Regulation of striatal acetylcholine concentration by D2-dopamine receptors.
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BACKGROUND: Attention Deficit Hyperactivity Disorder (ADHD) is a prevalent and highly heritable childhood disorder. The dopamine D4 receptor (DRD4) gene has shown a genetic association with ADHD in Caucasian populations with meta-analysis indicating a small but significant effect across datasets. It remains uncertain whether this association can be generalised to non-Caucasian ethnic groups. Here we investigate two markers within the DRD4 gene in a Taiwanese population, the exon 3 variable number tandem repeat (VNTR) and a 5' 120 base-pair duplication. METHODS: Within-family transmission disequilibrium tests of association of the 5' 120 base-pair duplication, and exon 3 VNTR in a Taiwanese population. RESULTS: No evidence of association of ADHD with either polymorphism in this population was observed. CONCLUSION: The DRD4 gene markers investigated were not found to be associated with ADHD in this Taiwanese sample. Further work in Taiwanese and other Asian populations will therefore be required to establish whether the reports of association of DRD4 genetic variants in Caucasian samples can be generalised to Asian populations.
BACKGROUND: Obstructive sleep apnoea (OSA) is a prevalent sleep disorder that contributes to serious cardiovascular comorbidities. While the mechanical aspects of OSA are well-studied, its neurobiological underpinnings remain underexplored. In this study, we investigated the role of dopamine and its genetic modulators in OSA pathophysiology. PATIENTS AND METHODS: Serum dopamine levels were assessed in a cohort of 153 participants (96 OSA patients and 57 controls), and single-nucleotide polymorphisms (SNPs) in dopamine-related genes, including COMT, DRD1 and DRD2, were analysed in a cohort of 286 participants (141 OSA patients and 145 controls). RESULTS: Elevated serum dopamine levels were observed in OSA patients (p = 0.01), with dopamine levels correlating independently with OSA and male gender. Genotypic analysis identified the DRD2 rs1800497 T allele as a potential independent predictor of OSA severity (p = 0.011), hypopnea (p = 0.005) and arousals (p = 0.024). CONCLUSIONS: This study advances the understanding of OSA by identifying elevated dopamine levels and genetic variations in DRD2 rs1800497 as potential modulators of its occurrence and severity. These findings pave the way for personalized diagnostic and therapeutic approaches. By integrating neurobiology, genetics, and clinical practice, this research contributes to the evolving framework for precision medicine in sleep disorders.
Dopamine neuromodulation is a critical process that facilitates learning, motivation, and motor control. Disruption of these processes has been implicated in several neurodegenerative disorders including Huntington's Disease (HD). While dopaminergic signaling is a therapeutic target for treating physical and psychiatric HD symptoms, the mechanism by which dopaminergic dysfunction occurs during HD is unknown. New tools for the visualization of dopamine dynamics at the spatiotemporal resolution of neuromodulator release (ms) and dopaminergic boutons (µm) provide a richer understanding of how dopamine signaling is disrupted in HD. Here we employ near-infrared fluorescent catecholamine nanosensors (nIRCats) to image dopamine release within the striatum of R6/2 Huntington's Disease model mice of either sex. We find that dorsal striatal dopamine release decreases with progressive degeneration and that these deficits are primarily driven by a decrease in the number of nIRCat imaged dopamine release sites, termed dopamine hotspots, combined with decreased release fidelity. Using nIRCat's high spatial resolution, we track individual dopamine hotspots over repeated stimulations and pharmacological applications to measure dopamine release fidelity from individual sites. Compellingly, we found that D2-receptor (D2R) antagonist sulpiride drives increased fidelity of dopamine hotspot activity in wild type striatum but not in late-disease HD striatum, suggesting that D2R regulation of dopamine release is compromised in late HD. These findings, enabled by nIRCats, provide more detailed insights into how dopamine release is disrupted and dysregulated during Huntington's Disease.Significance statement Huntington's Disease (HD) is a neurodegenerative disorder with no cure. Dopamine signaling is known to deteriorate in HD but has not been studied at the level of individual release sites. Here, we image dopamine release from individual dopamine release sites in R6/2 HD mouse brain slices containing the striatum with novel dopamine nanosensors. We find that dopamine release site number and release fidelity are decreased in late HD. Furthermore, we demonstrate that D2-receptor signaling may be altered in late disease R6/2 HD mice, and that these disruptions are likely to drive decreased dopamine release fidelity over multiple stimulations. These findings suggest dopaminergic neurons projecting to the striatum as a potential therapeutic target for HD treatment to complement more commonly targeted medium spiny neurons.
The dopamine (DA)-receptor mediated changes in striatal acetylcholine (ACh) levels have been studied to determine if this effect involves a D1-(adenylate cyclase dependent) or D2-(not linked to an adenylate cyclase) type of DA-receptor, Various DA-agonists (apomorphine, N-diphenethylamine derivatives) increased striatal ACh levels in both intact and 6-OHDA lesioned rats whereas only apomorphine stimulated the adenylate cyclase activity of striatal homogenates. The N-diphenethylamine compounds (RU 24213, RU 24926 and RU 26933) were without effect either on basal or DA-stimulated activities of this enzyme. In contrast, D-LSD (which acts as a partial agonist of the striatal DA-sensitive adenylate cyclase) did not modify the striatal ACh content. More interestingly, an intrastriatal injection of cholera toxin greatly stimulated striatal adenylate cyclase without altering ACh concentrations. Both haloperidol and methergoline antagonized the DA stimulation of adenylate cyclase, but only haloperidol decreased striatal ACh levels. These results indicate that the DA receptor involved in regulating the activity of striatal cholinergic neurons is of the D2-type.
The catechol L-DOPA, a cornerstone of Parkinson's disease (PD) treatment, has two major drawbacks: poor pharmacokinetics and, more significantly, debilitating dyskinesias from chronic dopamine D1 receptor (D1R) activation. Preclinical rodent studies suggest that D1R antagonism or β-arrestin-biased agonism can alleviate these motor complications, highlighting the need for next-generation non-catechol ligands. Through virtual screening, we identified eight novel chemotypes as D1R ligands, including two G protein-biased agonists, two β-arrestin-biased agonists and four antagonists. Structure-activity relationship (SAR) optimization led to the development of A82R, a non-catechol D1R antagonist (Ki 733 nM) with high D1 family over D2 family selectivity. Additionally, we present A69, a novel non-catechol β-arrestin-biased partial agonist for D1R (Ki 86.9 nM, stronger than representative D1R commercial drugs) with a sustained half-life of 1 h in the mouse brain. We show that the observed selectivity patterns are consistent with structural and information-theoretic limits on dopamine's ability to encode receptor subtype identity. Within these bounds, the non-catechol ligand chemotypes represent promising leads for developing therapies that modulate D1R signaling and reduce L-DOPA-induced dyskinesia in PD.