Sandbox Reserved 1449: Difference between revisions

From Proteopedia
Jump to navigationJump to search
No edit summary
No edit summary
Line 27: Line 27:
According to the National Institute on Drug Abuse, 115 Americans die every day as a result of opioid overdose. Furthermore, the opioid crisis our country faces has two million Americans directly in its grips. <ref name= "Article 1" >National Institute on Drug Abuse. “Opioid Overdose Crisis.” NIDA, 6 Mar. 2018, www.drugabuse.gov/drugs-abuse/opioids/opioid-overdose-crisis. </ref>. The opioid drug class includes the controlled substances morphine, fentanyl, codeine, hydrocodone, and oxycodone as well as the illegal substance, heroin.  The aforementioned drugs act at opioid receptors in the brain and provide pain relief in addition to a sense of euphoria and sedation. Exogenous opioids that result in physical dependence act specifically at μ-opioid receptors (MOR). <ref>DOI: 10.1016/j.aat.2010.12.008</ref> To wage a successful war against opioids in the United States, we must fully understand the science behind opioid addiction.  
According to the National Institute on Drug Abuse, 115 Americans die every day as a result of opioid overdose. Furthermore, the opioid crisis our country faces has two million Americans directly in its grips. <ref name= "Article 1" >National Institute on Drug Abuse. “Opioid Overdose Crisis.” NIDA, 6 Mar. 2018, www.drugabuse.gov/drugs-abuse/opioids/opioid-overdose-crisis. </ref>. The opioid drug class includes the controlled substances morphine, fentanyl, codeine, hydrocodone, and oxycodone as well as the illegal substance, heroin.  The aforementioned drugs act at opioid receptors in the brain and provide pain relief in addition to a sense of euphoria and sedation. Exogenous opioids that result in physical dependence act specifically at μ-opioid receptors (MOR). <ref>DOI: 10.1016/j.aat.2010.12.008</ref> To wage a successful war against opioids in the United States, we must fully understand the science behind opioid addiction.  


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>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>.


This is a sample scene created with SAT to <scene name="/12/3456/Sample/1">color</scene> by Group, and another to make <scene name="/12/3456/Sample/2">a transparent representation</scene> of the protein. You can make your own scenes on SAT starting from scratch or loading and editing one of these sample scenes.
This is a sample scene created with SAT to <scene name="/12/3456/Sample/1">color</scene> by Group, and another to make <scene name="/12/3456/Sample/2">a transparent representation</scene> of the protein. You can make your own scenes on SAT starting from scratch or loading and editing one of these sample scenes.

Revision as of 19:57, 30 April 2018

link title

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.
To get started:
  • Click the edit this page tab at the top. Save the page after each step, then edit it again.
  • Click the 3D button (when editing, above the wikitext box) to insert Jmol.
  • show the Scene authoring tools, create a molecular scene, and save it. Copy the green link into the page.
  • Add a description of your scene. Use the buttons above the wikitext box for bold, italics, links, headlines, etc.

More help: Help:Editing

Mu Opioid Receptor

Human Delta Opioid 7TM Receptor

Drag the structure with the mouse to rotate

References