Sandbox Reserved 1449: Difference between revisions
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You may include any references to papers as in: the use of JSmol in Proteopedia <ref>DOI 10.1002/ijch.201300024</ref> or to the article describing Jmol <ref>PMID:21638687</ref> to the rescue. | You may include any references to papers as in: the use of JSmol in Proteopedia <ref>DOI 10.1002/ijch.201300024</ref> or to the article describing Jmol <ref>PMID:21638687</ref> to the rescue. | ||
Opioid receptors are G-protein coupled receptors (GPCR), which bind endogenous opioid peptide neurotransmitters (such as enkephalins and endorphins) and exogenous synthetic opiate drugs (such as morphine, codeine, and heroin) as ligands to hinder pain-signaling in the brain, peripheral nerves, and digestive tract. μ-opioid receptors are one of the four major classes of opioid receptors, which also includes δ-opioid receptors, κ-opioid receptors, and nociceptin opioid receptors. The μ-opioid receptor MOR-1 is expressed by the gene OPRM1 in vertebrates. MOR-1 has important implications as a target for pain relievers as well as a treatment for drug abuse. | Opioid receptors are G-protein coupled receptors (GPCR), which bind endogenous opioid peptide neurotransmitters (such as enkephalins and endorphins) and exogenous synthetic opiate drugs (such as morphine, codeine, and heroin) as ligands to hinder pain-signaling in the brain, peripheral nerves, and digestive tract. μ-opioid receptors are one of the four major classes of opioid receptors, which also includes δ-opioid receptors, κ-opioid receptors, and nociceptin opioid receptors. The μ-opioid receptor MOR-1 is expressed by the gene OPRM1 in vertebrates. <ref name= "Article 1" >Pasternak, G. W., and Y.-X. Pan. “Mu Opioids and Their Receptors: Evolution of a Concept.” Pharmacological Reviews, vol. 65, no. 4, 2013, pp. 1257–1317., doi:10.1124/pr.112.007138. </ref>. MOR-1 has important implications as a target for pain relievers as well as a treatment for drug abuse. | ||
== Structural highlights == | == Structural highlights == | ||
The molecular structure of MOR-1 was better understood after its cloning in 1993. According to the American Society for Pharmacology and Experimental Therapeutics, the amino acid sequence of MOR-1 is 60-70% homologous to the other classes of opioid receptors. The difference between MOR-1 and the other opioid receptor proteins lies in its extracellular N-terminus, intracellular C-terminus, and second and third extracellular loops. The μ-opioid receptor is a<scene name='77/778329/7tm/1'> 7-multispanning integral membrane protein</scene> found in dorsal root ganglion cells and peripheral nerve cells in humans, with its binding site exposed to the extracellular surface. The transmembrane domain of MOR-1 will dimerize at TM5 and TM6 to form oligomers. <ref name= "Article 1" >Pasternak, G. W., and Y.-X. Pan. “Mu Opioids and Their Receptors: Evolution of a Concept.” Pharmacological Reviews, vol. 65, no. 4, 2013, pp. 1257–1317., doi:10.1124/pr.112.007138. </ref>. The active site of the receptor, where opioid molecules bind, is between TM3, TM5, TM6, and TM7. | The molecular structure of MOR-1 was better understood after its cloning in 1993. According to the American Society for Pharmacology and Experimental Therapeutics, the amino acid sequence of MOR-1 is 60-70% homologous to the other classes of opioid receptors. The difference between MOR-1 and the other opioid receptor proteins lies in its extracellular N-terminus, intracellular C-terminus, and second and third extracellular loops. The μ-opioid receptor is a<scene name='77/778329/7tm/1'> 7-multispanning integral membrane protein</scene> found in dorsal root ganglion cells and peripheral nerve cells in humans, with its binding site exposed to the extracellular surface. The transmembrane domain of MOR-1 will dimerize at TM5 and TM6 to form oligomers. <ref name= "Article 1" >Pasternak, G. W., and Y.-X. Pan. “Mu Opioids and Their Receptors: Evolution of a Concept.” Pharmacological Reviews, vol. 65, no. 4, 2013, pp. 1257–1317., doi:10.1124/pr.112.007138. </ref>. The active site of the receptor, where opioid molecules bind, is between TM3, TM5, TM6, and TM7. <ref name="Article 2" >Serohijos, Adrian W.r., et al. “Structural Basis for μ-Opioid Receptor Binding and Activation.” Structure, vol. 19, no. 11, 9 Nov. 2011, pp. 1683–1690., doi:10.1016/j.str.2011.08.003. <ref/>. | ||
== Function == | == Function == | ||
Revision as of 19:25, 30 April 2018
| This Sandbox is Reserved from Jan 22 through May 22, 2018 for use in the course Biochemistry II taught by Jason Telford at the Maryville University, St. Louis, Missouri, USA. This reservation includes Sandbox Reserved 1446 through Sandbox Reserved 1455. |
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Mu Opioid Receptor
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References
Contet, Candice, et al. “Mu Opioid Receptor: a Gateway to Drug Addiction.” Current Opinion in Neurobiology, 19 May 2004, pp. 370–378., doi:10.1016/s0959-4388(04)00072-8.
Matthes, Hans W. D., et al. “Loss of Morphine-Induced Analgesia, Reward Effect and Withdrawal Symptoms in Mice Lacking the µ-Opioid-Receptor Gene.” Nature, vol. 383, no. 6603, 1996, pp. 819–823., doi:10.1038/383819a0.
National Institute on Drug Abuse. “Opioid Overdose Crisis.” NIDA, 6 Mar. 2018, www.drugabuse.gov/drugs-abuse/opioids/opioid-overdose-crisis.
Pasternak, G. W., and Y.-X. Pan. “Mu Opioids and Their Receptors: Evolution of a Concept.” Pharmacological Reviews, vol. 65, no. 4, 2013, pp. 1257–1317., doi:10.1124/pr.112.007138.
Pasternak, Gavril, and Ying-Xian Pan. “Mu Opioid Receptors in Pain Management.” Acta Anaesthesiologica Taiwanica, vol. 49, no. 1, Mar. 2011, pp. 21–25., doi:10.1016/j.aat.2010.12.008.
Serohijos, Adrian W.r., et al. “Structural Basis for μ-Opioid Receptor Binding and Activation.” Structure, vol. 19, no. 11, 9 Nov. 2011, pp. 1683–1690., doi:10.1016/j.str.2011.08.003.