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At least 19 recordsLinked to original sources

The importance of dopamine levels and single-nucleotide polymorphism within COMT, DRD1 and DRD2 genes in obstructive sleep apnoea.

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.

Humans

A twin study on three enzymes (DBH, COMT, MAO) of catecholamine metabolism. Correlations with MMPI.

Ina a sample of 48 healthy adult male twin pairs (24 MZ, 24 DZ) the activities of DBH (serum), COMT (red blood cells), and MAO (platelets) were determined. The twins had undergone a detailed psychodiagnostic test procedure before. Interindividual variability of enzyme activities is almost exclusively genetically determined. No correlation between enzyme activities within one subject is found. Correlations between enzyme activities and MMPI test scores were calculated. As in a comparable investigation by Murphy et al. (1977), negative correlations between MAO activity and MMPI scores prevailed.

Adult

Environmentally relevant concentrations of DCOIT impaired lifespan and healthspan in Caenorhabditis elegans.

DCOIT (4,5-dichloro-2-n-octyl-4-isothiazolin-3-one) is an antifouling biocide widely used as an alternative to organotin compounds. While previous studies had focused on its effects on energy production, endocrine disruption, and lipid metabolism, its impact on aging and underlying mechanisms remained unclear. Here, we demonstrated that environmentally relevant concentrations of DCOIT (37, 370 and 3700 ng/L) significantly impaired both lifespan and healthspan in Caenorhabditis elegans. RNA-seq and validation assays revealed that DCOIT upregulated comt-4, a key gene in dopamine metabolism, leading to dopamine depletion and subsequent induction of oxidative stress. This redox imbalance critically contributed to accelerated aging phenotypes. Importantly, both genetic (comt-4 RNAi) and pharmacological (opicapone) interventions restored dopamine levels, alleviated oxidative stress, and reversed DCOIT-induced aging deficits. Our study established the comt-4/dopamine/oxidative stress axis as a central mechanism in DCOIT toxicity, suggesting dopamine modulation as a potential countermeasure against environmental toxicant-induced aging.

Animals

Monoamine oxidase and catechol-O-methyl transferase activity in Tetrahymena.

Tetrahymena pyriformis strain HSM was found to have monomine oxidase (MAO) and a catechol-3-methyl transferase-like (COMT) activity. As in mammalian tissues, the MAO activity is predominantly localized in the mitochondrial pellet and COMT in the cytosol. The COMT-like activity was present in amounts comparable to several mouse tissues and was inhibited by tropolone. MAO activity was much lower than in any of the mouse tissues tested, and its activity varied greatly from preparation to preparation. The substrate preference of Tetrahymena MAO was tryptamine greater than serotonin greater than dopamine, and activity increased with increasing pH from pH 6.5 to pH 7.8, as does that of mouse liver MAO. Teh Km of Tetrahymena MAO for tryptamine was approximately 4 micrometer, an order of magnitude lower than that of mouse liver MAO. Sensitivity of inhibition by MAO inhibitors was variable. In some preparations, no inhibition was observed. In others clear inhibition was obtained, harmine and clorgyline being among the most potent inhibitors.

Animals

Associations between (pharmaco-)genetic markers and postoperative pain after inguinal hernia repair - a prospective study protocol.

BACKGROUND: Postoperative pain is a common complication following surgery, with severity and duration varying between patients. Chronic postoperative pain after inguinal hernia surgery has an incidence rate of approximately 10%. Risk factors for acute and chronic pain following hernia surgery include age, sex, psychosocial factors, and demographic background. Additionally, genetic polymorphisms in enzymes involved in pain mechanisms, as well as the metabolism of analgesics might influence pain perception, pain development, and response to pain medications. Key enzymes include the catechol-o-methyltransferase (COMT), the µ-opioid receptor 1 (OPRM1), and the cytochrome P450 2D6 (CYP2D6). CYP2D6 plays a crucial role in metabolizing analgesics such as tramadol, codeine, and oxycodone. It is also suspected to be involved in the synthesis of catecholamines and endogenous morphines suggesting a potential role in pathophysiology of pain. We hypothesize that the CYP2D6 activity influences the development of postoperative pain after hernia surgery. METHODS: This study is a prospective, observational, multicenter association study investigating adult patients scheduled for inguinal hernia surgery using a robotic-assisted (rTAPP) approach. Patients are enrolled during the preoperative surgical consultation. A buccal swab is collected for genetic testing at this time. Pain at the site of the hernia is assessed using the validated EuraHSQoL score preoperatively and at 2, 4, and 6 weeks postoperatively. Additionally, information on co-medication and details of the surgery will be collected. The planned number of participants is 350 patients. The primary objective is to analyze the association between different genotype-predicted CYP2D6 phenotypes and patient-reported pain intensity 6 weeks after surgery. Secondary objectives include the association between further genetic variants, such as the COMT rs4680 and OPRM1 rs1799971 genotype, and pain severity. Additionally, the potential of pharmacogenetic panel testing to optimize analgesic therapy in hernia surgery patients will be explored. DISCUSSION: The findings of this study are expected to provide valuable insights into identifying patients at higher risk for postoperative pain before surgery. This knowledge could pave the way for tailored interventions during and after surgery for these specific patients. TRIAL REGISTRATION: Deutsches Register Klinischer Studien https://www.drks.de/DRKS00034796 Registered on August 07, 2024.

Genetic Association Studies

Monoamine metabolism in human brain.

Norepinephrine (NE), dopamine (DA), tyrosine hydroxylase (TH), catechol-O-methyltransferase (COMT) and monoamine oxidase (MAO) levels were measured in human brain tissue obtained at autopsy from a series of 39 patients dying of various medical and accidental causes. The nine following brain areas were studied: globus pallidus, thalamus, hypothalamus, hippocampus, substantia nigra, floor of the fourth ventricle, orbital cortex, caudate nucleus, and mammillary bodies. Enzyme activity correlated positively with age in all brain areas for MAO (with both benzylamine and tryptamine substrates) but no consistent pattern of correlation was found for COMT and TH. Mean MAO activity was significantly higher in women than men. There is increased brain MAO activity during late childhood and adolescence. These data are consistent with previous evidence suggesting that age and sex are important determinants of amine metabolism in the human central nervous system.

Adolescent

Further study of the adrenoceptors of the saphenous vein of the dog: influence of factors which interfere with the concentrations of agonists at the receptor level.

In the present study the affinities of some sympathomimetic amines for alpha- and beta-adrenoceptors of the dog saphenous vein tissue were determined after all known factors interfering with the concentration of these agonists at the receptor level had been assessed and excluded. It was observed that in control experiments the relative potencies of sympathomimetic agonists for inducing contractions were: adrenaline (1.6) greater than noradrenaline (1.0) greater than phenylephrine (0.38) greater than isoprenaline (0.009). The elimination of neuronal uptake by cocaine, 4 X 10(-6) M, enhanced predominantly the effects of noradrenaline (by a factor of 7.5), whereas block of catechol-O-methyl transferase (COMT) by U-0521, 10(-4) M, only enhanced those of adrenaline (by a factor of 2.6) and block of beta-adrenoceptors by propranolol, 5 X 10(-7) M, enhanced those of isoprenaline (by a factor of 3) and adrenaline (by a factor of 1.8). Block of COMT enhanced the effects of adrenaline approximately as much as did the blockade of neuronal uptake; this seems to indicate that the affinity of adrenaline for extraneuronal and neuronal uptake processes is approximately the same. Regarding the relaxation-inducing capacity of sympathomimetic agents it was observed that isoprenaline, adrenaline and noradrenaline are full agonists, whereas phenylephrine was not able to produce relaxation amounting to more than 5% of the maximum. Denervation did not modify the relaxant effects of isoprenaline. After elimination of all known factors interfering with the concentration of the sympathomimetic agonists in the biophase, the ratios between the ED50's of each amine for alpha- and beta-adrenoceptors were: adrenaline = 34, noradrenaline = 109 and isoprenaline = 0.0041.

Animals

Effects of pharmacologic alterations of adrenergic mechanisms by cocaine, tropolone, aminophylline, and ketamine on epinephrine-induced arrhythmias during halothane-nitrous oxide anesthesia.

The purpose of this study was to examine the effects of pharmacologic alterations of adrenergic terminating mechanisms by cocaine, tropolone, aminophylline, and ketamine on the ability of epinephrine to induce arrhythmias during halothane-nitrous oxide anesthesia in dogs. Because the first three drugs inhibit intraneuronal uptake of catecholamines, extraneuronal catechol-O-methyl transferase (COMT), and phosphodiesterase, respectively, they might be expected to potentiate epinephrine-induced arrhythmias. To evaluate this possibility, the authors devised a technique for determining the minimal arrhythmic dosage of epinephrine that permitted graded assessment of changes in the sensitivity of the heart to epinephrine-induced arrhythmias. When the first three drugs were administered to the same dog in the order listed at intervals of 60 minutes, they sequentially increased the ability of epinephrine to induce arrhythmias. Ketamine, according to several investigators, also appears to block reuptake of catecholamines, and when studied was also found to enhance the arrhythmogenicity of epinephrine. The extent of enhancement was comparable to that seen with cocaine. These results indicate that drugs like cocaine and ketamine that interfere with intraneuronal uptake can facilitate the development of epinephrine-induced arrhythmias and that the successive pharmacologic interference of intraneuron uptake, COMT, and phosphodiesterase leads to a stepwise increase in the arrhythmogenicity of epinephrine.

Aminophylline

Role of catecholamine degradative enzymes and the adrenergic innervation in determining the cerebrovascular response to infused norepinephrine.

Cerebral blood flow responses to intra-arterial infusion of norepinephrine (NE) at 0.55 microgram/kg/min and 1.1 microgram/kg/min were studied in 3 groups of baboons. The flow was measured by the intracarotid 133xenon clearance technique using a computer program to calculate flow (height over area--H/A) flow (initial slope--is) and cerebral metabolic utilization of oxygen (CMRO2). The normal response to NE was to increase flow without significant changes in CMRO2. Blockade of catechol-o-methyl transferase (COMT) produced vasoconstrictor responses to these same NE doses. Monoamine oxidase blockade abolished the normal vasodilation. Denervation of the cerebral circulation with intracisternal 6-hydroxydopamine produced vasoconstrictor responses with flow (H/A) but not with flow (is). It is concluded that the extra-neuronal COMT enzyme is important in limiting the access of blood-borne NE to cerebrovascular constrictor receptors.

Adrenergic Fibers

Investigating the mechanisms of PhIP-induced colorectal cancer through network toxicology, machine learning, and molecular dynamics simulation.

BACKGROUND: Over the past few years, 2-amino-1-methyl-6-phenylimidazo[4,5-b]pyridine (PhIP)- a compound from grilled or processed meats-has emerged as a major player in cancer development, especially colorectal cancer (CRC). This work dives into its potential links to CRC and uncovers the key genes that bridge this connection. METHODS: We tapped into various databases to pinpoint target genes tied to PhIP and CRC, then ran protein-protein interaction (PPI) analyses for visualization. Next, we explored underlying mechanisms through Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) enrichment. To nail down predictions, we tested 107 machine learning pipelines and picked the best one, validating its accuracy and the core genes' prognostic value across datasets. Next, molecular docking and dynamics simulations probed the interactions between these genes and PhIP. Finally, cell proliferation was assessed using Cell Counting Kit-8 (CCK-8) and 5-ethynyl-2'-deoxyuridine (EdU) assays, and polymerase chain reaction (PCR) was performed to validate the expression levels of the hub genes. RESULTS: Our analysis identified 39 overlapping genes, from which a machine learning model (glmBoost + Enet) identified six candidate targets: CDK4, CEBPB, COMT, SOX9, TIMP1, and TOP2A. To prioritize these, a hierarchical screening framework was applied. Molecular docking and dynamics simulations identified CDK4, COMT, and TIMP1 as the most stable interactors with PhIP. Functional assays confirmed that PhIP treatment significantly enhanced the proliferation of CRC cells. Crucially, quantitative PCR (qPCR) validation in multiple CRC cell lines identified TIMP1 as the primary target, showing the most consistent and significant upregulation upon PhIP exposure. CONCLUSIONS: In essence, these genes drive PhIP is role in CRC, offering novel insights into its molecular pathways. This could reshape how we tackle food-related pollutants, paving the way for better prevention and targeted therapies.

Colorectal cancer (CRC)

[6.7-Dihydroxycoumarin (Aesculetin) as a substrate for catechol-o-methyltransferase (author's transl)].

6,7-Dihydroxycoumarin (Aesculetin) was found to be a substrate of rat liver Catechol-O-methylfransferase (COMT) (EC 2.1.1.6). Incubation of this substrate with S-Adenosyl-L-[methyl-14C]methionine and/or S-Adenosylmethionin-hydrogensulfate in the presence of COMT yields the highly fluorescent compounds 7-hydroxy-6-methoxycoumarin (Scopoletin) and 6-hydroxy-7-methoxycoumarin (Isoscopoletin) in the ration of about 2:1. The O-methylated products obtained from Aesculetin were identified after separation by thin layer chromatography mainly by the reversed isotope dilution technique. The fluorescence of the isolated methylethers was proportional to concentration within the range from 10(-5)-10(-7) M. A reciprocal plot of activity versus substrate concentration gives a Km of 1 X 10(-6) M.

Animals

Supersensitivity to catecholamines after impairment of extraneuronal uptake or catechol-O-methyl transferase.

In cat papillary muscle and nictitating membrane block of extraneuronal catechol-O-methyl transferase (COMT) by 3',4'-dihydroxy-alpha-methyl propiophenone (U-0521) or of extraneuronal uptake by hydrocortisone causes supersensitivity to catecholamines whenever the experimental conditions result in a high sensitivity of the organ to catecholamines. After block of monoamine oxidase the extraneuronal O-methylation of (-)-[3H]norepinephrine by the isolated nictiating membrane is due to two O-methylating systems (Km and Vmax: 7.5 muM and 0.73 nmoles - g-1 - min-1, and 131 muM and 8.5 nmoles - g-1 - min-1, respectively). Hydrocortisone (28 muM) blocked the activity of the high affinity system without affecting the low affinity system. Apparently, there exists an extraneuronal compartment of high affinity that has a hydrocortisone-sensitive uptake mechnism; this compartment influences the concentration of catecholamines below the Km of this compartment. Supersensitivity ensues when either uptake or enzyme is blocked. Since the sensitivity effects of U-0521 and hydrocortisone are not additive, the high affinity compartment must a) metabolize most of the catecholamine transported into the compartment, and b) have a limited storage capacity for catecholamines after block of COMT.

Animals

Hormone receptor mobility and catecholamine binding in membranes. A theoretical model.

[3H]-Catecholamine binding to intact cells, isolated cell membranes, and to several isolated macromolecules has been shown by several laboratories to be neither stereospecific nor inhibited by known beta-antagonists. Since additional evidence indicates that this binding is not an artifact (i.e. due neither to the binding of a catecholamine oxidation product nor hormone binding to a catabolic enzyme such as COMT), the question remains as to whether this represents binding to a bona fide membrane receptor. Because all ligands which bind strongly or compete for this binding possess a catechol group, one possible explanation is that the binding affinity is primarily determined by the catechol moiety, whereas the correct stereoisomer of the side chain is necessary to activate the receptor. Thus, although binding is a necessary condition for hormone action, the necessary and sufficient condition for activation of adenyl cyclase is both the catechol group and the correct stereoisomer of the side chain. A theoretical model is developed here to provide a quantitative basis for this hypothesis. This model extends the current concept of distinct subunits in the adenyl cyclase system by separating the receptors from the catalytic sites and placing them at separate locations within the membrane. Utilizing the spare receptor model of Furchgott, and the mobility of macromolecules within a "lipid sea," the appropriate equations to predict both hormone binding and enzyme activation are derived. Using the observed affinity constants from catecholamine binding studies, it is then shown that this model can predict the experimental observation and hence explain the apparent dichotomy arising from binding enzyme activation studies.

Animals

Histofluorescence study on monoamine entry into the brain before and after opening of the blood-brain barrier by various mechanisms.

The relationship between exogenous, circulating monoamines to the wall of cerebral microvessels, and the entrance of these amines into the cerebral parenchyma was studied by the formaldehyde histofluorescence technique in rats. No monoamine fluorescence could be detected in the wall tissue of the microvessels (pericytes and andothelial cells) unless either MAO or COMT were inhibited; these are integral to the blood-brain barrier mechanisms to monoamines. After transient opening of the morphologic blood-brain barrier by either a hypertonic of hypertensive insult, the amine fluorescence in the walls of the microvessels was intensified compared to that which was noted after monoamine oxidase inhibition by itself. Following opening of the structural blood-brain barrier, the circulating amines also passed through into the neuropil where they were concentrated within neurons, as demonstrated by prior depletion of endogenous monoamine transmitters by reserpine. Thus, both enzymatic and morphologic mechanisms in the blood-brain barrier ar involved in impeding the passage of monoamines into the cerebral parenchyma.

Animals

Toxic interaction between narcotic analgesics and inhibitors of catechol-O-methyltransferase.

A lethal synergism between morphine and tropolone, an inhibitor of catechol-O-methyltransferase, was previously noted in adult male Holtzman rats. The present research demonstrates that this phenomenon generalizes across factors of sex, age, strain (Sprague--Dawley, Wistar) and species (Swiss albino mice). Acute toxicity was also significantly increased (1.5--1.9 times) in the case of codeine, methadone, meperidine and levorphanol, but to a lesser extent than for morphine (4.0 times) in the S-D strain. Another COMT inhibitor, 3,5-dihydroxy-4-methoxybenzoic acid, interacted with morphine in S-D rats to an equal degree as did tropolone. Post-treatment with 1 mg/kg of naloxone in rats or naltrexone in mice reduced the high lethality associated with morphine plus tropolone. There was a pronounced lowering of whole brain norepinephrine (NE) level after morphine plus tropolone in Wistar rats with doses of each component that alone caused no change in NE. Brain dopamine (DA) was elevated by tropolone and by its combination with morphine. Each drug alone caused slight lowering of brain serotonin. Enhancement by tropolone of the toxicity of (+)-amphetamine in mice and rats was of similar magnitude as for morphine. The possible role of brain NE and/or DA in the sensitivity to acute toxic effects of opioids in rodents is suggested by these data, as well as a parallel in this regard with amphetamine-type stimulants.

Aging

Neuropsychiatric disease mechanisms and interventions from 22q11.2 deletion syndrome experimental studies.

A high genetic predisposition for neuropsychiatric disorders, such as schizophrenia and autism spectrum disorders (ASDs), is 22q11.2 deletion syndrome (22q11DS), caused by a hemizygous microdeletion in the q-arm of human chromosome 22. The deletion most often spans a 3 Mb region, with variable breakpoints ranging from 1.5 to 3 Mb. Experimental studies on 22q11DS have revealed several aspects of the pathophysiology of neuropsychiatric disorders and also identified various interventional and rescue strategies. Herein, we review these strategies by grouping the studies into three main mechanistic categories: (i) microRNA (miR)-mediated, (ii) mitochondrial, and (iii) neural circuit deficits in polygenic deletion, and also briefly describe a few other monogenic mechanisms implicated. Haploinsufficiency of Dgcr8, a 22q11DS gene involved in miR processing, forms the center of miR-mediated mechanisms and rescuing consequent pathophysiology rely on age-dependent, brain region-specific or global replenishment of miRs or their targets. Seven genes in the 22q11.2 genomic region encode mitochondrial proteins and approaches to mitigate these gene deficiencies concentrate on the respective mitochondrial functions affected. We briefly describe other potential monogenic mechanisms for intervention including transcriptional regulation, synaptic release, catecholamine metabolism, and cell-cell adhesion, represented by Tbx1, Sept5, Comt, Arvcf, and Cldn5. We also give examples of how the multifaceted pathophysiological mechanisms and rescue strategies can have convergent effects at the molecular, synaptic, cellular and circuit levels. Based on the experimental interventions identified in the 22q11DS studies, we inform on the supportive therapies possible now and the future potential of curative interventions.

Humans

[Purification and properties of rat kidney catechol-O-methyltransferase].

The S-adenosyl-methionine: catechol-O-methyltransferase (EC 2.1.1.6) from rat kidney was purified about 650 fold as compared with the homogenate and the result of disc electrophoresis presented. The purification involved extraction, precipitation at pH 5, ammonium sulfate fractionation, Chromatographies on Biogel 0.5 m, Ultrogel AcA 44 and DE Sephadex A 50. Affinity chromatography was tried but unsuccessful. The enzyme exhibited two pH optima at 7.9 and 9.6 with a minimum at about 8.9. The COMT had a temperature optimum of 50 degrees C, with activation energy of 23.1 Kcal/Mole between 25-35 degrees C, 18.9 Kcal/mole between 35-45 degrees C and the Q10 within the range of 25-35 degrees amounted to 3.5. The molecular weight was estimated to be 21500+/-1000 daltons from its behavior on Ultrogel AcA 44 and the pH1 determined by electrofocalisation was near 5.50. The time of half life of the best purified enzymatic extract was found to be 2 h 10 min. at -20 degrees C. At basic pH the instability of the enzyme was increased. Since O-methylation required the presence of divalent cations, our results show that apparent Michaelis constants for Mg++ and Mn++ were respectively 0.50 X 10(-3) M and 0.33 X 10(-5) M. The study of their Hill's number indicated that there was only one point of fixation on the enzyme. The Km value determined by Florini and Vestling's method were 2.5 X 10(-4) M and 11.9 X 10(-5) M for epinephrine and S-adenosyl-methionine respectively. All results were discussed with respect to other investigations.

Animals