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.
=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]]==


=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

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Alexander Berchansky