeutic target, there are currently three drugs under development that are designed to treat Type 2 Diabetes by targeting the human glucagon receptor<ref name='therapeutic_article'>DOI 10.1016/j.tips.2013.11.001</ref>. Although they are still in phase I of their clinical trials, preliminary research has shown promising results<ref>DOI 10.2174/1573399810666141224121927</ref>. | As GCGR holds great promise as a therapeutic target, there are currently three drugs under development that are designed to treat Type 2 Diabetes by targeting the human glucagon receptor<ref name='therapeutic_article'>DOI 10.1016/j.tips.2013.11.001</ref>. Although they are still in phase I of their clinical trials, preliminary research has shown promising results<ref>DOI 10.2174/1573399810666141224121927</ref>. | ||
Latest revision as of 12:47, 19 April 2016
| This Sandbox is Reserved from Jan 11 through August 12, 2016 for use in the course CH462 Central Metabolism taught by R. Jeremy Johnson at the Butler University, Indianapolis, USA. This reservation includes Sandbox Reserved 1160 through Sandbox Reserved 1184. |
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Class B Human Glucagon G-Protein Coupled Receptor
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