Sandbox Reserved 1172: Difference between revisions

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LPA<sub>1</sub> belongs to the EDG (endothelial differentiation gene) family of [https://en.wikipedia.org/wiki/Lysophospholipid_receptor lysophospholipid receptors]. This family also includes the [https://en.wikipedia.org/wiki/S1PR1 sphingosine 1-phosphate receptor 1] (S1P<sub>1</sub>), which has many structural similarities to LPA<sub>1</sub>. In fact, the transmembrane regions share a sequence identity of 41%. A defining difference between these two receptors is their mode of ligand access to the binding site. Where as the hydrophobic [https://en.wikipedia.org/wiki/Sphingosine-1-phosphate S1P ligand] enters S1P<sub>1</sub> via the membrane, LPA<sub>1</sub> has an extracellular opening that allows LPA access from the extracellular space. Structural evidence for this altered ligand pathway include global changes in the positioning of the extracellular loops (ECL) and transmembrane helices (TM). Specifically, this includes slight divergence of <scene name='72/721543/Tmvii_and_tmi/1'>TMI</scene>, which is positioned 3 angstroms closer to TMVII compared to S1P<sub>1</sub>, and a repositioning of <scene name='72/721543/Ecl_regions/1'>ECL3</scene>, resulting in a divergence of 8 angstroms from S1P<sub>1</sub>. This narrowing of the gap between TMI and TMVII blocks membrane ligand access, while the greater distance between ECL3 and the other extracellular loops promotes extracellular access. Additionally, ECL0 is helical in S1P<sub>1</sub>, but lacks secondary structure in LPA<sub>1</sub>. This increased flexibility that results further promotes favorable access from the extracellular space.
LPA<sub>1</sub> belongs to the EDG (endothelial differentiation gene) family of [https://en.wikipedia.org/wiki/Lysophospholipid_receptor lysophospholipid receptors]. This family also includes the [https://en.wikipedia.org/wiki/S1PR1 sphingosine 1-phosphate receptor 1] (S1P<sub>1</sub>), which has many structural similarities to LPA<sub>1</sub>. In fact, the transmembrane regions share a sequence identity of 41%. A defining difference between these two receptors is their mode of ligand access to the binding site. Where as the hydrophobic [https://en.wikipedia.org/wiki/Sphingosine-1-phosphate S1P ligand] enters S1P<sub>1</sub> via the membrane, LPA<sub>1</sub> has an extracellular opening that allows LPA access from the extracellular space. Structural evidence for this altered ligand pathway include global changes in the positioning of the extracellular loops (ECL) and transmembrane helices (TM). Specifically, this includes slight divergence of <scene name='72/721543/Tmvii_and_tmi/1'>TMI</scene>, which is positioned 3 angstroms closer to TMVII compared to S1P<sub>1</sub>, and a repositioning of <scene name='72/721543/Ecl_regions/1'>ECL3</scene>, resulting in a divergence of 8 angstroms from S1P<sub>1</sub>. This narrowing of the gap between TMI and TMVII blocks membrane ligand access, while the greater distance between ECL3 and the other extracellular loops promotes extracellular access. Additionally, ECL0 is helical in S1P<sub>1</sub>, but lacks secondary structure in LPA<sub>1</sub>. This increased flexibility that results further promotes favorable access from the extracellular space.


<scene name='72/721543/Tmvii_and_tmi/1'>TMI</scene>


<scene name='72/721543/Ecl_regions/1'>ECL3</scene>


=== Endocannabinoid Receptor 1 ===
=== Endocannabinoid Receptor 1 ===
LPA<sub>1</sub> also is closely related to the [http://www.nature.com/ijo/journal/v30/n1s/full/0803272a.html cannabinoid receptor]. This close relation gives CB<sub>1</sub> ([[Cannabinoid Receptor 1]]) the ability to bind to analogs of LPA and vice versa, which opens the possibility of metabolic crosstalk between the two signaling systems. This connection is made possible through ligand phosphorylation and dephosphorylation. Specifically, complementary access to the LPA<sub>1</sub> binding pocket can be achieved by phosphorylated CB<sub>1</sub> ligand analogs, while complementary access to the CB<sub>1</sub> binding site requires dephosphorylation of LPA<sub>1</sub> ligand analogs. In both cases, a ligand could serve as a primary [https://en.wikipedia.org/wiki/Selective_receptor_modulator receptor modulator] and a simultaneous [https://en.wikipedia.org/wiki/Prodrug prodrug] for a different receptor.
LPA<sub>1</sub> also is closely related to the [http://www.nature.com/ijo/journal/v30/n1s/full/0803272a.html cannabinoid receptor]. This close relation gives CB<sub>1</sub> ([[Cannabinoid Receptor 1]]) the ability to bind to analogs of LPA and vice versa, which opens the possibility of metabolic crosstalk between the two signaling systems. This connection is made possible through ligand phosphorylation and dephosphorylation. Specifically, complementary access to the LPA<sub>1</sub> binding pocket can be achieved by phosphorylated CB<sub>1</sub> ligand analogs, while complementary access to the CB<sub>1</sub> binding site requires dephosphorylation of LPA<sub>1</sub> ligand analogs. In both cases, a ligand could serve as a primary [https://en.wikipedia.org/wiki/Selective_receptor_modulator receptor modulator] and a simultaneous [https://en.wikipedia.org/wiki/Prodrug prodrug] for a different receptor.


<scene name='72/721543/Asp129_and_trp210/2'>Residues Asp129 and Trp210</scene> located within the hydrophobic binding pocket of LPA<sub>1</sub> may share responsibility for the preference for long unsaturated acyl chains. These residues are also interesting in regard to GPCR phylogenic evolution (reference). Trp210 specifically only occurs in this position in 1% of all class A receptors and is unique to lysophospholipid and cannabinoid receptors. A model for lipid agonist binding generated through molecular modeling was used to dock two of the cannabinoid receptor CB<sub>1</sub>'s most abundant endogenous ligands into the LPA<sub>1</sub> binding pocket. Rotameric shifts of Trp210 and Trp271 leading to expansion of the binding pocket and the exposure of the π clouds of their indole rings provided favorable interactions with the double bonds of the phosphorylated cannabinoid ligands. This favorable binding provides evidence that the hydrophobic binding pockets of LPA<sub>1</sub> and CB<sub>1</sub> are able to favorably bind the same poly-unsaturated acyl chains with metabolically interconvertible head groups.
<scene name='72/721543/Asp129_and_trp210/2'>Residues Asp129 and Trp210</scene> located within the hydrophobic binding pocket of LPA<sub>1</sub> may share responsibility for the preference for long unsaturated acyl chains. These residues are also interesting in regard to GPCR phylogenic evolution (reference). Trp210 specifically only occurs in this position in 1% of all class A GPCR receptors and is unique to lysophospholipid and cannabinoid receptors. A model for lipid agonist binding generated through molecular modeling was used to dock two of the cannabinoid receptor CB<sub>1</sub>'s most abundant endogenous ligands into the LPA<sub>1</sub> binding pocket. Rotameric shifts of Trp210 and Trp271 leading to expansion of the binding pocket and the exposure of the π clouds of their indole rings provided favorable interactions with the double bonds of the phosphorylated cannabinoid ligands. This favorable binding provides evidence that the hydrophobic binding pockets of LPA<sub>1</sub> and CB<sub>1</sub> are able to favorably bind the same poly-unsaturated acyl chains with metabolically interconvertible head groups.





Revision as of 05:11, 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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Lysophosphatidic Acid Receptor 1

Cartoon representation of the LPA1 protein and its antagonist, ON7, colored in white. (PDB code 4Z34)

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References