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Drugs Affecting Neurotransmitter Synthesis01:29

Drugs Affecting Neurotransmitter Synthesis

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Drugs affecting neurotransmitter synthesis can impact the adrenergic neuron and the synthesis of neurotransmitters. For example, α-methyltyrosine and carbidopa target specific enzymes involved in catecholamine synthesis. α-methyltyrosine inhibits the enzyme tyrosine hydroxylase, which converts tyrosine into dopamine. By blocking this enzyme, α-methyltyrosine reduces dopamine production and other catecholamines. Carbidopa, on the other hand, inhibits the enzyme dopa decarboxylase,...
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β-adrenoceptors have varied sensitivities towards adrenaline, noradrenaline, and isoprenaline. The order of agonist potency is as follows:
Isoprenaline > Adrenaline > Noradrenaline
Neurotransmitter binding to these receptors causes activation of adenylyl cyclase resulting in increased concentrations of cAMP and modulation of calcium ion channels within the cell. They are further classified into β1, β2, and β3 subtypes.
β1-adrenoceptors: β1-adrenoceptors...
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Spare Receptors01:30

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Some receptors remain unoccupied even when an agonist produces a maximal response. Such empty ones are called spare receptors. In presence of spare receptors the maximum effect of an agonist drug is achieved with fewer than 100% of the receptors being occupied. To determine the presence of spare receptors, scientists often compare the concentration of the drug needed to produce 50% of the maximum effect (EC50) with the concentration of the drug needed to occupy 50% of the receptors (Kd). If the...
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Dose-Response Relationship: Overview01:03

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Agonists can bind with and activate receptors, resulting in the formation of drug-receptor complexes. Once formed, these complexes catalyze many biochemical processes at the cellular level and subsequently induce a pharmacologic response. The degree of response is directly proportional to the fraction of activated receptors, which in turn, depends on the concentration of the drug at the receptor site as well as the sensitivity of the receptor. An increase in the administered dose contributes to...
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Related Experiment Video

Updated: Nov 22, 2025

Assessment of Dopaminergic Homeostasis in Mice by Use of High-performance Liquid Chromatography Analysis and Synaptosomal Dopamine Uptake
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Assessment of Dopaminergic Homeostasis in Mice by Use of High-performance Liquid Chromatography Analysis and Synaptosomal Dopamine Uptake

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Striatal dopamine D2-type receptor availability and peripheral 17β-estradiol.

Nicole Petersen1,2,3, Andrea J Rapkin4, Kyoji Okita5,6

  • 1Jane and Terry Semel Institute for Neuroscience and Human Behavior at UCLA, Los Angeles, CA, 90095, USA. npetersen@ucla.edu.

Molecular Psychiatry
|January 9, 2021
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Summary

This study found that circulating estrogen levels do not impact dopamine D2 receptor availability in the human brain. Researchers measured 17β-estradiol and dopamine D2 receptor availability across the menstrual cycle.

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Comprehensive Profiling of Dopamine Regulation in Substantia Nigra and Ventral Tegmental Area
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Area of Science:

  • Neuroendocrinology
  • Neuroimaging
  • Human Physiology

Background:

  • Rodent studies suggest estrogen influences dopamine function.
  • A direct link between estrogen and human dopamine signaling remains unclear.
  • Estrogen's role in human neurobiology requires further investigation.

Purpose of the Study:

  • To investigate the relationship between 17β-estradiol levels and dopamine D2 receptor availability in the human brain.
  • To assess if menstrual cycle-related estrogen fluctuations affect striatal dopamine D2 receptor availability.
  • To bridge the gap between animal models and human neuroendocrine-estrogen-dopamine interactions.

Main Methods:

  • Positron emission tomography (PET) with [18F]fallypride to measure striatal dopamine D2-type receptor availability.
  • Radioimmunoassay to quantify serum 17β-estradiol levels.
  • Recruitment of 16 women tested during low-estrogen (follicular) and high-estrogen (periovulatory) phases.

Main Results:

  • No significant differences in dopamine D2-type receptor availability were observed in the whole striatum or its subregions (caudate, putamen, accumbens).
  • Findings were consistent across both high-estrogen and low-estrogen phases of the menstrual cycle.
  • Peripheral 17β-estradiol levels did not correlate with striatal dopamine D2 receptor availability.

Conclusions:

  • Circulating estrogen levels do not appear to modulate dopamine D2-type receptor availability in the human striatum.
  • While D2 receptor availability is unaffected, other aspects of dopaminergic function might still be influenced by estrogen.
  • This study provides crucial human data on the estrogen-dopamine interaction, diverging from some rodent model implications.