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Biomedical subjects

S A Marsico

Publications and source records attributed to S A Marsico.

At least 19 recordsLinked to original sources

Molecular mechanisms of corticosteroid actions in chronic inflammatory airway diseases.

Although corticosteroids have been used for a long time as a very effective therapy of airway inflammatory diseases such as asthma, only recently the molecular basis of their mechanism of action has begun to be elucidated. These hormones exert their biological and pharmacological actions by binding to cytoplasmic receptors that, upon activation, translocate to the nucleus where they interact with specific genomic sequences thus modulating gene expression. However, many glucocorticoid effects responsible for their anti-inflammatory and anti-asthmatic activity take place irrespectively of receptor binding to DNA. In particular, ligand-bound glucocorticoid receptors can repress several different pro-inflammatory genes by physically associating, via protein-protein interactions, with various transcription factors and with the macromolecular complexes implicated in regulation of chromatin structure and function. In this regard, an important role is played by the influences of corticosteroids on the intrinsic histone acetyltransferase and deacetylase functions of coactivators and corepressors, respectively. Furthermore, the signal transduction pathways mediated by mitogen-activated protein kinases are newly recognized, key targets of glucocorticoids. Indeed, these enzymatic cascades are crucially involved in the regulation of gene expression in that they are essential for the activity of a high number of transcription factors. Therefore, the recent advances made in such a rapidly growing research field are providing new insights into the mode of action of corticosteroids, thereby also unveiling novel promising therapeutic strategies directly targeted to the molecular events underlying the inflammatory, immune, and apoptotic processes implicated in the pathogenesis of asthma and other airway diseases.

Asthma↗

Potential role of potassium channel openers in the treatment of asthma and chronic obstructive pulmonary disease.

Airway smooth muscle (ASM) cells express various types of potassium (K+) channels which play a key role in determining the resting membrane potential, a relative electrical stability and the responsiveness to both contractile and relaxant agents. In addition, K+ channels are also involved in modulation of neurotransmitter release from airway nerves. The most important K+ channels identified in airways include large and small Ca2+-activated, delayed-rectifier, and ATP-sensitive channels. These K+ channels are structurally and functionally different, thus playing distinct roles in airway electrophysiology and pharmacology. Many in vitro and in vivo studies, performed in both animals and humans, have shown that K+ channel openers are able to induce hyperpolarization of ASM cells, bronchodilation, suppression of airway hyperresponsiveness (AHR), and inhibition of neural reflexes. Therefore, airway K+ channels represent a suitable pharmacological target for the development of new effective therapeutic options in the treatment of asthma and chronic obstructive pulmonary disease (COPD).

Animals↗

Onset of action following formoterol Turbuhaler and salbutamol pMDI in reversible chronic airway obstruction.

Short-acting beta(2)-agonists are currently recommended for symptom relief in asthma and the treatment of mild, acute exacerbations in COPD. However, formoterol has as fast an onset of action as salbutamol with the additional benefit of longer-lasting bronchodilation (approximately 12 h). Furthermore, systemic side effects observed with formoterol are of a similar duration but less pronounced than with short-acting beta(2)-agonists. In this double-blind, randomized, cross-over study, 20 adult patients with reversible chronic airway obstruction (intrinsic asthma or COPD) inhaled single doses of formoterol 9 microg or salbutamol 100 microg (group A) or formoterol 18 microg or salbutamol 200 microg (group B). FEV(1) was measured prior to and 5, 10, 15, 20, 25 and 30 min following inhalation of study drug. No significant differences in FEV(1) values were observed between group A (P=0.704) or group B (P=0.270) at baseline, or at 5 (Group A: P=0.340; Group B: P=0.559) and 15 min (Group A: P=0.526; Group B: P=0.818) post dose. No adverse events were reported during the study. Formoterol Turbuhaler has as rapid an onset of action as salbutamol pMDI when given at the recommended doses.

Adult↗

Acute effects of higher than customary doses of salmeterol and salbutamol in patients with acute exacerbation of COPD.

Worsening of underlying bronchospasm may be associated with acute exacerbations of chronic obstructive pulmonary disease (COPD). As airway obstruction becomes more severe, the therapeutic option is to add salbutamol, but not salmeterol, as needed to cause rapid relief of bronchospasm. Unfortunately the most effective dosage of beta2-agonists may increase above that recommended during acute exacerbations. In this study, we compared the acute effects of higher than customary doses of salmeterol and salbutamol in 20 patients with acute exacerbation of COPD. A dose-response curve to salmeterol pMDI, 25 microg/puff or salbutamol pMDI, 100 microg/puff, was constructed using 1, 1, and 2 puff' i.e., a total cumulative dose of 100 microg salmeterol or 400 microg salbutamol on 2 consecutive days. After baseline measurements, dose increments were given at 30-min intervals with measurements being made 25 min after each dose. Hear rate (HR) and pulse-oximetry (SpO2) measurements were then taken. Both salmeterol and salbutamol induced a larg and significant (P < 0.05) dose-dependent increase in FEV1 [mean differences from baseline (L) = after 100 microg salmeterol 0.174 (95% CI: 0.112 to 0.237); after 400 microg salbutamol: 0.165 (95% CI: 0.080 to 0.249)], in IC [mean differences from baseline (L) = after 100 microg salmeterol: 0.332 (95% CI: 0.165 to 0.499); after 400 microg salbutamol: 0.281 (95% CI: 0.107 to 0.456)] (Fig. 2), and in FVC mean differences from baseline (L) = after 100 microg salmeterol: 0.224 (95% CI: 0.117 to 0.331); after 400 microg salbutamol: 0.242 (95% CI: 0.090 to 0.395)]. There was no significant difference between the FEV1 values (P=0.418), the ICvalues (P=0.585), and the FVCvalue (P=0.610) after 100 microg salmeterol and 400 microg salbutamol. HR [mean differences from baseline (beats/min) = after 100 microg salmeterol: 3.15 (95% CI: -0.65 to 6.96); after 400 microg salbutamol: 2.30 (95% CI: -0.91 to 5.51)] and SpO2 [mean differences from baseline (%) = after 100 microg salmeterol: -0.20 (95% CI: -1.00 to 0.60); after 400 microg salbutamol: -0.11 (95% CI: -1.00 to 0.79)] did not change significantly from baseline (P > 0.05). These data indicate that salmeterol is effective and safe in the treatment of acute exacerbation of COPD and support its use in this clinical condition.

Acute Disease↗

Effects of glucocorticoids on activation of c-jun N-terminal, extracellular signal-regulated, and p38 MAP kinases in human pulmonary endothelial cells.

Mitogen-activated protein kinases (MAPK) play a central role in signal transduction by regulating many nuclear transcription factors involved in inflammatory, immune, and proliferative responses. The aim of this study was to investigate, in human pulmonary endothelial cells, the effects of synthetic glucocorticosteroids on activation of c-jun N-terminal kinases, extracellular signal-regulated kinases, and p38 subgroups of the MAPK family. Human microvascular endothelial cells from lung were stimulated for 2 h with either H(2)O(2) (2 mM), IL-1beta (10 ng/mL), or tumour necrosis factor-alpha (10 ng/mL). Under these conditions, a remarkable increase in the phosphorylation pattern of c-jun N-terminal kinases, extracellular signal-regulated kinases 1/2, and p38 was detected. Pretreatment for 12 h with dexamethasone (100 nM) was able to prevent phosphorylation-dependent MAPK activation in stimulated cells, without substantially affecting the expression levels of these enzymes. Our results suggest that inhibition of MAPK signaling pathways in human pulmonary endothelial cells may significantly contribute, by interfering with activation of several different transcription factors, to the antiinflammatory and immunosuppressive effects of glucocorticosteroids.

Cells, Cultured↗

Effect of inhaled heparin on water-induced bronchoconstriction in allergic asthmatics.

OBJECTIVE: The aim of this study was to investigate the effect of inhaled heparin on bronchoconstriction induced by ultrasonically nebulised distilled water (UNDW) in allergic asthmatics. METHODS: Eight atopic asthmatics, hyperresponsive to UNDW, were selected for this randomised, placebo-controlled, crossover double-blind study. On two consecutive days, these subjects underwent a UNDW challenge 45 min after inhaling aerosolised heparin (1000 U/kg) or placebo. RESULTS: Neither heparin nor placebo had a significant effect on base-line forced expiratory volume in 1 s (FEV1), but heparin significantly attenuated UNDW-induced bronchoconstriction, as shown by its efficacy in preventing the decreases in FEV1 produced by all doses of water (in comparison with placebo: P < 0.05 after 2 ml water; P < 0.01 after 4, 8 and 16 ml water). CONCLUSION: Inhaled heparin is able to exert a protective effect against the bronchoconstrictive response to UNDW in allergic asthmatics, and this action is likely due to inhibition of mast cell degranulation.

Administration, Inhalation↗

Effects of non-bronchoconstrictive doses of inhaled propranolol on airway responsiveness to methacholine.

OBJECTIVES: The aim of this study was to evaluate the effects of non-bronchoconstrictive doses of propranolol on airway hyperresponsiveness to methacholine. METHODS: Double increasing concentrations (from 0.03 to 64 micrograms/ml) of inhaled propranolol were administered to a study population which included ten patients with mild asthma, ten rhinitics, and ten healthy control subjects. After the baseline bronchial responses to propranolol and methacholine, expressed as the cumulative provocative dose producing a 20% fall in forced expiratory volume in 1 s (PD20FEV1), were assessed, methacholine challenge was repeated after pretreatment with non-bronchoconstrictive doses of propranolol. RESULTS: The pharmacologically induced beta-blockade did not cause any effect in normal individuals, but it worsened airway responsiveness to methacholine in all asthmatics (geometric mean PD20 FEV1: 257 and 87 micrograms, respectively) and some rhinitics (geometric mean PD20 FEV1: 724 and 446 micrograms, respectively). CONCLUSION: Asthmatic patients were extremely sensitive to beta-blockers, whereas we observed a variable response to propranolol within the group of rhinitic subjects. This variability in the latter group is possibly because these individuals had different degrees of airway inflammation, increased parasympathetic activity, and beta-adrenoceptor dysfunction.

Administration, Inhalation↗

New perspectives in asthma treatment.

The recent advances in the knowledge of the basic mechanisms underlying asthmatic inflammation have significantly contributed to the delineation of new therapeutic perspectives for asthma. There are currently three main approaches to the development of novel antiasthma treatments: 1) improvement in existing classes of drugs 2) identification of new compounds able to interfere with the complex network of proinflammatory mediators, cytokines, chemokines, and adhesion molecules involved in the pathogenesis of asthma 3) utilization of new forms of immunotherapy aimed at blocking the unbalanced Th2 response which characterizes the pathophysiology of asthma. Such a remarkable expansion in available therapeutic options will probably allow us, over the next decade, to treat asthma by more selectively targeting the pathogenetic events responsible for this widespread airway disease.

Anti-Asthmatic Agents↗

Effects of specific immunotherapy in allergic rhinitic individuals with bronchial hyperresponsiveness.

Allergic rhinitis can be associated with bronchial hyperresponsiveness (BHR), and carries an increased risk for the development of asthma. The aim of this study was to evaluate the ability of specific immunotherapy (SIT) to reduce the progression of allergic rhinitis to asthma and prevent the associated increase in BHR. Forty-four subjects monosensitized to Dermatophagoides pteronyssinus, with perennial rhinitis and BHR to methacholine, were randomly assigned to receive SIT or placebo in a double-blind study conducted over a period of 2 yr. After 1 yr of treatment, a 2.88-fold increase in the provocative dose of methacholine producing a 20% decrease in FEV(1) (PD(20)FEV(1)) was recorded in the SIT-treated group (95% confidence interval [CI]: 3.98- to 2.09-fold; p < 0.001), with a further increase to fourfold at the end of Year 2 (95% CI: 2.9- to 5.7-fold; p < 0.001). At the end of the study, the methacholine PD(20)FEV(1) was within the normal range in 50% of treated subjects (p < 0.0001), and was significantly higher in this group than in the group receiving placebo (p < 0.0001). In contrast, no changes in methacholine PD(20)FEV(1) were found in the placebo group throughout the study. Although 9% of subjects given placebo developed asthma, none of those treated with SIT did. This study suggests that SIT, when administered to carefully selected, monosensitized patients with perennial allergic rhinitis, reduces airway responsiveness in subjects with rhinitis, and may be an appropriate prophylactic treatment for rhinitic patients with hyperreactive airways.

Adolescent↗

Is the mitochondrial benzodiazepine receptor involved in the control of airway smooth muscle tone?

1. In addition to binding to GABAA receptors in the central nervous system, benzodiazepines have also been reported to recognize high affinity binding sites in several different peripheral tissues. 2. These peripheral benzodiazepine receptors likely consist of distinct integral membrane proteins, which are predominantly localized in the outer mitochondrial membrane and may be associated to form a heteropolymeric receptor complex. One such protein, identified for its ability to bind a class of benzodiazepines and isoquinolines, has been purified and the corresponding complementary DNA (cDNA) has been cloned and characterized. Furthermore, the structure of the rat gene encoding this protein has been clarified, thus potentially opening new insights into the molecular mechanisms responsible for receptor regulation. 3. Although the exact physiologic and/or pharmacologic role of peripheral benzodiazepine receptors is still unknown, their wide tissue distribution suggests an involvement in many cellular phenomena. 4. In particular, several lines of investigation indicate that these receptors, densely expressed on airway smooth muscle of various species, may contribute to the modulation of bronchomotor tone and perhaps to the pathogenesis of asthma and airway hyperresponsiveness.

Animals↗

[Molecular bases of anti-asthma action of corticosteroids].

Since it is now recognized that asthma is an inflammatory disease of the airways, the powerful antiasthmatic effects of corticosteroids are believed to be largely dependent on their broad anti-inflammatory activity. These drugs are the most effective asthma treatment currently available but, although they have been used for a long time, only recently the molecular mechanisms underlying their pharmacological actions are becoming clear. Corticosteroids bind to intracellular receptors which, upon ligand-dependent activation, interact with specific genomic DNA sequences thus leading to an increase or a decrease in the transcription rate of several target genes. Modulation of gene transcription by glucocorticoids underlies complex interactions involving their receptors, genomic DNA, nuclear chromatin, and other transcription factors. Furthermore, steroid hormones can also modulate gene expression at the post-transcriptional level. The anti-inflammatory and antiasthmatic effects of corticosteroids are mediated by down- or up-regulation of specific target genes. Down-regulation of gene expression leads to a reduced synthesis of several cytokines and adhesion molecules. Up-regulation results in increased production of lipocortins and beta 2-adrenergic receptors. A small minority of asthmatic patients do not respond to corticosteroids, and the mechanism underlying this steroid resistance is still under investigation.

Adrenal Cortex Hormones↗

Regulation of beta 2-adrenergic receptors and the implications for bronchial asthma: an update.

Cloning and characterization of the gene encoding the beta 2-adrenergic receptor (beta 2-AR) have opened new insights into the structure, function and regulation of beta 2-AR. Deoxyribonucleic acid (DNA) sequencing and site-directed mutagenesis have made it possible to localize the receptor regions, which are essential for beta 2-AR phosphorylation, sequestration, and downregulation. Furthermore, identification of specific regulatory sites within the nucleotide sequence of the beta 2-AR gene is contributing to a better understanding of the control of beta 2-AR gene transcription. All these mechanisms are involved in homologous and heterologous regulation of beta 2-AR, which accounts for the modulation of beta 2-AR synthesis and responsiveness mediated by catecholamines, steroid hormones, inflammatory mediators and other agents. Homologous and heterologous regulation of beta 2-AR, along with modulation of expression and turnover of the G proteins coupled to adenylyl cyclase, may play an important role in the pathogenesis, evolution, and management of bronchial asthma.

Asthma↗

Phenotypic features and secretory pattern of alveolar macrophages in atopic asthmatic patients.

The aim of this study was to evaluate by cytofluorimetry, the phenotype and the activation of alveolar macrophages (CD14; CD33; CD44; CD54; CD23; HLA-DR) and, by radioimmunoassay, the "in vivo and in vitro" macrophage secretory pattern (IL-1 alpha; IL-1 beta; IL6; IL8; PGE2; PGD-1 alpha; TXB2; LTB4) in atopic patients with mild asthma in intercritical phase and with bronchial hyperreactivity (PD20 FEV1 = 377 +/- 262.8 micrograms). In asthmatic patients we have demonstrated that the number of cells recovered in BALF expressing the phenotypic features (CD14; CD33; HLA-DR; CD23; CD44; CD54) was larger than in control subjects. By analysing the culture medium of unstimulated and LPS-stimulated alveolar macrophages from asthmatic and normals we have demonstrated a greater production of IL-1 beta (p = 0.005) and IL-8 (p = 0.005) in the first group than in one second, as confirmed by a Wilcoxon test. Concerning the secretory pattern in BALF of asthmatic patients we obtained similar results, showing a significant IL-1 beta (p = 0.005) and IL-8 (p = 0.002) increase suggesting a persistent cellular activation. On the contrary we could not show any significant increase of IL-1 alpha (p = 0.31) and IL-6 (p = 0.22). The cellular activation was confirmed by increased levels of different chemical mediators such as TXB2 (p = 0.005); LTB4 (p = 0.004); PGE2 (p = 0.007); PGF-1 alpha (p = 0.008) which were recovered from BALF of asthmatic patients compared to normal subjects. In conclusion alveolar macrophages play an important role in the pathogenesis of asthma because of the presence of cytokines and mediators in BALF and in the supernatant of alveolar macrophage cultures.

Adult↗

Serum neuron-specific enolase in various pathological conditions.

Quantitative determination of neuron-specific enolase in the serum was performed by RIA method in 18 neurological patients and in 22 patients with pulmonary diseases. The data confirmed that the specificity of this marker is not absolute for the detection both of the nature and of the seat of origin of the disease. Further problems are posed in patients which simultaneously suffer from endocrine, nervous and pulmonary abnormality.

Adolescent↗