Neurotransmitters: Difference between revisions
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Currently, treatment for the disease is aimed at DOPA decarboxylase inhibition. Since dopamine cannot cross the blood-brain barrier, it cannot be used to directly treat Parkinson's disease. Thus, exogenously administered L-DOPA is the primary treatment for patients suffering from this neurodegenerative disease. Unfortunately, DOPA decarboxylase rapidly converts L-DOPA to dopamine in the blood stream, with only a small percentage reaching the brain. By inhibiting the enzyme, greater amounts of exogenously administered L-DOPA can reach the brain, where it can then be converted to dopamine. <ref name="burkhard">PMID:11685243 </ref>. Unfortunately, with continued L-Dopa treatment, up to 80% of patients experience 'wearing-off' symptoms, dyskinesias and other motor complications (referred to as the "on-off phenomenon". <ref name="lees">PMID:1904055 </ref>. Clearly, a better understanding of the catalytic mechanism and enzymatic activity of DDC in both healthy and PD individuals is critical to drug design and treatment of the disease. | Currently, treatment for the disease is aimed at DOPA decarboxylase inhibition. Since dopamine cannot cross the blood-brain barrier, it cannot be used to directly treat Parkinson's disease. Thus, exogenously administered L-DOPA is the primary treatment for patients suffering from this neurodegenerative disease. Unfortunately, DOPA decarboxylase rapidly converts L-DOPA to dopamine in the blood stream, with only a small percentage reaching the brain. By inhibiting the enzyme, greater amounts of exogenously administered L-DOPA can reach the brain, where it can then be converted to dopamine. <ref name="burkhard">PMID:11685243 </ref>. Unfortunately, with continued L-Dopa treatment, up to 80% of patients experience 'wearing-off' symptoms, dyskinesias and other motor complications (referred to as the "on-off phenomenon". <ref name="lees">PMID:1904055 </ref>. Clearly, a better understanding of the catalytic mechanism and enzymatic activity of DDC in both healthy and PD individuals is critical to drug design and treatment of the disease. | ||
=Glutamate= | =Glutamate= | ||
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==Histamine receptors== | ==Histamine receptors== | ||
[[Histamine H1 receptor]] | [[Histamine H1 receptor]] | ||
=Serotonin= | |||
==Serotonin receptors== | |||
===[[5-hydroxytryptamine receptor|Serotonin receptors, main page]]=== | |||
===[[5-hydroxytryptamine receptor 3D structures|3D structures of Serotonin receptors]]=== | |||
===[[5-ht3a receptor|5-HT3A receptor]]=== | |||
==[[Serotonin Transporter]]== | |||
==See also [[Serotonin N-acetyltransferase]]== | |||
</StructureSection> | </StructureSection> | ||
Revision as of 07:16, 28 November 2019
Under construction!!!
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References
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Categories:
- Topic Page
- Acetylcholine
- Receptor
- Nicotinic
- Acetylcholine Receptor
- Acetylcholinesterase
- Alzheimer's disease
- Inhibitor
- Adrenaline
- Epinephrine
- Norepinephrine
- Adrenergic
- Adrenergic Receptors
- Monoamine oxidase
- Dopamine
- Parkinson's disease
- Serotonin
- G protein-coupled receptor
- G-protein coupled receptor
- G-protein-coupled receptor
- Gpcr
- Membrane protein
- Histamine