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== Mu Opioid Receptor== | == Mu Opioid Receptor== | ||
<StructureSection load='4n6h' size='340' side='right' caption='Human Delta Opioid 7TM Receptor'scene=''> | <StructureSection load='4n6h' size='340' side='right' caption='Human Delta Opioid 7TM Receptor'scene=''> | ||
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>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. | 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>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. | ||
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MOR-1 is a G-protein coupled receptor (GPCRs), which binds extracellular signaling molecules including exogenous opiate drugs (such as morphine, codeine, and heroin) and endogenous opioid peptide neurotransmitters (such as enkephalins, endorphins, and dynorphins) as ligands to hinder pain-signaling. Endogenous opioids play a role in naturally reducing sensations of pain felt by the body. However, they do not evoke as powerful a physiological response as exogenous opioids. <ref>DOI: 10.1124/pr.112.007138</ref> | MOR-1 is a G-protein coupled receptor (GPCRs), which binds extracellular signaling molecules including exogenous opiate drugs (such as morphine, codeine, and heroin) and endogenous opioid peptide neurotransmitters (such as enkephalins, endorphins, and dynorphins) as ligands to hinder pain-signaling. Endogenous opioids play a role in naturally reducing sensations of pain felt by the body. However, they do not evoke as powerful a physiological response as exogenous opioids. <ref>DOI: 10.1124/pr.112.007138</ref> | ||
In the presence of a signaling molecule, an active G protein will have GTP bound to | In the presence of a signaling molecule, an active G protein will have GTP bound, to promote an intracellular signaling cascade. After the G protein has transduced the signal, it exchanges GTP for GDP and becomes inactive until another signaling molecule binds to the GPCR. | ||
In the case of the μ-opioid receptor, the binding of an opioid signaling molecule induces a conformational change in the receptor that activates an inhibitory G-protein (Gαi/o). This results in the dissociation of the G-protein complex. The Gα subunit then inhibits adenylyl cyclase. The Gβγ subunit acts to inhibit Ca2+ channels while activing K+ channels. While much has been learned about μ-opioid receptors since their discovery in 1973, there is still much that is unknown about their structure and activation mechanism. Thus, further research into this area is needed. <ref>DOI: 10.1016/j.str.2011.08.003</ref> | In the case of the μ-opioid receptor, the binding of an opioid signaling molecule induces a conformational change in the receptor that activates an inhibitory G-protein (Gαi/o). This results in the dissociation of the G-protein complex. The Gα subunit then inhibits adenylyl cyclase. The Gβγ subunit acts to inhibit Ca2+ channels while activing K+ channels. While much has been learned about μ-opioid receptors since their discovery in 1973, there is still much that is unknown about their structure and activation mechanism. Thus, further research into this area is needed. <ref>DOI: 10.1016/j.str.2011.08.003</ref> | ||
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The biochemistry of opioid addiction points to the ventral tegmental area (VTA) of the brain, the reward center. In this area, there are a high concentration of μ-opioid receptors on the surfaces of neurons. When exogenous opioid agonists are present, they bind to the active site of the μ-opioid receptor. This sends a signal along the axon of the neuron to activate dopaminergic neurons. Upon activation of dopaminergic neurons, dopamine is released into the synapse and binds to post-synaptic receptors. The binding of dopamine results in feelings of euphoria. Exogenous opioids produce larger amounts of dopamine than endogenous opioids. When exogenous opioids are abused, the behavior of abusing them is reinforced by the feelings of pleasure from dopamine. Overtime, an addicted person develops a tolerance and more opioids are needed in order to release the same amount of dopamine as the first use. <ref name= "Article 2" > 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. </ref>. | The biochemistry of opioid addiction points to the ventral tegmental area (VTA) of the brain, the reward center. In this area, there are a high concentration of μ-opioid receptors on the surfaces of neurons. When exogenous opioid agonists are present, they bind to the active site of the μ-opioid receptor. This sends a signal along the axon of the neuron to activate dopaminergic neurons. Upon activation of dopaminergic neurons, dopamine is released into the synapse and binds to post-synaptic receptors. The binding of dopamine results in feelings of euphoria. Exogenous opioids produce larger amounts of dopamine than endogenous opioids. When exogenous opioids are abused, the behavior of abusing them is reinforced by the feelings of pleasure from dopamine. Overtime, an addicted person develops a tolerance and more opioids are needed in order to release the same amount of dopamine as the first use. <ref name= "Article 2" > 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. </ref>. | ||
</StructureSection> | </StructureSection> | ||
== References == | == References == | ||
<references/> | <references/> | ||
Latest revision as of 20:01, 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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