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S Majumder

Publications and source records attributed to S Majumder.

At least 19 recordsLinked to original sources

Mechanisms of Trypanosoma cruzi-induced down-regulation of lymphocyte function. Inhibition of transcription and expression of IL-2 receptor gamma (p64IL-2R) and beta (p70IL-2R) chain molecules in activated normal human lymphocytes.

Acute infection with Trypanosoma cruzi, the agent of Chagas' disease, is accompanied by multiple manifestations of immunosuppression, and this parasite has been shown to inhibit T and B lymphocyte functions in vitro through a mechanism involving impaired membrane expression of at least the p55IL-2R (IL-2R alpha) and p70IL-2R (IL-2R beta) components of the multimeric high affinity IL-2R complex. We document in this paper that addition of T. cruzi or a parasite-conditioned medium (trypanosomal immunosuppressive factor (TIF) to cultures of PHA-stimulated normal human blood lymphocytes markedly decreases the cytoplasmic levels of p64IL-2R and p70IL-2R molecules, i.e., the two IL-2R chains that bind IL-2 and participate in signal transduction. These effects highlighted the ability of T. cruzi to curtail biosynthesis of these IL-2R chains and weakened the possibility that decreased membrane IL-2R expression results exclusively from altered chain transportation to the lymphocyte surface. Additional support for impaired lymphocyte production of IL-2R components was derived from northern blot analyses demonstrating TIF-induced decreases in p64IL-2R and p70IL-2R mRNA levels. These reductions are unlikely to be due to conditions affecting mRNA stability, since the rates of decay of both mRNA species were nearly identical in the presence and in the absence of TIF. In addition, nuclear run-on studies revealed that transcription of the p64IL-2R, p70IL-2R, and p55IL-2R genes, but not that of the CD69 gene, was below normal levels in PHA-stimulated lymphocytes incubated with TIF. These results suggest that altered gene transcription is involved in the mechanism by which T. cruzi down-regulates the expression of all the known components of the high affinity IL-2R.

Animals

Regulation of gene expression at the beginning of mammalian development.

The maternal to zygotic transition can be viewed as a cascade of events that begins when fertilization triggers the zygotic clock that delays early ZGA until formation of a 2-cell embryo. Early ZGA, in turn, appears to be required for expression of late ZGA, and late ZGA is required to form a 4-cell embryo. ZGA in mammals is a time-dependent mechanism rather than a cell cycle-dependent mechanism that delays both transcription and translation of nascent transcripts. Thus, zygotic gene transcripts appear to be handled differently than maternal mRNA, a phenomenon also observed in Xenopus (55). The length of this delay is species-dependent, occurring at the 2-cell stage in mice, the 4-8-cell stage in cows and humans, and the 8-16-cell stage in sheep and rabbits (4). However, concurrent with formation of a 2-cell embryo in the mouse and rabbit (47,56), perhaps in all mammals, a general chromatin-mediated repression of promoter activity appears. Repression factors are inherited by the maternal pronucleus from the oocyte but are absent in the paternal pronucleus and not available until sometime during the transition from a late 1-cell to a 2-cell embryo. This means that paternally inherited genes are exposed to a different environment in fertilized eggs than are maternally inherited genes, a situation that could contribute to genomic imprinting. Chromatin-mediated repression of promoter activity prior to ZGA is similar to what is observed during Xenopus embryogenesis (31,32) and ensures that genes are not expressed until the appropriate time in development when positive acting factors, such as enhancers, can relieve this repression. The ability to use enhancers appears to depend on the acquisition of specific co-activators at the 2-cell stage in mice and perhaps later in other mammals (47,56), concurrent with ZGA. Even then, the mechanism by which enhancers communicate with promoters changes during development (Fig. 2), providing an opportunity for enhancer-mediated stimulating of TATA-less promoters (e.g. housekeeping genes) early during development while eliminating this mechanism later during development.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

A unique role for enhancers is revealed during early mouse development.

Transcription and replication of genes in mammalian cells always requires a promoter or replication origin, respectively, but the ability of enhancers to stimulate these regulatory elements and the interactions that mediate this stimulation are developmentally acquired. The primary function of enhancers is to prevent repression, which appears to result from particular components of chromatin structure. Factors responsible for this repression are present in the maternal nucleus of oocytes and its descendant, the maternal pronucleus of mouse 1-cell embryos and in mouse 2-cell embryos, but are absent in the paternal pronucleus. Thus, enhancers are not needed to achieve efficient transcription and replication in paternal pronuclei. However, enhancers, even in the presence of their specific activation protein, are inactive prior to formation of a 2-cell embryo, suggesting that a coactivator essential for enhancer function is not available until zygotic gene expression begins. Furthermore, enhancer stimulation of transcription appears to be mediated through a promoter transcription factor, but this interaction can change as cells undergo differentiation, switching from a TATA-box independent to a TATA-box dependent mode.

Animals

Differential effects of Trypanosoma cruzi on the transcription of the p55IL-2R, c-fos, c-myc and CD69 genes in activated human lymphocytes.

Mitogen-activated lymphocytes co-cultured with either purified Trypanosoma cruzi trypomastigotes or the filtrate of trypomastigote suspensions in culture medium manifest a significant decrease in their capacities to express p55 interleukin-2 receptor molecules (p55IL-2R) on their membrane and proliferate. In this study we found that the cytoplasmic levels of p55IL-2R are also markedly reduced under these conditions. This inhibition appeared to result from altered gene transcription since the levels of p55IL-2R mRNA in phytohaemagglutinin (PHA)-stimulated human peripheral blood mononuclear cells (PBMC) dropped substantially in the presence of parasite suspension filtrate. The rates of decay for p55IL-2R mRNA determined in cultures lacking and containing the parasite filtrate after addition of actinomycin D to inhibit further RNA synthesis were comparable. These results indicated that decreased p55IL-2R mRNA was not due to decreased stability of this mRNA under our conditions and pointed to a transcriptional or pre-transcriptional modification as the likely mechanism by which T. cruzi affects activated lymphocytes. The parasite filtrate did not appear to affect transcription of c-fos or c-myc (known to occur in the very early stages of lymphocyte activation) or that of CD69 (which is concomitant with p55IL-2R transcription). Thus, decreased p55IL-2R gene transcription appears to be a somewhat selective effect of a T. cruzi-derived molecule(s) rather than the consequence of an overall shutdown of gene transcription.

Animals

Trypanosoma cruzi immunosuppressive factor decreases the interleukin-2 mRNA level in cultured normal activated human lymphocytes.

We show here that the marked inhibition of interleukin-2 production seen in hosts acutely infected with Trypanosoma cruzi can be reproduced in vitro by adding a T. cruzi suspension filtrate to cultures of activated human peripheral blood mononuclear cells. This effect was not due to an accelerated decay of interleukin-2 mRNA and appeared to be selective since the levels of other mRNA molecules relevant to lymphocyte activation were not noticeably decreased. The use of normal lymphoid cells in this in vitro system makes it possible to examine the mechanisms used by T. cruzi to induce abnormalities in lymphocyte functions that also occur in infected hosts.

Animals

Jaundice in new born and erythrocyte and plasma antioxidant defence system.

Alteration in the antioxidant defence mechanism of erythrocytes with rise in serum unconjugated bilirubin level in neonates has been observed. The cellular glutathione level was found to be significantly low. The activity of glutathione reductase in erythrocyte increased to combat the cellular loss of reduced glutathione in neonatal jaundice. In plasma fraction the level of glutathione (reduced) was found to be significantly higher with lowering of glutathione reductase level. Glutathione peroxidase was reduced in cellular level whereas an increase was observed in plasma fraction. Gamma glutamyl transpeptidase level was barely detectable in erythrocyte whereas an increase was observed in plasma fraction. In all the cases erythrocyte G-6-PDH activity level was found within normal limits.

Antioxidants

Regulatory effect of the level of free Ca2+ of the host cell on the capacity of Trypanosoma cruzi to invade and multiply intracellularly.

We studied whether modification of the free intracellular Ca2+ level of a mammalian host cell would affect its susceptibility to infection by Trypanosoma cruzi or its capacity to support trypomastigote-->amastigote transformation and amastigote replication. Pretreatment of rat heart myoblasts (RHM) with BAPTA.AM or Quin-2.AM, intracellular Ca2+ chelators, decreased the susceptibility of these cells to infection by untreated trypomastigotes. This was evidenced by a significant drop in both the percentage of infected RHM and the average number of organisms per 100 host cells relative to control values. Similar RHM treatment with the Ca2+ ionophore ionomycin had the opposite effects. The rate of trypomastigote-->amastigote transformation measured in RHM that had been treated with BAPTA.AM, Quin-2.AM, or ionomycin before and after, but not during co-culture with trypomastigotes was not significantly altered. The rate of intracellular amastigote multiplication measured in RHM exposed to the intracellular Ca2+ chelators only after virtually all of the internalized trypomastigotes had transformed into amastigotes was significantly decreased by incubation with BAPTA.AM or Quin-2.AM but was increased by ionomycin. None of the drug treatments affected RHM viability to any significant extent. These results suggest that T. cruzi relies on host cell Ca(2+)-dependent events, utilizes host cell free Ca2+ during invasion, or both, and highlight a requirement for an adequate free Ca2+ level for effective intracellular T. cruzi multiplication but not for trypomastigote-->amastigote transformation.

Aminoquinolines

Effect of interleukin-1 alpha on the growth of Mycobacterium microti within J774A.1 cells.

The effect of mouse recombinant interleukin-1 alpha on the intracellular growth of Mycobacterium microti in a murine macrophage cell line J774A.1 was investigated. Interleukin-1 alpha added after infection to the M. microti-infected macrophage monolayers enhanced the growth of M. microti in a concentration-dependent manner and this growth enhancement was abrogated by neutralization of interleukin-1 alpha with anti-interleukin-1 alpha antibody. Cyclic adenosine monophosphate level in J774A.1 cells was increased by the addition of interleukin-1 alpha. Addition of dibutyryl cyclic adenosine monophosphate to infected J774A.1 cells increased the number of intracellular bacteria in a concentration-dependent manner. These results suggest that interleukin-1 alpha acts as a growth enhancer for intracellular M. microti and the growth enhancing effect of interleukin-1 alpha may be due to enhanced cellular cyclic adenosine monophosphate level.

Animals

Sequence-independent induction of Sp1 transcription factor activity by phosphorothioate oligodeoxynucleotides.

Modified analogues of antisense oligodeoxynucleotides (ODNs), particularly phosphorothioates ([S]ODNs), have been extensively used to inhibit gene expression. The potential sequence specificity of antisense oligomers makes them attractive as molecular drugs for human diseases. The use of antisense [S]ODNs to inhibit gene expression has been complicated by frequent nonspecific effects. In this study we show in diverse cell types that [S]ODNs, independent of their base sequence, mediated the induction of an Sp1 nuclear transcription factor. The [S]ODN-mediated Sp1 induction was rapid and was associated with elevated levels of Sp1 protein. This induction was dependent on NF-kappa B activity, since inhibition of NF-kappa B activity abolished the [S]ODN-induced Sp1 activity. [S]ODN-induced Sp1 activity was seen in mouse spleen cells following in vivo administration. Sp1 activity induced by [S]ODNs required the tyrosine kinase pathway and did not have transactivating potential. These results may help to explain some of the non-specific effects often seen with [S]ODNs.

Animals

Requirements for DNA transcription and replication at the beginning of mouse development.

In mice, the first round of DNA replication occurs in fertilized eggs (1-cell embryos), while the onset of zygotic gene transcription begins approximately 20 hours after fertilization, a time that normally coincides with formation of a 2-cell embryo. One approach to investigating the mechanisms that control these developmentally regulated events has been to microinject plasmid DNA into the nuclei of mouse oocytes and embryos in order to determine the requirements for unique DNA sequences that regulate transcription and replication. The results from these and other studies have revealed two important mechanisms that regulate the beginning of animal development. The first is a time dependent "zygotic clock" of unknown detail that delays the onset of transcription, regardless of whether or not a 2-cell embryo is formed. The second is a mechanism that represses the activity of promoters and origins of replication specifically in maternal pronuclei of oocytes and 1-cell embryos, and in all nuclei of 2-cell embryos, regardless of their parental origin or ploidy. This repression is linked to chromatin, but the striking ability to relieve this repression with specific embryo-responsive enhancers first appears with formation of a 2-cell embryo. The need for a TATA-box to mediate enhancer stimulation of promoter activity appears even later when cell differentiation becomes evident. Thus, a biological clock delays transcription until both paternal and maternal genomes are replicated and remodeled from a post-meiotic state to one in which transcription is repressed by chromatin structure in a manner that can be relieved by cell-specific enhancers at appropriate times during development.

Animals

Changes in Trypanosoma cruzi infectivity by treatments that affect calcium ion levels.

The possible role of the intracellular Ca2+ level in the regulation of Trypanosoma cruzi infectivity was explored by measuring the capacity of trypomastigote forms of this organism to invade mammalian host cells after treatments which decrease or elevate cytoplasmic Ca2+. Parasites loaded with either bis-(o-aminophenoxy)-ethane-N,N,N',N' tetraacetic acid (BAPTA) or 2-([2-bis(carboxymethyl)-amino-5-methylphenoxy]methyl)-6-nethoxy-8 - bis(carboxymethyl)aminoquinoline (Quin-2) to chelate Ca2+ displayed significantly decreased infectivity. This effect was denoted by reductions in both the proportion of rat heart myoblasts invaded by the parasite in vitro and the number of trypanosomes penetrating these host cells, the extents of which were BAPTA or Quin-2 concentration dependent. Consistent with these observations, inhibitory effects were also recorded when the parasite was pretreated with the calmodulin-binding phenothiazines trifluoperazine and chlorpromazine or with felodipine, a chemically different type of calmodulin antagonist, for as little as 5 min. In contrast, pretreatment with the Ca2+ ionophore ionomycin, which elevated Ca2+ levels in T. cruzi, significantly enhanced the infective capacity of the parasite. These results point to the existence of a Ca(2+)-dependent mechanism that regulates the invasive capacity of T. cruzi.

Aminoquinolines

TATA-dependent enhancer stimulation of promoter activity in mice is developmentally acquired.

Herpes simplex virus (HSV) thymidine kinase (tk) promoter activity depends on four transcription factor binding sites, one of which is a TATA box sequence, and the presence of either a cis-acting enhancer sequence or a transactivator protein. Studies presented here show that this TATA box was required for promoter activity only after cells began to differentiate and then only when promoter activity was stimulated by either an enhancer or a transactivator. When the HSV tk promoter was utilized by mouse embryos from the one-cell to eight-cell stage of development or by undifferentiated mouse embryonic stem cells, disruption of the HSV tk TATA box by site-specific mutations did not reduce promoter activity. This was true even when HSV tk promoter activity was stimulated strongly by either the embryo-responsive polyomavirus F101 enhancer or its natural transactivator, the HSV ICP4 gene product. However, stimulated expression was dependent on a distal Sp1 DNA binding site. Similarly, disruption of the TATA box did not reduce tk promoter activity in primary mouse embryonic fibroblasts or in immortalized 3T3 mouse fibroblasts; in fact, promoter activity was increased up to 2.6-fold. However, in these differentiated cells, stimulation of the HSV tk promoter by either the F101 enhancer or ICP4 protein required the TATA box. HSV tk promoter activity also was dependent on its TATA box in the mouse oocyte, a terminally differentiated cell with an endogenous transactivating activity. These results reveal that the need for a TATA box is developmentally acquired and depends on at least two parameters: the differentiated state of the cell and stimulation of the promoter by either an enhancer or a transactivator.

3T3 Cells

Subacute toxicity of fenvalerate in broiler chicks: concentration, cytotoxicity and biochemical profiles.

Subacute toxicity study of fenvalerate was carried out in broiler chicks after oral administration @ 525.6 mg/kg once daily for 28 days. The blood concentration of fenvalerate following 1 day post-administration (pd) was 39.65 +/- 2.67 micrograms/ml and maintained plateau thereafter up to day 21 pd, and then declined (18.46 +/- 1.47 micrograms/ml) on day 28 pd. Intestine contained maximum residue (7.46 +/- 1.96 micrograms/g) followed by fat (5.95 +/- 1.16 micrograms/g), brain (5.06 +/- 0.96 micrograms/g), liver (3.93 +/- 0.51 micrograms/g), kidney (3.79 +/- 0.72 micrograms/g) and heart (1.72 +/- 0.35 micrograms/g). Histopathological examinations showed focal areas of necrosis in liver, proliferation and fibrosis of bile duct, larger size of glomeruli, glomerular and tubular necrosis in treated birds. Fenvalerate significantly increased the cholesterol level in brain, GPT activity in liver and heart, GOT activity in heart, and alkaline phosphatase activity in heart and brain tissue. It significantly decreased the glycogen content in liver and heart, GOT activity in brain and acid phosphatase activity in all the tissues analyzed. It appears that comparatively fowl is resistant to fenvalerate toxicity.

Animals

Analysis of gene expression in mouse preimplantation embryos demonstrates that the primary role of enhancers is to relieve repression of promoters.

Enhancers are generally viewed simply as extensions of promoters, lacking a function of their own. However, previous studies of mouse preimplantation embryos revealed that 1-cell embryos can utilize enhancer-responsive promoters efficiently without an enhancer, whereas 2-cell embryos require an enhancer to achieve the same levels of expression. This suggested that enhancers relieved a repression in 2-cell embryos that is absent in 1-cell embryos. Results presented here demonstrate first that the ability of 1-cell embryos to dispense with enhancers does not result from the absence of specific activation proteins. Under conditions where GAL4-VP16 activated a GAL4-dependent promoter in both embryos, GAL4-VP16 activated a GAL4-dependent enhancer only in 2-cell embryos. Moreover, the role of an enhancer is not to compensate for either changes in promoter requirements, or for reduced levels of promoter-specific transcription factors. Linker-scanning mutations in a natural promoter revealed that both embryos utilized the same promoter elements, and comparison of different promoters revealed that these embryos have equivalent transcriptional capacities. In addition, titration experiments revealed less Sp1 activity in 1-cell embryos where enhancers are dispensable than in 2-cell embryos where enhancers are required. Therefore, we propose that the primary function of enhancers, first evident with formation of a mouse 2-cell embryo, is to prevent repression of weak promoters, probably by altering chromatin structure. Consistent with this hypothesis is the fact that butyrate, an agent that alters chromatin structure, stimulated promoters in 2-cell embryos, but not in 1-cell embryos.

Animals

N,N'-thiophene-substituted polyamine analogs inhibit mammalian host cell invasion and intracellular multiplication of Trypanosoma cruzi.

We studied the effects of two N,N'-thiophene-substituted polyamine analogs (MDL 28302 and MDL 29431) on the capacities of Trypanosoma cruzi, the etiologic agent of Chagas' disease, to invade and multiply within a mammalian host cell. Both compounds inhibited infectivity significantly in a time- and concentration-dependent manner. This inhibition resulted from a selective effect on the parasite, because pretreatment of T. cruzi but not host cell cultures with either MDL 28302 or MDL 29431 reduced infectivity. The parasite gradually recovered its infective capacity after removal of unincorporated polyamine analog, denoting the reversible nature of the inhibitory effect. Some biochemical modification of MDL 28302 and MDL 29431 appeared to be required for their inhibitory activities to be exerted, since the effects of these drugs on T. cruzi infectivity were abrogated by MDL 72527, a drug known to inhibit polyamine oxidase (PAO) activity specifically. Supporting the notion of that products of MDL 28302 and MDL 29431 oxidation by PAO were involved in the activity of these compounds was the finding that PAO competitive substrates (N1-acetylspermine and N1-acetylspermidine) also abolished the inhibition of T. cruzi infectivity mediated by MDL 28302 or MDL 29431. However, we can not rule out that MDL 72527 and the PAO competitive substrates might have altered an alternative mechanism because no significant polyamine oxidase activity could be demonstrated in preparations of lysed or intact T. cruzi in assays monitoring conversion of [14C]spermine to [14C]spermidine. When either MDL 28302 or MDL 29431 was added to infected cell cultures, a marked reduction in the rate of intracellular parasite growth ensued.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Inhibition of host cell invasion and intracellular replication of Trypanosoma cruzi by N,N'-bis(benzyl)-substituted polyamine analogs.

We studied the effects of two N,N'-bis(benzyl)-substituted polyamine analogs on the capacities of Trypanosoma cruzi to invade and multiply within a mammalian host cell. At concentrations as low as 1 microM, these compounds reduced significantly the infectivity of the parasite for rat heart myoblasts in a time-dependent manner. Pretreatment of virulent T. cruzi trypomastigotes, but not myoblast pretreatment, reduced the level of infectivity. The inhibitory effects started to subside 3 h after removal of the drugs and were no longer detectable after 4 h. A significant decrease in the rate of intracellular amastigote multiplication was also seen when the drugs were added to myoblast cultures which had been previously infected with untreated T. cruzi. These results show that N,N'-bis(benzyl)-substituted polyamine analogs meet the two most important criteria for potential chemotherapeutic agents against T. cruzi infection, namely, inhibition of both host cell invasion and intracellular replication by this parasite.

Animals

Inhibition of S-adenosyl-L-methionine (AdoMet) decarboxylase by the decarboxylated AdoMet analog 5'-([(Z)-4-amino-2-butenyl]methylamino)-5'-deoxyadenosine (MDL 73811) decreases the capacities of Trypanosoma cruzi to infect and multiply within a mammalian host cell.

A decarboxylated S-adenosyl-L-methionine (AdoMet) analog, 5'-([(Z)-4-amino-2-butenyl]methylamino)-5'-deoxyadenosine (MDL 73811), that specifically and irreversibly inhibits AdoMet decarboxylase (DC) was used to investigate the role of AdoMetDC in the regulation of host cell invasion and intracellular replication by Trypanosoma cruzi. The presence of MDL 73811 in cocultures of T. cruzi and rat heart myoblasts (RHM) significantly inhibited host cell infection in a dose-dependent manner. This effect, evidenced by reductions in the proportion of infected RHM and the number of parasites per 100 RHM, was due to MDL 73811 action on T. cruzi as it was reproduced when the parasites, but not the RHM, were pretreated with the inhibitor. Significant inhibition of infectivity required a 10-min treatment with MDL 73811 although greater effects ensued with additional incubation time. We could not detect signs of recovered infectivity up to 6 hr after the removal of nonincorporated MDL 73811, suggesting that either AdoMetDC turnover in T. cruzi is a relatively slow process or the amounts of MDL 73811 taken up could not be blocked or eliminated during this time period. MDL 73811-mediated inhibition of infectivity was not bypassed by the addition of exogenous spermidine or spermine, suggesting that the mechanism of action does not involve reduced production of these polyamines due to AdoMetDC inhibition. Intracellular accumulation of AdoMet appeared to be a more plausible explanation in view of the fact that exogenous AdoMet significantly inhibited infectivity. When added to infected RHM cultures, MDL 73811 or AdoMet inhibited also intracellular T. cruzi growth.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosylmethionine Decarboxylase