Sandbox Reserved 1703: Difference between revisions

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α=Metabotropic Glutamate Receptor 2=
=Metabotropic Glutamate Receptor 2=


<StructureSection load='' size='350' frame='true' side='right' caption='Fully Active mGlu2 with G-Protein Bound (PDB: [[7mts]])' scene='90/904307/Main_active_image/2'>
<StructureSection load='' size='350' frame='true' side='right' caption='Fully Active mGlu2 with G-Protein Bound (PDB: [[7mts]])' scene='90/904307/Main_active_image/2'>
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===Active State===
===Active State===
The downward shift of helix 6, caused by PAM binding, induces a reorientation of the TMD from its original TM3-TM4 asymmetric dimer interface in the inactive form to an <scene name='90/904308/Active_7_tm_transparent/1'>asymmetric TM6-TM6 interface</scene>. The downward shift of helix 6 is crucial for the receptor’s transformation from the inactive to the active form for 2 main reasons: (1) reorientation breaks key interactions in the TMD that stabilize the inactive form and (2) repositioning <scene name='90/904308/Active_structure/4'>intracellular loops</scene> of in the TMD to assist in the binding and recognitions of the <scene name='90/904308/G-protein/1'>G-Protein</scene>. The G-protein is made up of three subunits: <scene name='90/904308/Alpha_subunit/1'>α-subunit</scene>, <scene name='90/904308/Beta_subunit/1'>β-subunit</scene>, and a <scene name='90/904308/Gamma_subunit/1'>γ-subunit</scene>.
The downward shift of helix 6, caused by PAM binding, induces a reorientation of the TMD from its original TM3-TM4 asymmetric dimer interface in the inactive form to an <scene name='90/904308/Active_7_tm_transparent/1'>asymmetric TM6-TM6 interface</scene>. The downward shift of helix 6 is crucial for the receptor’s transformation from the inactive to the active form for 2 main reasons: (1) reorientation breaks key interactions in the TMD that stabilize the inactive form and (2) repositioning <scene name='90/904308/Active_structure/7'>intracellular loops</scene> of in the TMD to assist in the binding and recognitions of the <scene name='90/904308/G-protein/1'>G-Protein</scene>. The G-protein is made up of three subunits: <scene name='90/904308/Alpha_subunit/1'>α-subunit</scene>, <scene name='90/904308/Beta_subunit/1'>β-subunit</scene>, and a <scene name='90/904308/Gamma_subunit/1'>γ-subunit</scene>.


====G-Protein Recognition====
====G-Protein Recognition====
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====G-protein Binding====
====G-protein Binding====
The PAM induced downward shift of helix 6 coupled with the reorientation of the transmembrane domain to a TM6-TM6 asymmetric interface, opens up a cleft on the intracellular surface of the receptor. This cleft allows a <scene name='90/904308/Hook_region/1'>hook-like region</scene>, from terminal 4 residues of the α-subunit of the G-protein to move in adjacent to helix 4 in the TMD. Within this interaction, <scene name='90/904308/Hook_region_recognition/2'>C351</scene> on the hook participates in hydrophobic interactions with ICL2 and helix 4. These interactions allow the C-terminal region of the G-protein α-subunit to bind in the cleft formed by ICL2 and residues on helix 4<ref name="Lin" />.The receptor is now <scene name='90/904308/Active_structure/3'>fully active</scene> with the dimer coupled only to one G-protein. The VFT is in the closed conformation and the TMD helices are also reoriented in both monomers to form an asymmetric dimer interface. These interactions allow the G-protein to bind which causes mGlu2 to be fully active. Now that mGlu2 is active it can regulate different signaling transductions in the cell<ref name="Lin"/>.  
The PAM induced downward shift of helix 6 coupled with the reorientation of the transmembrane domain to a TM6-TM6 asymmetric interface, opens up a cleft on the intracellular surface of the receptor. This cleft allows a <scene name='90/904308/Hook_region/2'>hook-like region</scene>, from terminal 4 residues of the α-subunit of the G-protein to move in adjacent to helix 4 in the TMD. Within this interaction, <scene name='90/904308/Hook_region_recognition/2'>C351</scene> on the hook participates in hydrophobic interactions with ICL2 and helix 4. These interactions allow the C-terminal region of the G-protein α-subunit to bind in the cleft formed by ICL2 and residues on helix 4<ref name="Lin" />.The receptor is now <scene name='90/904307/Main_active_image/4'>fully active</scene> with the dimer coupled only to one G-protein. The VFT is in the closed conformation and the TMD helices are also reoriented in both monomers to form an asymmetric dimer interface. These interactions allow the G-protein to bind which causes mGlu2 to be fully active. Now that mGlu2 is active it can regulate different signaling transductions in the cell<ref name="Lin"/>.  


==Clinical Relevance==
==Clinical Relevance==
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[[7mtq]], mGlu2 inactive <br />
[[7mtq]], mGlu2 inactive <br />
[[7mtr]], mGlu2 PAM bound <br />
[[7mtr]], mGlu2 PAM bound <br />
[[7epe]], mGlu2 NAM bound <br />
[[7mts]], mGlu2 active <br />
[[7mts]], mGlu2 active <br />



Latest revision as of 05:06, 19 April 2022

Metabotropic Glutamate Receptor 2

Fully Active mGlu2 with G-Protein Bound (PDB: 7mts)

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3D Structures

7mtq, mGlu2 inactive
7mtr, mGlu2 PAM bound
7epe, mGlu2 NAM bound
7mts, mGlu2 active

References


Student Contributors

Frannie Brewer Ashley Wilkinson