Search PubMed⌕ Search

Biomedical subjects

B Sinha

Publications and source records attributed to B Sinha.

At least 37 records · Page 2Linked to original sources

Endogenous adenosine curtails lipopolysaccharide-stimulated tumour necrosis factor synthesis.

Recent studies have demonstrated the inhibitory effect of exogenous adenosine on TNF production. During inflammation endogenous adenosine levels are elevated and may be one of several anti-inflammatory mediators that reduce TNF synthesis. In the present study the authors investigated this role of adenosine in freshly isolated human PBMC. The effect of endogenous adenosine on TNF formation was studied by four different approaches. First, adenosine deaminase was added to LPS-stimulated mononuclear cells. This enzyme specifically deaminates extracellular adenosine to the inactive metabolite inosine. TNF production was augmented from baseline stimulation (LPS alone) of 3.5 +/- 0.4 ng ml-1 -5.2 +/- 0.9 ng ml-1 in the presence of 10 U ml-1 adenosine deaminase. Second, TNF production was determined after stimulation in the presence of dipyridamole, an inhibitor of cellular re-uptake of adenosine which increases extracellular concentrations. TNF synthesis was reduced dose-dependently from 3.1 +/- 0.9 ng ml-1 -1.1 +/- 0.2 ng ml-1 by 10 microM dipyridamole. Third, the adenosine A2 receptor antagonist 8-(3-chlorostyryl)caffeine (100 nM) enhanced TNF synthesis from a baseline of 3.7 +/- 0.5 ng ml-1 -5.5 +/- 0.9 ng ml-1. In contrast, no increase resulted from the addition of 100 nM of the specific A1 receptor antagonist 8-cyclopentyl-1,3-dipropylxanthine. Finally, the authors were able to show that suppression of TNF formation by the specific type IV phosphodiesterase inhibitor rolipram can be completely reversed by adenosine deaminase or by the application of the A2 receptor antagonist. The authors conclude that endogenous adenosine controls TNF production. This effect of adenosine may not only have a physiological role but also appears to contribute to the pharmacological inhibition of TNF synthesis by exogenous agents such as the specific type IV phosphodiesterase inhibitor rolipram.

Adenosine↗

Zones of atrial vulnerability. Relationships to basic cycle length.

BACKGROUND: Bradycardia is commonly found in individuals at risk for paroxysmal atrial fibrillation (AF). However, a clear relationship between lengthening of basic cyclic length (BCL) and AF has not been demonstrated. METHODS AND RESULTS: In 20 open-chest dogs, atrial refractoriness, AF vulnerability, and atrial activation times (ACTs) were determined in sinus rhythm and at BCLs of 400, 300, and 200 ms, and the findings at the same coupling intervals and stimulus strengths were compared. As BCL increased, AFV zone lengthened, and its outer limit occurred later in diastole. The outer limit of the AF vulnerability zone for a BCL was its relative refractory period; the inner limit, however, was not its effective refractory period. A border zone, defined by the inner limit of the AF vulnerability zone and the effective refractory period for a BCL, decreased as BCL lengthened, offsetting the increase in the AF vulnerability zone. The border zone was characterized by paradoxical stimulus current strength propagation relations and features suggesting supernormal conduction. ACT also increased with BCL lengthening. When AF induced by rapid atrial burst pacing was contrasted with AF induced by an extrastimulus, it tended to have a more disorganized pattern and lasted longer. CONCLUSIONS: Lengthening of BCL increases the AF vulnerability zone, extending its outer limit later in diastole and comprising an increasing component of the total duration of the relative refractory period. Very short BCLs create conditions that also favor AF vulnerability.

Animals↗

Cicaprost and the type IV phosphodiesterase inhibitor, rolipram, synergize in suppression of tumor necrosis factor-alpha synthesis.

Suppression of tumor necrosis factor-alpha (TNF) synthesis is one major target in pharmacological immunomodulation. We now showed the synergistic suppressive effect of the specific type IV phosphodiesterase inhibitor, rolipram, and of the stable prostacyclin analogue, cicaprost, on TNF synthesis. This effect was seen with lipopolysaccharide and Staphylococcus epidermidis as stimuli in human peripheral blood mononuclear cells and in whole blood. Lipopolysaccharide-induced TNF synthesis by mononuclear cells decreased from 3.4 ng/ml to 1.5 ng/ml in the presence of 100 nM rolipram and to 0.7 ng/ml in the presence of 10 nM cicaprost. The combination of both agents suppressed TNF synthesis more than 10-fold, to 0.3 ng/ml. Synergistic suppression was also demonstrated for TNF mRNA.

3',5'-Cyclic-AMP Phosphodiesterases↗

Regional expression and subcellular localization of the tyrosine-specific phosphatase SH-PTP2 in the adult human nervous system.

The protein tyrosine phosphatase SH-PTP2 has been implicated in a variety of cell signaling cascades, including those mediating neuronal survival. We therefore investigated the expression of SH-PTP2 in the adult human nervous system using Western blotting, immunohistochemistry and immunoelectron microscopy. SH-PTP2 immunoreactivity was noted only in neurons, but was not restricted to a specific neuronal type or location. Immunohistochemistry showed perikaryal staining, whereas Western blotting and ultrastructural analysis suggested that SH-PTP2 is present in axons as well. While immunohistochemistry showed a Nissl-like pattern in large motor neurons, immunoelectron microscopy demonstrated a diffuse pattern of cytoplasmic staining, without apparent preferential localization. The presence of the SH2 domain-containing tyrosine-specific phosphatase SH-PTP2 in diverse neurons in the adult nervous system suggests that SH-PTP2 may play a role in a broad spectrum of neuronal responses.

Adult↗

An alternative role for the src-homology-domain-containing phosphotyrosine phosphatase (SH-PTP2) in regulating epidermal-growth-factor-dependent cell growth.

The association of the src homology 2 (SH2) domain-containing tyrosine phosphatase (SH-PTP2) with the activated epidermal growth factor (EGF) and platelet-derived growth factor receptors, as well as the insulin receptor substrate 1 and growth-factor-receptor-bound protein 2 and its intrinsic tyrosine phosphatase activity suggests an important role for this phosphatase in signal transduction. Previous studies have shown a positive role for SH-PTP2 in growth-factor-mediated cell signaling. We show here that SH-PTP2 can also function to negatively regulate EGF-mediated signal transduction in the human glioma cell line SNB19. We demonstrate this by showing that, in SNB19 cells, which lack the ability to proliferate in response to EGF but retain the ability to bind EGF and also activate the EGF receptor as well as allow for the association of SH-PTP2 with the phosphorylated receptor, stable overexpression of an interfering SH-PTP2 mutant can restore the ability of these cells to proliferate in response to EGF.

Amino Acid Sequence↗

Enhanced tumor necrosis factor suppression and cyclic adenosine monophosphate accumulation by combination of phosphodiesterase inhibitors and prostanoids.

We investigated cooperative effects of phosphodiesterase (PDE) inhibitors and prostanoids on cyclic adenosine monophosphate (cAMP) accumulation and tumor necrosis factor (TNF)-alpha synthesis in human peripheral blood mononuclear cells (PBMC). PDE inhibitors alone induced only a small increase in cAMP levels in lipopolysaccharide (LPS)-stimulated PBMC. Cicaprost (a stable analogue of prostacyclin) and pentoxifylline added simultaneously to LPS-stimulated PBMC (2.0 x 10(6)/ml) induced a rapid increase of cAMP to a level of 100 nM that peaked within 10 min and remained at a plateau for up to 4 h. Thus combined prostanoids and PDE inhibitors enhanced cAMP accumulation. TNF-alpha suppression in the presence of pentoxifylline and prostanoids exceeded that of either drug alone. The potency of different PDE inhibitors (theophylline, pentoxifylline, penthydroxifylline, albifylline, torbafylline, A 80 2715, amrinone and rolipram) to increase cAMP levels in combination with cicaprost was evaluated after 1 h of incubation. The dose-dependent increase of cAMP for all PDE inhibitors tested in this combined stimulation provided a useful tool for evaluating the potency of PDE inhibitors on cAMP accumulation. The effective concentration of PDE inhibitors, which raised cAMP levels to 300% of control, (EC300), correlated with the IC50 for TNF-alpha suppression (r = 0.930, p = 0.007, with theophylline excluded from the analysis). Interestingly, by contrast, the specific type IV PDE inhibitor rolipram caused only a moderate rise of accumulated cAMP in the same cells. Our data support cAMP as an essential mediator for TNF-alpha suppression by PDE inhibitors. Furthermore, an enhanced inhibiting effect on TNF-alpha production may prove therapeutically advantageous. It may occur in inflammatory and infectious diseases in vivo, since high levels of endogenous prostaglandins are liberated in these conditions.

Cells, Cultured↗

The specific type IV phosphodiesterase inhibitor rolipram differentially regulates the proinflammatory mediators TNF-alpha and nitric oxide.

We compared the effect of the specific type IV phosphodiesterase inhibitor rolipram on intracellular cAMP concentration, nitric oxide (NO) and tumour necrosis factor-alpha (TNF) formation in the murine macrophage cell line RAW 264.7. We found a dose-dependent increase of nitrite accumulation in LPS-stimulated macrophages from 17.5 to 25.1 microM nitrite with rolipram, whereas TNF synthesis was suppressed to less than 30% of control. This was accompanied by an increase from 7.4 to a maximum of 10.5 nM cAMP in RAW cells incubated with rolipram. These results were confirmed with the stable cAMP analogue (S)-p-adenosine 3',5'-cyclic phosphorothioate [(S)-p-cAMPS]. These findings demonstrate that elevation of cAMP in RAW 264.7 cells by rolipram decreases TNF synthesis and increases NO formation.

Animals↗

Radioimmunoassays for cyclic AMP cross-react with phosphodiesterase inhibitors and buffer components.

We addressed the issue of cross-reactivity of several commonly used phosphodiesterase inhibitors with radioimmunoassays for cyclic AMP, after we had observed a considerably high cross-reactivity with a noncommercial antibody. Theophylline, pentoxifylline, penthydroxifylline (BL 194), albifylline (HWA 138), torbafylline (HWA 448), A 80 2715, isobutyl methylxanthine, and the nonmethylxanthines amrinone and rolipram were dissolved in supplemented and boiled cell culture medium (RPMI 1640). These samples were assayed for apparent cyclic AMP in two different, commercially available radioimmunoassay kits (based on polyclonal antibodies), applying the nonacetylated protocol. Cross-reactivity was dose-dependent and nonlinear. Samples containing theophylline and amrinone exhibited the strongest cross-reactivity in assay A (NEN/DuPont): 3.0 +/- 0.5(-nM) and 2.4 +/- 1.1 (-nM) apparent cyclic AMP +/- SD at 1-nM spike, respectively. With the more sensitive assay B (Amersham), higher concentrations of apparent cyclic AMP were detected: from 7.9 +/- 0.4 nM (for albifylline) to 3.5 +/- 0.1 nM (for rolipram). Values were calculated from standard curves set up in the respective assay buffer, where culture medium controls resulted in 1.8 +/- 0.3 nM and 3.1 +/- 0.1 nM for assay A and B, respectively. The culture medium interference increased with rising cyclic AMP concentrations. Although comparatively low, this degree of cross-reactivity is relevant for in vitro experiments. Phosphodiesterase inhibitors are commonly administered at millimolar concentrations, and resulting cyclic AMP levels are often in the nanomolar range. Neglecting these findings may lead to falsely high readouts of cyclic AMP concentrations.

Buffers↗

Amrinone suppresses the synthesis of tumor necrosis factor-alpha in human mononuclear cells.

Tumor necrosis factor-alpha (TNF) exerts a wide spectrum of biological activities and contributes to the pathophysiology of septic shock. Elevated circulating levels of TNF have also been reported in patients with severe chronic heart failure. We studied the effect of amrinone, a class III cyclic nucleotide phosphodiesterase inhibitor used in the treatment of acute heart failure, on the synthesis of TNF in vitro. Peripheral blood mononuclear cells from healthy volunteers or cells of a permanent monoblast cell line were stimulated for 20 h with bacterial lipopolysaccharide and different doses of amrinone. TNF production is suppressed in a dose-dependent manner to a minimum of 9% of controls with 1000 microM of amrinone, reaching half-maximal inhibition at 80 microM amrinone. This effect appears to be mediated via cAMP, which accumulated nearly twofold in the presence of amrinone. Suppression of TNF synthesis by therapeutically administered phosphodiesterase inhibitors such as amrinone may contribute to their beneficial effect in the treatment of heart failure.

Amrinone↗