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Anatoly E Martynyuk

Publications and source records attributed to Anatoly E Martynyuk.

6 recordsLinked to original sources

Contribution of the Brain-Gut-Microbiome Axis to Intergenerational Abnormalities in a Rat Model of Perioperative Neurocognitive Disorder.

BACKGROUND: The brain-gut-microbiome (BGM) axis is a communication network through which the brain and gastrointestinal microbiota interact via neural, hormonal, immune, and gene expression mechanisms. Gut microbiota dysbiosis is thought to contribute to neurocognitive disorders, including perioperative neurocognitive disorder, and to various metabolic abnormalities. Recently, the authors reported that sevoflurane induces neurocognitive deficits in exposed rats as well as their future offspring, with male offspring being particularly affected (intergenerational perioperative neurocognitive disorder). In this study, the authors examined in the same animals whether the intergenerational effects of sevoflurane involve abnormalities in the BGM axis, and whether they are mitigated by paternal pretreatment with either the Na + -K + -Cl - (NKCC1) Cl - transporter inhibitor bumetanide or the glucocorticoid receptor inhibitor RU486, as previously demonstrated for neurocognitive deficits. METHODS: Male Sprague-Dawley rats (F0 generation) were exposed to 2.1% sevoflurane for 3 h on postnatal days 56, 58, and 60 (F0M_S group). Before each sevoflurane exposure, distinct experimental groups of F0 males received bumetanide (F0M_BS group) or RU486 (F0M_RS group). These males were mated on postnatal day 90 to produce offspring (F1 generation). Gut microbiota were profiled using 16S rRNA gene sequencing, and brain changes analyzed via RNA sequencing of hippocampal samples. RESULTS: F1 male offspring of F0M_S sires exhibited heightened corticosterone responses to stress, increased inflammatory markers, altered hippocampal transcriptomes, gut microbiota dysbiosis, elevated serum low-density lipoprotein cholesterol levels, and increased body weight. The only abnormality observed in F1 females was a shift in microbial diversity. F0M_S displayed profound alterations in hippocampal transcriptome, while microbial diversity was the only parameter affected in their gut microbiota. Bumetanide or RU486 mitigated most abnormalities, except increased body weight in F1 males. CONCLUSIONS: Paternal sevoflurane exposure in rats induces BGM axis abnormalities, particularly in male offspring, despite the absence of direct anesthetic exposure. Pretreatment with bumetanide or RU486 showed therapeutic efficacy.

Animals↗

Macrophage migration inhibitory factor increases neuronal delayed rectifier K+ current.

Macrophage migration inhibitory factor (MIF) has widespread actions in the immune, endocrine, and nervous systems. Previously, we reported that increases in the intracellular levels of MIF depress the firing of hypothalamus/brain stem neurons in culture, including the chronotropic actions of angiotensin II. The objective of this study was to investigate the effects of MIF on delayed rectifier K+ current (I(Kv)), one of the component currents whose activity contributes to neuronal firing. Intracellular perfusion of MIF (80 nM) into Sprague-Dawley rat neuronal cultures caused a significant increase in I(Kv), as measured by patch-clamp recordings. This effect was apparent by 3 min, and was maximal after 20-30 min. I(Kv) current density (pA/pF) increased from 31.58 +/- 2.36 in controls to 41.88 +/- 3.76 in MIF-treated neurons (mean +/- SE; n = 9; P < 0.01). MIF that had been inactivated by boiling did not alter I(Kv), and MIF-neutralizing antibodies abolished the action of recombinant MIF (rMIF). The stimulatory effect of MIF on I(Kv) current density was mimicked by intracellular application of either P1S-MIF (80 nM) or the peptide MIF-(50-65) (0.8-8 microM), both of which harbor the thiol-protein oxidoreductase (TPOR) activity of the MIF molecule. Conversely, neither C60S-MIF (80 nM) nor the MIF homologue D-dopachrome tautomerase (80 nM), both of which lack TPOR activity, altered I(Kv). Finally, the increase in I(Kv) produced by rMIF was abolished by the superoxide scavenger Tiron (1 mM). These studies indicate that the neuronal action of MIF includes a stimulatory action on I(Kv) that may be mediated by a TPOR/superoxide-scavenging mechanism.

Action Potentials↗

Neuroprotective action of halogenated derivatives of L-phenylalanine.

BACKGROUND AND PURPOSE: The aromatic amino acid L-Phenylalanine (L-Phe) significantly and reversibly depresses excitatory glutamatergic synaptic transmission (GST) via a unique set of presynaptic and postsynaptic mechanisms. Therefore, we hypothesized that endogenous derivatives of L-Phe, which display potent antiglutamatergic activity, may safely and efficaciously protect the brain during conditions characterized by overactivation of glutamate receptors. METHODS: We tested this hypothesis in vitro with a combination of patch-clamp and lactate dehydrogenase (LDH) analyses in rat cultured neurons exposed to simulated ischemia, and in vivo using a rat model of experimental stroke caused by transient middle cerebral artery occlusion (MCAO). RESULTS: 3,5-diiodo-L-tyrosine (DIT) and 3,5-dibromo-L-tyrosine (DBrT), endogenous halogenated derivatives of L-Phe, attenuated GST by similar mechanisms as L-Phe, but with greater potency. For example, the IC50s for DIT and DBrT to depress the frequency of alpha-amino-3-hydroxy-5-methylisoxazole-4-propionic acid (AMPA)/kainate receptor-mediated mEPSCs were 104.6+/-14.1 micromol/L and 127.5+/-13.3 micromol/L, respectively. Depression of GST by DIT and DBrT persisted during energy deprivation. Furthermore, DBrT significantly reduced LDH release in neuronal cultures exposed to oxygen glucose deprivation. In rats subjected to transient MCAO, DBrT decreased the brain infarct volume and neurological deficit score to 52.7+/-14.1% and 57.1+/-12.0% of control values, respectively. DBrT neither altered atrioventricular nodal and intraventricular conduction in isolated heart, nor heart rate and blood pressure in vivo. CONCLUSIONS: DBrT, an endogenous halogenated derivative of L-Phe, shows promise as a representative of a novel class of neuroprotective agents by exerting significant neuroprotection in both in vitro and in vivo models of brain ischemia.

Animals↗

Free radicals potentiate the negative dromotropic effect of adenosine in guinea pig isolated heart.

OBJECTIVE: Adenosine is released during myocardial ischaemia and delays atrioventricular nodal (AV) conduction. We hypothesized that free radicals present during reperfusion potentiate the negative dromotropic effect of adenosine on the AV node. METHODS AND RESULTS: Guinea pig hearts were prepared using the Langendorff technique, paced (200 beats/min), and instrumented to measure the atrium-to-His bundle (A-H) interval, an index of AV nodal conduction time. Adenosine (2 microM) prolonged the A-H interval by 5.7 +/- 0.5 ms from a control value of 35.7 +/- 1.3 ms. (n = 10, P < 0.05). In the absence of adenosine, the superoxide (O2-) generator pyrogallol (20 microM) did not affect the A-H interval (0.7 +/- 0.2 ms prolongation, n = 10). However, concurrent infusion of adenosine (2 microM) and pyrogallol (20 microM) lengthened the A-H interval by 11.0 +/- 0.8 ms from control (n = 10, P < 0.001). This A-H interval prolongation was reversed by cyclopentyl-1,3-dipropylxanthine (100 nM), a selective A1-adenosine receptor antagonist (P<0.001, n = 5). Similarly, A-H interval prolongation was decreased to 4.3 +/- 0.4 ms when NG-methyl-L-arginine (100 microM), a nitric oxide (NO) synthase inhibitor, was infused (n = 4). The superoxide scavenger superoxide dismutase (200 U/ml) also diminished the A-H interval prolongation to 7.1 +/- 0.6 ms (n = 4, P < 0.001). Ba2+ ( 100 microM), a blocker of the adenosine-induced inward potassium current (I(K,ADO)), did not significantly affect this potentiation (13.0 +/- 0.8 and 10.8 +/- 0.7 ms greater than control A-H interval in the absence and presence of Ba2+, respectively, n = 4). CONCLUSIONS: Superoxides and adenosine delay AV nodal conduction in a synergistic manner via a NO-dependent mechanism involving an I(K,ADO)-independent component. This phenomenon may contribute to the genesis of reperfusion arrhythmias.

Adenosine↗

Contribution of I(K,ADO) to the negative dromotropic effect of adenosine.

OBJECTIVE: Despite the pathophysiological and therapeutic significance of the negative dromotropic effect of adenosine, its underlying ionic mechanism, and specifically the role of the adenosine-activated K(+) current (I(K,ADO)) is not experimentally defined. Therefore, we studied the contribution of I(K,ADO) to the negative dromotropic effect of adenosine. METHODS: Effects of adenosine on single atrioventricular nodal and left atrial myocytes from rabbits were studied using the whole cell configuration of the patch clamp technique. Complementary experiments were done in rabbit and guinea pig isolated hearts instrumented to measure the atrium-to-His bundle interval. RESULTS: In contrast to its effect in atrial myocytes, Ba(2+) selectively and completely blocked I(K,ADO) at membrane potentials from -70 to 0 mV in atrioventricular nodal myocytes and abolished the adenosine-induced leftward shift of the reversal membrane potential. Ba(2+) alone did not significantly prolong the A-H interval, but markedly attenuated the A-H interval prolongation caused by adenosine. In guinea pig heart, EC(50) values ( pD(2) +/- SEM) for adenosine-induced atrium-to-His bundle interval prolongation were 3.3 micromol/L (5.48 +/- 0.04) and 13.2 micromol/L (4.88 +/- 0.05, P < 0.001) in the absence and presence of Ba(2+), respectively. Despite species-dependent differences in sensitivities to adenosine (guinea pig > rabbit), the relative contribution of adenosine-activated K(+) current to the atrium-to-His bundle interval prolongation was nearly identical. In guinea pig hearts it ranged from 37.8 % (P = 0.013) to 72.5 % (P < 0.001) at 2 to 6 micromol/L adenosine, respectively. CONCLUSION: I(K,ADO) contributes significantly to the negative dromotropic effect of adenosine, but predominantly at relatively high concentrations of the nucleoside.

Adenosine↗

Potentiation of the negative dromotropic effect of adenosine by rapid heart rates: possible ionic mechanism.

Adenosine-induced slowing of atrioventricular nodal conduction is a rate-dependent process that is potentiated by the A(1)-adenosine receptor allosteric enhancer, PD 81,723. The ionic mechanisms underlying these phenomena were investigated in guinea pig isolated hearts and single atrial myocytes by measuring the atrium-to-His bundle (A-H) interval and using patch-clamp recordings, respectively.A decrease in atrial cycle length from 300 to 190 ms decreased the concentration of adenosine needed to cause atrioventricular nodal block from 7.8 +/- 1.0 to 2.6 +/- 0.7 micromol/L (P < 0.001). Ba(2+) (100 micromol/L), a selective blocker of the adenosine-activated inward rectifier K(+) current I(K,ADO) in the atrioventricular node, failed to abolish this rate-dependent effect of adenosine. PD 81,723 (5 micromol/L) potentiated the negative dromotropic effect of adenosine even after I(K,ADO) was blocked by Ba(2+) and after attenuation of I(Ca,L) by adenosine was prevented by 8-Br-cAMP (1.5 mmol/L). In atrial myocytes, adenosine augmented a time- and voltage-dependent K(+) current (Ado-I(K)). Ado-I(K) was more sensitive to adenosine than I(K,ADO) (EC(50) values, 0.8 versus 1.4 micromol/L, P < 0.01). PD 81,723 blocked I(K,ADO), but potentiated Ado-I(K). Ado-I(K) was insensitive to Ba(2+) (P = 0.98), whereas it was blocked by chromanol 293B (5 micromol/L, P < 0.001). Unlike I(K,ADO), Ado-I(K) increased during rapid stimulation of myocytes (P < 0.001). Adenosine augments a time- and voltage-dependent K(+) current, Ado-I(K). The pharmacological and kinetic properties of Ado-I(K) are consistent with it playing an important role in the negative dromotropic effect of adenosine at lower concentrations of the nucleoside, at fast heart rates and in the presence of PD 81,723.

8-Bromo Cyclic Adenosine Monophosphate↗