916 resultados para NITRIC OXIDE SYNTHESIS
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Circulating neutrophils promptly react to different substances in the blood and orchestrate the beginning of the innate inflammatory response. We have shown that in vivo exposure to hydroquinone (HQ), the most oxidative compound of cigarette smoke and a toxic benzene metabolite, affects circulating neutrophils, making them unresponsive to a subsequent bacterial infection. In order to understand the action of toxic molecular mechanisms on neutrophil functions, in vitro HQ actions on pro-inflammatory mediator secretions evoked by Escherichia coli lipopolysaccharide (LPS) were investigated. Neutrophils from male Wistar rats were cultured with vehicle or HQ (5 or 10 mu M; 2 h) and subsequently incubated with LPS (5 mu g/ml; 18 h). Hydroquinone treatment impaired LPS-induced nitric oxide (NO), tumour necrosis factor alpha (TNF-alpha), interleukin (IL)-1 beta and IL-6 secretions by neutrophils. The toxic effect was not dependent on cell death, reduced expression of the LPS receptor or toll-like receptor-4 (TLR-4) or cell priming, as HQ did not induce reactive oxygen species generation or beta(2)integrin membrane expression. The action of toxic mechanisms on cytokine secretion was dependent on reduced gene synthesis, which may be due to decreased nuclear factor kappa B (NF-kappa B) nuclear translocation. Conversely, this intracellular pathway was not involved in impaired NO production because HQ treatments only affected inducible nitric oxide synthase protein expression and activity, suggesting posttranscriptional and/or posttranslational mechanisms of action. Altogether, our data show that HQ alters the action of different LPS-activated pathways on neutrophils, which may contribute to the impaired triggering of the host innate immune reaction detected during in vivo HQ exposure.
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[EN] Red algae have been reported to be an important source of polysaccharides with potential immunomodulatory properties. The objective of this study was to characterize the polysaccharides from Halopithys incurva and Hypnea spinella and to evaluate their effect on the synthesis of cytokines by murine cell line RAW 264.7 macrophages. Polysaccharides were obtained by N-cetylpyridiniumbromide precipitation and characterized by Fourier transform-infrared spectroscopy. Their effect on the activity of RAW 264.7 macrophages was examined by quantification of tumor necrosis factor (TNF)-α, interleukin (IL)-6, and nitric oxide (NO) production using enzyme-linked immunosorbent assays. The activation of the cytokine IL-6 and NO increased linearly as the concentration of polysaccharides from H. incurva and Hy. spinella increased. In general, the activation of IL-6 and NO was tenfold greater when macrophages were exposed to polysaccharides from H. incurva than when exposed to polysaccharides from Hy. spinella. In contrast, TNF-α concentration did not increase when macrophages were exposed to increasing polysaccharide levels. These results indicate that polysaccharides are strong cytokine IL-6 inducers.
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Die endotheliale NO-Synthase (eNOS) erfüllt – solange sie funktionell ist – vasoprotektive und anti-atherosklerotische Funktionen im kardiovaskulären System. So stellt die eNOS ein therapeutisches Zielmolekül kardiovaskulärer Erkrankungen dar. Unter pathophysiologischen Bedingungen wurden Hinweise auf eine „eNOS-Entkopplung“, d.h. die NOS-katalysierte Produktion von reaktiven Sauerstoff-Spezies, gefunden. Wir haben in den letzten Jahren Substanzen identifiziert, die die eNOS-Expression steigern, aber auch gleichzeitig die eNOS-Entkopplung revertieren können. Midostaurin z.B. korrigierte einerseits die eNOS-Entkopplung durch Unterdrückung der Expression der vaskulären NADPH-Oxidasen und erhöhte andererseits die eNOS-Expression im Gefäß-Endothel. Kombination dieser beiden Wirkungen führte zur Relaxation der Widerstandsgefäße in atherosklerotischen Mäusen und zur Blutdrucksenkung in spontan-hypertensiven Ratten. So scheint es eine praktikable Strategie für kardiovaskuläre Erkrankungen zu sein, die eNOS-Expression zu steigern und gleichzeitig die eNOS-Entkopplung zu verhindern bzw. eine bereits bestehende eNOS-Entkopplung zu revertieren.
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Das Hauptziel dieser Arbeit war die Identifizierung der Regulationsebenen auf denen die TPA-induzierte Matrix-Metalloproteinase-9 (MMP-9) durch das nitrose Gas Stickstoffmonoxid (NO) in MCF-7-Zellen verändert wird. Dabei konnte sowohl mit Hilfe der Zymographie als auch mit einem MMP-9-Aktivitäts-ELISA gezeigt werden, dass die extrazellulären MMP-9-Spiegel durch die Behandlung der Zellen mit NO reduziert werden. Gleichzeitig zeigte sich auch eine durch NO bedingte Abnahme der intrazellulären MMP-9-Spiegel, wie mit Hilfe von Western-Blot-Analyse nachgewiesen werden konnte. Experimente mit dem Proteasominhibitor Lactacystin und dem Proteinsynthesehemmstoff Cycloheximid ließen darüber hinaus eine NO-bedingte Veränderung der MMP-9-Proteinstabilität ausschließen. Im Gegensatz dazu konnte mittels der metabolischen Markierung mit radioaktiv markiertem Methionin und Cystein gezeigt werden, dass die Proteinneusynthese der MMP-9 durch eine Behandlung der Zellen mit NO stark beeinträchtigt wird. In Übereinstimmung mit diesen Daten finden sich reduzierte MMP-9-mRNA-Spiegel auch in der polysomalen Zellfraktion von MCF-7-Zellen. Wie mit Hilfe des Transkriptionshemmstoffes Actinomycin D und durch Reportergenstudien mit hybriden MMP-9-Promotorkonstrukten gezeigt werden konnte, ist die NO-induzierte Reduktion der MMP-9-mRNA-Spiegel nicht auf eine Verringerung der MMP-9-mRNA-Stabilität zurückzuführen. Reportergenstudien mit einem 670bp langen Promotorfragment des 5’flankierenden Bereichs des humanen MMP-9-Gens zeigten jedoch auf, dass der hemmende Effekt des NOs zum Teil auf eine NO-vermittelte Abnahme der TPA-induzierten MMP-9-Promotoraktivität zurückgeführt werden kann. Demzufolge wurde in den nachfolgenden Experimenten nach den für die MMP-9-Expression notwendigen und von NO modulierten Transkriptionsfaktoren in MCF-7-Zellen gesucht. Anhand von Western-Blot-Analysen und Gelshiftanalysen konnte gezeigt werden, dass die Aktivität des Transkriptionsfaktors AP-1 in MCF-7-Zellen durch NO gehemmt wird, während weder die Expressionspiegel noch die Bindungsaffinität der Transkriptionsfaktoren NFκB und Sp1 durch die NO-Behandlung verändert sind. Weiterhin konnte unter Verwendung von pharmakologischen Inhibitoren der MAPK-Signalwege mit Hilfe der Western-Blot-Analyse nachgewiesen werden, dass MAPK-vermittelte Signalwege zwar für die Induktion der MMP-9-Expression essenziell sind, diese jedoch nicht von NO beeinflusst sind. Im Unterschied hierzu konnte mit Hilfe eines PKC-Aktivitätsassays gezeigt werden, dass die Gesamtaktivität von PKCs nach Behandlung von MCF-7-Zellen mit NO signifikant gehemmt ist. Zusammenfassend zeigen diese Untersuchungen, dass die NO-vermittelte Hemmung der TPA-induzierten MMP-9-Expression in MCF-7-Zellen im Wesentlichen auf eine NO-abhängige Reduktion der Protein-Kinase-C-Aktivität und einer daraus resultierenden Aktivitätshemmung des Transkriptionsfaktors AP-1 zurückgeführt werden kann.
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The primary goals of this study were to develop a cell-free in vitro assay for the assessment of nonthermal electromagnetic (EMF) bioeffects and to develop theoretical models in accord with current experimental observations. Based upon the hypothesis that EMF effects operate by modulating Ca2+/CaM binding, an in vitro nitric oxide (NO) synthesis assay was developed to assess the effects of a pulsed radiofrequency (PRF) signal used for treatment of postoperative pain and edema. No effects of PRF on NO synthesis were observed. Effects of PRF on Ca2+/CaM binding were also assessed using a Ca2+-selective electrode, also yielding no EMF Ca2+/CaM binding. However, a PRF effect was observed on the interaction of hemoglobin (Hb) with tetrahydrobiopterin, leading to the development of an in vitro Hb deoxygenation assay, showing a reduction in the rate of Hb deoxygenation for exposures to both PRF and a static magnetic field (SMF). Structural studies using pyranine fluorescence, Gd3+ vibronic sideband luminescence and attenuated total reflectance Fourier transform infrared (ATR-FTIR) spectroscopy were conducted in order to ascertain the mechanism of this EMF effect on Hb. Also, the effect of SMF on Hb oxygen saturation (SO2) was assessed under gas-controlled conditions. These studies showed no definitive changes in protein/solvation structure or SO2 under equilibrium conditions, suggesting the need for real-time instrumentation or other means of observing out-of-equilibrium Hb dynamics. Theoretical models were developed for EMF transduction, effects on ion binding, neuronal spike timing, and dynamics of Hb deoxygenation. The EMF sensitivity and simplicity of the Hb deoxygenation assay suggest a new tool to further establish basic biophysical EMF transduction mechanisms. If an EMF-induced increase in the rate of deoxygenation can be demonstrated in vivo, then enhancement of oxygen delivery may be a new therapeutic method by which clinically relevant EMF-mediated enhancement of growth and repair processes can occur.
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Die vorliegende Dissertation beschäftigt sich mit dem Membrantransporter-vermittelten Export von asymmetrischem Dimethyl-L-Arginin (ADMA) aus der Endothelzelle. Da ADMA-Plasmakonzentrationen mit Erkrankungen wie koronaren Herzkrankheiten, Atherosklerose, Bluthochdruck und Endotheldysfunktion in Verbindung gebracht werden, ist ein effektiver ADMA-Export aus der Zelle heraus unabdingbar. Um den Mechanismus hierfür aufzuklären, wurden die immortalisierte Endothelzelllinie EA.hy926 und weitere primäre Endothelzellen (humane Umbilikalvenenendothelzellen und Endothelzellen der großen und kleinen Herzgefäße) auf die Expression basischer Aminosäuretransporter mittels einer qRT-PCR hin untersucht. Dabei zeigte sich, dass alle getesteten Endothelzellen die Aminosäuretransporter hCAT-1, y+LAT1 und y+LAT2 exprimierten. Basierend auf ADMA-Exportdaten, die mit entsprechenden Transporter-überexprimierenden Xenopus laevis-Oozyten gewonnen wurden, wurde festgestellt, dass alle drei Membrantransporter ADMA exportieren konnten. Der physiologisch wichtige Exportweg für intrazellulär anfallendes ADMA scheint dabei der via y+L zu sein, da es sich hierbei um einen aktiven Exportmechanismus handelt, der im Gegentransport von im humanen Plasma reichlich vorhandenen neutralen Aminosäuren und Natriumionen den nach innen gerichteten Natriumgradienten ausnutzt. Die Wichtigkeit des Membrantransportes für die Kontrolle intrazellulärer ADMA-Konzentrationen wurde in vitro durch Entzug von extrazellulären Austauschsubstraten und einer daraus resultierenden Blockade der Transportfunktion gezeigt. Hierbei wurde innerhalb von zwei Stunden ein 2,5-facher Anstieg der intrazellulären ADMA-Konzentration festgestellt, die bei Präsenz von Austauschsubstrat für die Transporter nicht auftrat. Die Relevanz der y+LATs für den ADMA-Export wurde durch Herunterregulation dieser Proteine mittels siRNA sichtbar: Unter diesen Bedingungen konnte ADMA auch in Anwesenheit von Austauschsubstrat für das System y+L weniger effektiv exportiert werden. Eine wichtige Aufgabe des humanen Endothels ist die Bildung bioaktiven Stickstoffmonoxids, das unter anderem eine Vasodilatation der Gefäße bewirkt. Für diese NO-Synthese wird L-Arginin als Substrat von der endothelialen NO-Synthase benötigt. ADMA stellt einen kompetitiven Inhibitor dar, dessen erhöhtes intrazelluläres Vorkommen möglicherweise hemmend auf die NO-Synthase wirken könnte. Es konnten hier allerdings keine Auswirkungen eines um das 4-fache gestiegenen, intrazellulären ADMA-Spiegels auf die Tätigkeit der endothelialen NO-Synthase festgestellt werden. Möglicherweise bedarf es eines noch weiter zu Gunsten des ADMAs verschobenen, intrazellulären L-Arginin:ADMA-Verhältnisses, um eine Hemmung der NO-Synthase festzustellen. Dies könnte bei einem pathologischen Transporterausfall eintreten, der intrazellulär permanent höhere ADMA-Konzentrationen zur Folge hätte. Des Weiteren hätte ein Anstieg der Arginasetätigkeit und damit einhergehend ein Substratdefizit für die NO-Synthase den gleichen Effekt. Der translationale Ansatz mit humanen peripheren mononukleären Blutzellen von Patienten aus der 2. Medizinischen Klinik zeigte die Tendenz einer Korrelation zwischen dem ADMA-Exportvermögen und der Endothelfunktion und brachte zudem die Erkenntnis eines individuell äußerst variablen ADMA-Exportvermögens zutage.
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The self-regeneration capacity of articular cartilage is limited, due to its avascular and aneural nature. Loaded explants and cell cultures demonstrated that chondrocyte metabolism can be regulated via physiologic loading. However, the explicit ranges of mechanical stimuli that correspond to favourable metabolic response associated with extracellular matrix (ECM) synthesis are elusive. Unsystematic protocols lacking this knowledge produce inconsistent results. This study aims to determine the intrinsic ranges of physical stimuli that increase ECM synthesis and simultaneously inhibit nitric oxide (NO) production in chondrocyte-agarose constructs, by numerically re-evaluating the experiments performed by Tsuang et al. (2008). Twelve loading patterns were simulated with poro-elastic finite element models in ABAQUS. Pressure on solid matrix, von Mises stress, maximum principle stress and pore pressure were selected as intrinsic mechanical stimuli. Their development rates and magnitudes at the steady state of cyclic loading were calculated with MATLAB at the construct level. Concurrent increase in glycosaminoglycan and collagen was observed at 2300 Pa pressure and 40 Pa/s pressure rate. Between 0-1500 Pa and 0-40 Pa/s, NO production was consistently positive with respect to controls, whereas ECM synthesis was negative in the same range. A linear correlation was found between pressure rate and NO production (R = 0.77). Stress states identified in this study are generic and could be used to develop predictive algorithms for matrix production in agarose-chondrocyte constructs of arbitrary shape, size and agarose concentration. They could also be helpful to increase the efficacy of loading protocols for avascular tissue engineering. Copyright (c) 2010 John Wiley \& Sons, Ltd.
Pulmonary hypertension in high-altitude dwellers: novel mechanisms, unsuspected predisposing factors
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Studies of high-altitude populations, and in particular of maladapted subgroups, may provide important insight into underlying mechanisms involved in the pathogenesis of hypoxemia-related disease states in general. Over the past decade, studies involving short-term hypoxic exposure have greatly advanced our knowledge regarding underlying mechanisms and predisposing events of hypoxic pulmonary hypertension. Studies in high altitude pulmonary edema (HAPE)-prone subjects, a condition characterized by exaggerated hypoxic pulmonary hypertension, have provided evidence for the central role of pulmonary vascular endothelial and respiratory epithelial nitric oxide (NO) for pulmonary artery pressure homeostasis. More recently, it has been shown that pathological events during the perinatal period (possibly by impairing pulmonary NO synthesis), predispose to exaggerated hypoxic pulmonary hypertension later in life. In an attempt to translate some of this new knowledge to the understanding of underlying mechanisms and predisposing events of chronic hypoxic pulmonary hypertension, we have recently initiated a series of studies among high-risk subpopulations (experiments of nature) of high-altitude dwellers. These studies have allowed to identify novel risk factors and underlying mechanisms that may predispose to sustained hypoxic pulmonary hypertension. The aim of this article is to briefly review this new data, and demonstrate that insufficient NO synthesis/bioavailability, possibly related in part to augmented oxidative stress, may represent an important underlying mechanism predisposing to pulmonary hypertension in high-altitude dwellers.
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Fructose-1,6-bisphosphate (FBP), an endogenous intermediate of glycolysis, protects the brain against ischemia-reperfusion injury. The mechanisms of FBP protection after cerebral ischemia are not well understood. The current study was undertaken to determine whether FBP protects primary neurons against hypoxia and oxidative stress by preserving reduced glutathione (GSH). Cultures of pure cortical neurons were subjected to oxygen deprivation, a donor of nitric oxide and superoxide radicals (3-morpholinosydnonimine), an inhibitor of glutathione synthesis (L-buthionine-sulfoximine) or glutathione reductase (1,3-bis(2-chloroethyl)-1-nitrosourea) in the presence or absence of FBP (3.5 mM). Neuronal viability was determined using an 3-(4,5-dimethyl-2-thiazolyl)-2,5-diphenyl-2H-tetrazolium bromide assay. FBP protected neurons against hypoxia-reoxygenation and oxidative stress under conditions of compromised GSH metabolism. The efficacy of FBP depended on duration of hypoxia and was associated with higher intracellular GSH concentration, an effect partly mediated via increased glutathione reductase activity.
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Pulmonary vasoconstriction represents a physiological adaptive mechanism to high altitude. If exaggerated, however, it is associated with important morbidity and mortality. Recent mechanistic studies using short-term acute high altitude exposure have provided insight into the importance of defective vascular endothelial and respiratory epithelial nitric oxide (NO) synthesis, increased endothelin-1 bioavailability, and overactivation of the sympathetic nervous system in causing exaggerated hypoxic pulmonary hypertension in humans. Based on these studies, drugs that increase NO bioavailability, attenuate endothelin-1 induced pulmonary vasoconstriction, or prevent exaggerated sympathetic activation have been shown to be useful for the treatment/prevention of exaggerated pulmonary hypertension during acute short-term high altitude exposure. The mechanisms underpinning chronic pulmonary hypertension in high altitude dwellers are less well understood, but recent evidence suggests that they differ in some aspects from those involved in short-term adaptation to high altitude. These differences have consequences for the choice of the treatment for chronic pulmonary hypertension at high altitude. Finally, recent data indicate that fetal programming of pulmonary vascular dysfunction in offspring of preeclampsia and children generated by assisted reproductive technologies represents a novel and frequent cause of pulmonary hypertension at high altitude. In animal models of fetal programming of hypoxic pulmonary hypertension, epigenetic mechanisms play a role, and targeting of these mechanisms with drugs lowers pulmonary artery pressure. If epigenetic mechanisms also are operational in the fetal programming of pulmonary vascular dysfunction in humans, such drugs may become novel tools for the treatment of hypoxic pulmonary hypertension.
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Amino acids are necessary for all living cells and organisms. Specialized transporters mediate the transfer of amino acids across plasma membranes. Malfunction of these proteins can affect whole-body homoeostasis giving raise to diverse human diseases. Here, we review the main features of the SLC3 and SLC7 families of amino acid transporters. The SLC7 family is divided into two subfamilies, the cationic amino acid transporters (CATs), and the L-type amino acid transporters (LATs). The latter are the light or catalytic subunits of the heteromeric amino acid transporters (HATs), which are associated by a disulfide bridge with the heavy subunits 4F2hc or rBAT. These two subunits are glycoproteins and form the SLC3 family. Most CAT subfamily members were functionally characterized and shown to function as facilitated diffusers mediating the entry and efflux of cationic amino acids. In certain cells, CATs play an important role in the delivery of L-arginine for the synthesis of nitric oxide. HATs are mostly exchangers with a broad spectrum of substrates and are crucial in renal and intestinal re-absorption and cell redox balance. Furthermore, the role of the HAT 4F2hc/LAT1 in tumor growth and the application of LAT1 inhibitors and PET tracers for reduction of tumor progression and imaging of tumors are discussed. Finally, we describe the link between specific mutations in HATs and the primary inherited aminoacidurias, cystinuria and lysinuric protein intolerance.
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The thalamus integrates and transmits sensory information to the neocortex. The activity of thalamocortical relay (TC) cells is modulated by specific inhibitory circuits. Although this inhibition plays a crucial role in regulating thalamic activity, little is known about long-term changes in synaptic strength at these inhibitory synapses. Therefore, we studied long-term plasticity of inhibitory inputs to TC cells in the posterior medial nucleus of the thalamus by combining patch-clamp recordings with two-photon fluorescence microscopy in rat brain slices. We found that specific activity patterns in the postsynaptic TC cell induced inhibitory long-term potentiation (iLTP). This iLTP was non-Hebbian because it did not depend on the timing between presynaptic and postsynaptic activity, but it could be induced by postsynaptic burst activity alone. iLTP required postsynaptic dendritic Ca2+ influx evoked by low-threshold Ca2+ spikes. In contrast, tonic postsynaptic spiking from a depolarized membrane potential (−50 mV), which suppressed these low-threshold Ca2+ spikes, induced no plasticity. The postsynaptic dendritic Ca2+ increase triggered the synthesis of nitric oxide that retrogradely activated presynaptic guanylyl cyclase, resulting in the presynaptic expression of iLTP. The dependence of iLTP on the membrane potential and therefore on the postsynaptic discharge mode suggests that this form of iLTP might occur during sleep, when TC cells discharge in bursts. Therefore, iLTP might be involved in sleep state-dependent modulation of thalamic information processing and thalamic oscillations.
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AIMS Children conceived by assisted reproductive technology (ART) display vascular dysfunction. Its underlying mechanism, potential reversibility and long-term consequences for cardiovascular risk are unknown. In mice, ART induces arterial hypertension and shortens the life span. These problems are related to decreased vascular endothelial nitric oxide synthase (eNOS) expression and nitric oxide (NO) synthesis. The aim of this study was to determine whether ART-induced vascular dysfunction in humans is related to a similar mechanism and potentially reversible. To this end we tested whether antioxidants improve endothelial function by scavenging free radicals and increasing NO bioavailability. METHODS AND RESULTS In this prospective double-blind placebo controlled study in 21 ART and 21 control children we assessed the effects of a four-week oral supplementation with antioxidant vitamins C (1 g) and E (400 IU) or placebo (allocation ratio 2:1) on flow-mediated vasodilation (FMD) of the brachial artery and pulmonary artery pressure (echocardiography) during high-altitude exposure (3454 m), a manoeuver known to facilitate the detection of pulmonary vascular dysfunction and to decrease NO bioavailability by stimulating oxidative stress. Antioxidant supplementation significantly increased plasma NO measured by ozone-based chemiluminescence (from 21.7 ± 7.9 to 26.9 ± 7.6 µM, p = 0.04) and FMD (from 7.0 ± 2.1 to 8.7 ± 2.0%, p = 0.004) and attenuated altitude-induced pulmonary hypertension (from 33 ± 8 to 28 ± 6 mm Hg, p = 0.028) in ART children, whereas it had no detectable effect in control children. CONCLUSIONS Antioxidant administration to ART children improved NO bioavailability and vascular responsiveness in the systemic and pulmonary circulation. Collectively, these findings indicate that in young individuals ART-induced vascular dysfunction is subject to redox regulation and reversible.
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Assisted reproductive technologies (ART) induce vascular dysfunction in humans and mice. In mice, ART-induced vascular dysfunction is related to epigenetic alteration of the endothelial nitric oxide synthase (eNOS) gene, resulting in decreased vascular eNOS expression and nitrite/nitrate synthesis. Melatonin is involved in epigenetic regulation, and its administration to sterile women improves the success rate of ART. We hypothesized that addition of melatonin to culture media may prevent ART-induced epigenetic and cardiovascular alterations in mice. We, therefore, assessed mesenteric-artery responses to acetylcholine and arterial blood pressure, together with DNA methylation of the eNOS gene promoter in vascular tissue and nitric oxide plasma concentration in 12-wk-old ART mice generated with and without addition of melatonin to culture media and in control mice. As expected, acetylcholine-induced mesenteric-artery dilation was impaired (P = 0.008 vs. control) and mean arterial blood pressure increased (109.5 ± 3.8 vs. 104.0 ± 4.7 mmHg, P = 0.002, ART vs. control) in ART compared with control mice. These alterations were associated with altered DNA methylation of the eNOS gene promoter (P < 0.001 vs. control) and decreased plasma nitric oxide concentration (10.1 ± 11.1 vs. 29.5 ± 8.0 μM) (P < 0.001 ART vs. control). Addition of melatonin (10(-6) M) to culture media prevented eNOS dysmethylation (P = 0.005, vs. ART + vehicle), normalized nitric oxide plasma concentration (23.1 ± 14.6 μM, P = 0.002 vs. ART + vehicle) and mesentery-artery responsiveness to acetylcholine (P < 0.008 vs. ART + vehicle), and prevented arterial hypertension (104.6 ± 3.4 mmHg, P < 0.003 vs. ART + vehicle). These findings provide proof of principle that modification of culture media prevents ART-induced vascular dysfunction. We speculate that this approach will also allow preventing ART-induced premature atherosclerosis in humans.
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Traumatic brain injury (TBI) often results in disruption of the blood brain barrier (BBB), which is an integral component to maintaining the central nervous system homeostasis. Recently cytosolic calcium levels ([Ca2+]i), observed to elevate following TBI, have been shown to influence endothelial barrier integrity. However, the mechanism by which TBI-induced calcium signaling alters the endothelial barrier remains unknown. In the present study, an in vitro BBB model was utilized to address this issue. Exposure of cells to biaxial mechanical stretch, in the range expected for TBI, resulted in a rapid cytosolic calcium increase. Modulation of intracellular and extracellular Ca2+ reservoirs indicated that Ca2+ influx is the major contributor for the [Ca2+]i elevation. Application of pharmacological inhibitors was used to identify the calcium-permeable channels involved in the stretch-induced Ca2+ influx. Antagonist of transient receptor potential (TRP) channel subfamilies, TRPC and TRPP, demonstrated a reduction of the stretch-induced Ca2+ influx. RNA silencing directed at individual TRP channel subtypes revealed that TRPC1 and TRPP2 largely mediate the stretch-induced Ca2+ response. In addition, we found that nitric oxide (NO) levels increased as a result of mechanical stretch, and that inhibition of TRPC1 and TRPP2 abolished the elevated NO synthesis. Further, as myosin light chain (MLC) phosphorylation and actin cytoskeleton rearrangement are correlated with endothelial barrier disruption, we investigated the effect mechanical stretch had on the myosin-actin cytoskeleton. We found that phosphorylated MLC was increased significantly by 10 minutes post-stretch, and that inhibition of TRP channel activity or NO synthesis both abolished this effect. In addition, actin stress fibers formation significantly increased 2 minutes post-stretch, and was abolished by treatment with TRP channel inhibitors. These results suggest that, in brain endothelial cells, TRPC1 and TRPP2 are activated by TBI-mechanical stress and initiate actin-myosin contraction, which may lead to disruption of the BBB.