The GCGR also contains an intracellular Helix VIII that is comprised of roughly 20 amino acids at the C-terminal end. This helix tilts approximately 25 degrees away from the membrane - the corresponding position in Class A receptors are turned toward the membrane. Although researchers are not entirely sure of its function, this helix is completely conserved in Class B structures.
==== Binding Pocket ====
==== Binding Pocket ====
The Class B GPCR has the longest and deepest binding pocket. The distance between the EC tips of Helicies II and VI as well as between the tips between Helicies III and VII are some of the largest among the GPCRs.
The Class B GPCR has the widest and longest binding pocket. The distance between the EC tips of Helicies II and VI as well as between the tips of Helicies III and VII are some of the largest among the GPCRs. As a result, the [http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3820480/bin/nihms495648f2.jpg binding cavity] of the GCGR is located deeper inside the molecule.
====Other Unique Structural Features ====
====Other Unique Structural Features ====
Revision as of 03:46, 30 March 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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The human glucagon receptor (GCGR) is one of 15 secretin-like, or Class B, G-protein-coupled receptors (GPCRs). Like other GPCRs, it has a 7 trans-membrane helical domain (shown in blue) and a globular N-terminus extracellular domain (shown in magenta). As its name suggests, the 7tm is made up of alpha helices that pass through the membrane seven times. The extracellular domain has an α-β-β structure that consists of two antiparallel β-sheets and a N-terminal α-helix[3].
Function
The Glucagon Receptor plays an important role in glucose homeostasis. During times of fasting (or low blood sugar) the pancreas dispatches glucagon to activate the GCGR in the liver. The binding of glucagon stimulates gluconeogenesis, through adenylate cyclase that initiates protein kinase A (PKA) activity[4]. This pathway synthesizes glucose, elevating blood sugar levels.
Structure
Class B vs. Class A
As opposed to Class A glucagon receptors which have a proline kink, in all secretin-like class B glucagon receptors there is a Glycine at position 393 in Helix VII which allows for a helical bend. This Glycine helical bend is fully conserved in all secretin-like class B receptors and is an important part of the FQGxxVxxYCF motif.
Another important structural component found in all secretin-like class B receptors are the two conserved salt bridges found between Arg 346 and Glu 406 and Arg 173 and Glu 406
Glu 406 Salt Bridges
. No conservation of these residues are seen in Class A receptors.
The 7tm region has a conserved disulfide bond at Cys224-Cys294 which helps to stabilize the 7tm fold. This bond is conserved among both Class A and Class B receptors.The ECD region of Class B GCPRs is defined by three conserved disulfide bonds. These bonds occur at Cys62-Cys104, Cys46-Cys71, and Cys85-Cys126.
As a part of the interface stabilization between helices VI, V, and III, a Class B specific hydrogen bond occurs between N 318 of Helix V and L 242 of Helix III.
GCGR-Specific Traits
Helix I Stalk Region
The tip of Helix I extends above the cell membrane into the extracellular space creating a stalk region. This region is longer than any other class of GPCR and extends 3 α-helical turns above the plane of the membrane. It helps to capture the glucagon peptide and facilitates it's insertion into the 7tm.
Intracellular Helix VIII
The GCGR also contains an intracellular Helix VIII that is comprised of roughly 20 amino acids at the C-terminal end. This helix tilts approximately 25 degrees away from the membrane - the corresponding position in Class A receptors are turned toward the membrane. Although researchers are not entirely sure of its function, this helix is completely conserved in Class B structures.
Binding Pocket
The Class B GPCR has the widest and longest binding pocket. The distance between the EC tips of Helicies II and VI as well as between the tips of Helicies III and VII are some of the largest among the GPCRs. As a result, the binding cavity of the GCGR is located deeper inside the molecule.
Other Unique Structural Features
An important interface stabilization interaction between helices I and VII occurs between Ser 152 of Helix I and Ser 390 of Helix VII. Due to their close proximity to one another, they form an important hydrogen bond which stabilizes the structure of GCGR.
Glucagon Binding
Research has shown that Class B GCPRs exist in either an open or closed conformation. To transition between states, the ECD rotates and moves down towards the 7tm domain. The stalk region of Helix I helps to facilitate this motion of the ECD.
In its open state, the ECD and the stalk region of Helix 1 are almost perpendicular to the membrane surface. In the case of GCGR, this open confirmation is stabilized by glucagon binding. In the absence of glucagon, however, the GCGR adopts a closed conformation in which all three of the extracellular loops of the 7tm (ECL1, ECL2, and ECL3) can interact with the ECD. In this closed state, the ECD covers the extracellular surface of the 7tm.
This transition mechanism is consistent with the "two-domain" binding mechanism of Class B GCPRs in which (1) the C-terminus of the ligand first binds to the ECD allowing (2) the N-terminus of the ligand to interact with the 7tm and activate the protein.
Clinical Relevance
Because of GCGRs role in glucose homeostasis, it is a potential drug target for Type 2 diabetes. Specifically, molecules that antagoinze the glucagon receptor may be able to lower blood sugar levels.
↑Hanson, R. M., Prilusky, J., Renjian, Z., Nakane, T. and Sussman, J. L. (2013), JSmol and the Next-Generation Web-Based Representation of 3D Molecular Structure as Applied to Proteopedia. Isr. J. Chem., 53:207-216. doi:https://dx.doi.org/10.1002/ijch.201300024
↑Herraez A. Biomolecules in the computer: Jmol to the rescue. Biochem Mol Biol Educ. 2006 Jul;34(4):255-61. doi: 10.1002/bmb.2006.494034042644. PMID:21638687 doi:10.1002/bmb.2006.494034042644
↑Yang L, Yang D, de Graaf C, Moeller A, West GM, Dharmarajan V, Wang C, Siu FY, Song G, Reedtz-Runge S, Pascal BD, Wu B, Potter CS, Zhou H, Griffin PR, Carragher B, Yang H, Wang MW, Stevens RC, Jiang H. Conformational states of the full-length glucagon receptor. Nat Commun. 2015 Jul 31;6:7859. doi: 10.1038/ncomms8859. PMID:26227798 doi:https://dx.doi.org/10.1038/ncomms8859
↑Lotfy M, Kalasz H, Szalai G, Singh J, Adeghate E. Recent Progress in the Use of Glucagon and Glucagon Receptor Antago-nists in the Treatment of Diabetes Mellitus. Open Med Chem J. 2014 Dec 31;8:28-35. doi: 10.2174/1874104501408010028., eCollection 2014. PMID:25674162 doi:https://dx.doi.org/10.2174/1874104501408010028