Sandbox Ben Whiteside
From Proteopedia
(Difference between revisions)
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=== Bypass Motif === | === Bypass Motif === | ||
=== G-alpha Interactions with CTR TMD === | === G-alpha Interactions with CTR TMD === | ||
- | To transduce the signal across the cell membrane, the binding of amylin will induce a conformational change that allows for the CTR to make favorable interactions with the G alpha subunit. Two interactions shown <scene name='10/1038828/Ctr_g_alpha/15'>(1, </scene><scene name='10/1038828/Ctr_g_alpha/12'>2) </scene> activate the G-protein and propel downstream signaling. As with a typical glucagon GPCR pathway, the activated G-alpha subunit becomes activated upon guanine exchange factor [https://en.wikipedia.org/wiki/Guanine_nucleotide_exchange_factor GEF] activity. This G-alpha subunit transverses laterally in the membrane towards adenylyl cyclase, activating it and causing an increase in the second messenger cyclic adenosine monophosphate [https://en.wikipedia.org/wiki/Cyclic_adenosine_monophosphate cAMP]. This cAMP activates protein kinase A [https://en.wikipedia.org/wiki/Protein_kinase_A PKA], which can phosphorylate other proteins facilitating cellular response. | + | To transduce the signal across the cell membrane, the binding of amylin will induce a conformational change that allows for the CTR to make favorable interactions with the G alpha subunit. Two interactions shown <scene name='10/1038828/Ctr_g_alpha/15'>(1, </scene><scene name='10/1038828/Ctr_g_alpha/12'>2) </scene> activate the G-protein and propel downstream signaling. As with a typical glucagon GPCR pathway, the activated G-alpha subunit becomes activated upon guanine exchange factor [https://en.wikipedia.org/wiki/Guanine_nucleotide_exchange_factor (GEF)] activity. This G-alpha subunit transverses laterally in the membrane towards adenylyl cyclase, activating it and causing an increase in the second messenger cyclic adenosine monophosphate [https://en.wikipedia.org/wiki/Cyclic_adenosine_monophosphate (cAMP)]. This cAMP activates protein kinase A [https://en.wikipedia.org/wiki/Protein_kinase_A (PKA)], which can phosphorylate other proteins facilitating cellular response. |
Revision as of 14:10, 25 April 2024
AMYR
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References
- ↑ Bower RL, Hay DL. Amylin structure-function relationships and receptor pharmacology: implications for amylin mimetic drug development. Br J Pharmacol. 2016 Jun;173(12):1883-98. PMID:27061187 doi:10.1111/bph.13496
- ↑ 2.0 2.1 2.2 Hay DL, Chen S, Lutz TA, Parkes DG, Roth JD. Amylin: Pharmacology, Physiology, and Clinical Potential. Pharmacol Rev. 2015 Jul;67(3):564-600. PMID:26071095 doi:10.1124/pr.115.010629
- ↑ Cao J, Belousoff MJ, Liang YL, Johnson RM, Josephs TM, Fletcher MM, Christopoulos A, Hay DL, Danev R, Wootten D, Sexton PM. A structural basis for amylin receptor phenotype. Science. 2022 Mar 25;375(6587):eabm9609. PMID:35324283 doi:10.1126/science.abm9609
- ↑ Parameswaran N, Spielman WS. RAMPs: The past, present and future. Trends Biochem Sci. 2006 Nov;31(11):631-8. PMID:17010614 doi:10.1016/j.tibs.2006.09.006
- ↑ Hoogwerf BJ, Doshi KB, Diab D. Pramlintide, the synthetic analogue of amylin: physiology, pathophysiology, and effects on glycemic control, body weight, and selected biomarkers of vascular risk. Vasc Health Risk Manag. 2008;4(2):355-62. PMID:18561511 doi:10.2147/vhrm.s1978
- ↑ Gingell JJ, Burns ER, Hay DL. Activity of pramlintide, rat and human amylin but not Aβ1-42 at human amylin receptors. Endocrinology. 2014 Jan;155(1):21-6. PMID:24169554 doi:10.1210/en.2013-1658
- ↑ Grizzanti J, Corrigan R, Casadesus G. Neuroprotective Effects of Amylin Analogues on Alzheimer's Disease Pathogenesis and Cognition. J Alzheimers Dis. 2018;66(1):11-23. PMID:30282360 doi:10.3233/JAD-180433
- ↑ 8.0 8.1 Guerreiro LH, Guterres MF, Melo-Ferreira B, Erthal LC, Rosa Mda S, Lourenço D, Tinoco P, Lima LM. Preparation and characterization of PEGylated amylin. AAPS PharmSciTech. 2013 Sep;14(3):1083-97. PMID:23818080 doi:10.1208/s12249-013-9987-4
Student Contributors
Andrew Helmerich, Mathias Vander Eide, Ben Whiteside