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Biomedical subjects

B K Ghosh

Publications and source records attributed to B K Ghosh.

At least 19 recordsLinked to original sources

Maternal thyroid hormonal status in preeclampsia.

BACKGROUND: The physiological changes in the thyroid gland during pregnancy are well understood but only a few reports provide information about thyroid function in complicated pregnancies. AIMS: The present study evaluates thyroid hormonal levels in cases of preeclampsia in the third trimester of pregnancy. SETTINGS & DESIGN: A case-control study was conducted in the antenatal clinic of a public hospital of Delhi. METHOD & MATERIALS: Thyroid hormones, namely triiodothyronine (Free T3), thyroxine (Free T4) and thyroid stimulating hormone (TSH) were evaluated at the time of diagnosis of preeclampsia in 82 pregnant women and equal number of matched controls. STATISTICAL ANALYSIS: The demographic data and hormone levels were analyzed using students' t test, Mann-Whitney test and chi-square test. Pearson two-tailed analysis was used for correlation. RESULTS: Mean TSH levels were significantly higher in preeclamptic group as compared to controls (p< 0.001). However, mean values of thyroid hormones were in the normal range. Approximately 40% preeclamptic women had TSH titres > 5 mIU/ml in the study group as compared to 12.2% in the controls. Approximately 76.7% of 43 pregnant women with abnormal TSH titres and 40% of 121 pregnant women with normal TSH titres belonged to the study group (p< 0.001). The odd ratio corresponding to TSH titres > 5 mIU/ml in preeclamptic women was 4.85 (95% CI 2.19-10.74). CONCLUSIONS: Mean serum TSH levels were significantly increased without concomitant changes in free T3 and T4, in preeclampsia compared to normal pregnancy. Abnormal TSH titres might be associated with a risk for occurrence of preeclampsia.

Adult↗

The complete nucleotide sequence of the Bacillus licheniformis NM105 S-layer-encoding gene.

A protein present on the cell surface of Bacillus licheniformis (Bl) NM105 was identified as an S-layer (OlpA in this paper), a protein present on many bacterial cell surfaces. Purification, SDS-PAGE and isoelectrofocusing showed one 94-kDa, slightly acidic (pI 6.5) protein band (defined as OlpA). The pure protein OlpA, has a tetragonal symmetry of its morphological subunits. Following Edman degradation, three 17-mer oligodeoxyribonucleotide (oligo) probes corresponding to the N-terminal sequence of Olpa were synthesized and used for gene cloning. The nucleotide (nt) sequence of the cloned gene (olpA) showed an ORF and encoded an 874 amino acid (aa) protein. In the promoter region of olpA, there appear to be -10 and -35 sigmaA-binding sites, as well as -10 and -35 regions specific for sigmaH. The existence of these two potential promoters suggests that OlpA would be produced during both the vegetative and sporulating stages of growth. The ribosome-binding site (RBS) sequence perfectly matched its consensus sequence, suggesting a high efficiency of translation of olpA. A typical 29-aa leader peptide, characteristic of secretory proteins in Bacilli, is present in the OlpA pre-protein sequence. In olpA, there are two stem-loop structures in tandem, downstream from the stop codon. These stem-loops are probably involved in prolonged olpA expression, by extending the half life of the mRNA.

Amino Acid Sequence↗

Production of hydroquinol from p-benzoquinone using yeast.

Reduction of p-benzoquinone to hydroquinol has been studied using Saccharomyces cerevisae and S.uvarum. Maximum conversion of p-Benzoquinone (p-BQ) to Hydroquinol (HQ) at a substrate concentration of 6%. S. cerevisae was found to be better than S. uvarum. No further conversion did take place after 60 hr. Optical innoculam density was found to be 5-6% (v/v). The pH optima was observed at pH value 5.50. No significant improvement could be observed by doping acetone, which solubilizes p-BQ, to the medium.

Benzoquinones↗

Localization to the inner surface of the cytoplasmic membrane by immunoelectron microscopy of enzyme I of the phosphoenolpyruvate:sugar phosphotransferase system of Escherichia coli.

The phosphoenolpyruvate:sugar phosphotransferase system of Escherichia coli constitutes a major pathway for sugar translocation. It is composed of integral membrane proteins (enzyme II components) that recognize specific extracellular sugars as well as phosphocarrier proteins, one of which is called enzyme I. While enzyme I plays a role in energizing the enzyme II for sugar transfer, its precise cellular distribution had not previously been defined. This study was designed to elucidate the cellular location of this protein by immunoelectron microscopy. Enzyme I antibody bound to E. coli cryosections was visualized with protein A-gold. The gold particles in sections of wild-type E. coli were found primarily associated with the surface of the inner membrane. A strain of E. coli harboring a plasmid encoding the gene for enzyme I was also tested for its distribution of enzyme I. Consistent with the biochemically established overproduction of enzyme I, this strain showed an approximately 80-fold higher density of gold particles per unit cell volume than the wild-type cells. The substantial overproduction of immunoreactive enzyme I was associated with a significant (approximately 20-fold) increase in the amount of that protein bound to the inner membrane. In addition, a substantial fraction of the total enzyme I accumulated within a 60-nm-wide zone in the vicinity of the inner membrane. A model to explain the zonal distribution of enzyme I under conditions of overexpression of the protein is presented.

Cell Membrane↗

Cloning of the crystalline cell wall protein gene of Bacillus licheniformis NM 105.

A protein with a tetragonal pattern, defined as RS protein, was found on the wall surface of an alkaline phosphatase secretion-deficient mutant (NM 105) of Bacillus licheniformis 749/C. The protein was present on the wall surface of the exponential-growth-phase cells, but at the stationary growth phase it was overproduced and hypersecreted. This protein was precipitated to homogeneity from the culture fluid by 80% ammonium sulfate saturation and chilled acetone. The molecular mass of the protein was 98 kilodaltons, and it had a single subunit in a sodium dodecyl sulfate gel. Specific anti-RS antibody was generated in rabbits and used to immunolabel the RS protein on the cells at different growth phases. In early-exponential-growth-phase cells, the outside surface of the wall, the cytoplasm, and the inside surface of the cytoplasmic membrane were labeled. In stationary-growth-phase cells, the cytoplasm was poorly labeled, but the labeling on the outside surface of the wall was high. AB. licheniformis NM 105 gene library was made by using the lambda phage EMBL3. The RS protein expression from this gene library was detected by a modified autoradiographic procedure. One of the amplified RS protein-positive plaques (4213-1) containing recombinant DNA was chosen, and the restriction map of this DNA was prepared. The RS protein expressed in Escherichia coli NM 539 infected with 4213-1 recombinant phage had a lower molecular mass than the purified authentic RS protein. The 4.5-kilobase-pair (kbp) SalI-EcoRI fragment of the recombinant DNA was cloned in the shuttle plasmid pMK4 to construct pMK462, which was expressed in B. subtilis MI112 and produced the RS protein identical in molecular mass to the purified authentic RS protein. The RS protein expression was also demonstrated in cryosections of transformed E. coli and B. subtilis cells by immunoelectron microscopy. The 1.2-kbp SalI-HindIII and 1.8-kbp HindIII-HindIII recombinant DNA restriction enzyme fragments, respectively, from the right of the restriction map produced anti-RS antibody cross-reacting proteins. The expression of the 1.2-kbp SalI-HindIII DNA fragment cloned in pUC8 could be induced with isopropyl-beta-D-thiogalactopyranoside. The 1.8-kbp DNA restriction fragment hybridized with both the chromosomal DNA of strain NM 105 and the recombinant phage 4213-1 DNA. The RS gene expression was finally demonstrated in transformed E. coli 539 cells by in situ hybridization of frozen thin sections with the 1.8-kbp HindIII biotin-dATP probe and immunolabeling these with anti-biotin immunoglobulin G and protein A-gold.

Bacillus↗

Magnetic resonance of water protons in fresh human blood plasma.

Spin-lattice (T1-) relaxation times of fresh human blood plasma at 13.2 MHz and 29 degrees C ranged from 1263 milliseconds (msec) to 1709 msec. Spin-spin (T2-) relaxation times of those samples were between 446 msec and 753 msec. Proton magnetic resonance (p.m.r.) phantoms of such blood plasma were made with ferric chloride and corn starch in dilute hydrochloric acid, and also in dilute sulfuric acid. Their Fe3+ ion concentrations approximated 138 micrograms (micrograms) per deciliter (dl). Both T1 and T2 of any of these p.m.r. phantoms were within limits of those described above for fresh human blood plasma. Lowering of the concentration of the Fe3+ ion--in an experimental corn starch solution--was manifested in longer T1.

Adult↗

Subcellular fractionation of a hypercellulolytic mutant, Trichoderma reesei Rut-C30: localization of endoglucanase in microsomal fraction.

The growing mycelia of Trichoderma reesei Rut-C30 are richly endowed with endoplasmic reticula and a variety of pleomorphic subcellular bodies. Mycelia of the culture growing in presence of avicel pH101 was fractionated in sucrose density gradients, and several morphologically and biochemically distinct fractions were isolated. Mycelia were homogenized in a Bead Beater, and the homogenate was freed of nucleus and wall fragments by low-speed centrifugation before fractionation. Organelle-free cytosol, which did not penetrate the gradient, contained (of the total) 72% of the vanadate-sensitive ATPase, 26% of carboxymethyl cellulase (CMCase), 2% of cytochrome c reductase, and 13% of the protein. Significant fractions separated on a gradient were light vesicles containing heavily stained material inside and ribosomes attached to the outside surface, intact vesicles resembling condensing vacuoles, large vesicles derived from the plasma membrane, and heavy vesicles containing crystalline material. The light-vesicle fraction contained a large portion of the cell-bound CMCase activity. The particle-bound ATPase and cytochrome c reductase activities were concentrated in heavy fractions. The fractionation in the presence of MgCl2 improved the preservation of subcellular bodies derived from the endoplasmic reticula. Although the CMCase activity of the light-vesicle fraction was 4 times higher than the activity in the heavy-vesicle fraction, the CMCase antibody-binding capacities of both fractions were about the same. This discrepancy between the catalytic activity and the antibody-binding capacity suggests that the heavy vesicles might have contained considerable amount of inactive CMCase compared with that present in the light vesicles.

Cell Fractionation↗

Immunoelectron microscopic double labeling of alkaline phosphatase and penicillinase with colloidal gold in frozen thin sections of Bacillus licheniformis 749/C.

The subcellular distribution of alkaline phosphatase and penicillinase was determined by double labeling frozen thin sections of Bacillus licheniformis 749/C with colloidal gold-immunoglobulin G (IgG). Antipenicillinase and anti-alkaline phosphatase antibodies were used to prepare complexes with 5- and 15-nm colloidal gold particles, respectively. The character of the labeling of membrane-bound alkaline phosphatase and penicillinase was different: the immunolabels for alkaline phosphatase (15-nm particles) were bound to a few sites at the inner surface of the plasma membrane, and the gold particles formed clusters of various sizes at the binding sites; the immunolabels for penicillinase (5-nm particles), on the other hand, were bound to the plasma membrane in a dispersed and random fashion. In the cytoplasm, immunolabels for both proteins were distributed randomly, and the character of their binding was similar. The labeling was specific: pretreating the frozen thin sections with different concentrations of anti-alkaline phosphatase or penicillinase blocked the binding of the immunolabel prepared with the same antibody. Binding could be fully blocked by pretreatment with 800 micrograms of either antibody per ml.

Alkaline Phosphatase↗

Subcellular localization of alkaline phosphatase in Bacillus licheniformis 749/C by immunoelectron microscopy with colloidal gold.

Subcellular distribution of the alkaline phosphatase of Bacillus licheniformis 749/C was determined by an immunoelectron microscopy method. Anti-alkaline phosphatase antibody labeled with 15- to 18-nm colloidal gold particles (gold-immunoglobulin G [IgG] complex) were used for the study. Both the plasma membrane and cytoplasmic material were labeled with the gold-IgG particles. These particles formed clusters in association with the plasma membrane; in contrast, in the cytoplasm the particles were largely dispersed, and only a few clusters were found. The gold-IgG binding was quantitatively estimated by stereological analysis of labeled, frozen thin sections. This estimation of a variety of control samples showed that the labeling was specific for the alkaline phosphatase. Cluster formation of the gold-IgG particles in association with the plasma membrane suggests that existence of specific alkaline phosphatase binding sites (receptors) in the plasma membrane of B. licheniformis 749/C.

Alkaline Phosphatase↗

Specificity of subcellular distribution of alkaline phosphatase in Bacillus licheniformis 749/C.

The objective of this investigation was to examine the in vivo characteristics of binding sites for alkaline phosphatase in Bacillus licheniformis cell surface. An attempt was made to correlate the results from several experimental approaches, namely (i) cell fractionation; (ii) ultrastructural cytochemistry; (iii) MgCl2 extraction and sodium dodecyl sulphate--polyacrylamide electrophoresis of the extracted material; (iv) labelling with 125I-labelled diazonium salt to determine the subcellular origin of MgCl2-extracted material. Results show that 40% of the alkaline phosphatase was bound to the plasma membrane, 35% to the cell wall, and 15% was free in the cytosol. The enzyme was present as aggregates in a few discrete sites in the membrane, wall, and cytoplasm. The membrane enzyme was associated with the inside surface. A few aggregates were enclosed in single-layered vesicles which appeared to protrude through the cell wall. The material extracted with magnesium salt consisted of 8-10 proteins including alkaline phosphatase. The majority of the proteins extracted by MgCl2 originated from the outside half of the plasma membrane, whereas, only a few, including alkaline phosphatase, came from the inside half of the plasma membrane. All of these proteins may have formed a complex which was removed by MgCl2 extraction. Patch formation in the membrane indicated specific aggregation of intramembrane proteins after MgCl2 treatment.

Alkaline Phosphatase↗

Alkaline phosphatase secretion-negative mutant of Bacillus licheniformis 749/C.

An alkaline phosphatase secretion-blocked mutant of Bacillus licheniformis 749/C was isolated. This mutant had defects in the phoP and phoR regions of the chromosome. The selection procedure was based on the rationale that N-methyl-N'-nitro-N-nitrosoguanidine can induce mutations of closely linked multiple genes. The malate gene and the phoP and phoR genes are located at the 260-min position in the Bacillus subtilis chromosome; hence, the malate gene could be used as a marker for the mutation of the phoP and phoR regions of the chromosome. In a two-step selection procedure, strains defective in malate utilization were first selected with the cephalosporin C procedure. Second, these malate-defective strains were further screened in a dye medium to select strains with defects in alkaline phosphatase secretion. One stable mutant (B. licheniformis 749/cNM 105) had a total secretion block for alkaline phosphatase and had the following additional characteristics: (i) the amount of alkaline phosphatase synthesized was comparable to that in the wild type; (ii) the alkaline phosphatase was membrane bound; (iii) the mutant strain alkaline phosphatase, in contrast to that of the wild type, could not be extracted with MgCl2, although the amounts of protein extracted from each strain were comparable; (iv) the sodium dodecyl sulfate-polyacrylamide gel pattern of MgCl2-extracted proteins from the mutant strain was different from that of the wild-type proteins; (v) the mutant, unlike the wild type, could not use malate as a sole source of carbon; and (vi) the outside surface of the wall of the mutant cells contained an additional electron-dense layer that was not present on the wild-type cell wall surface.

Alkaline Phosphatase↗

Stereological analysis of plasmolysis in logarithmic-phase Bacillus licheniformis.

The plasmolytic response of Bacillus licheniformis 749/C cells to the increasing osmolarity of the surrounding medium was quantitated with stereological techniques. Plasmolysis was defined as the area (in square micrometers) of the inside surface of the bacterial wall not in association with bacterial membrane per unit volume (in cubic micrometers) of bacteria. This plasmolyzed surface area was zero when the cells were suspended in a concentration of sucrose solution lower than 0.5 M, but increased linearly when the sucrose molarity rose above 0.5 M, reaching a plateau value of 3.61 micrometers2/micrometers3 in 2 M sucrose. In contrast, when the bacterial cells were treated with lysozyme plasmolysis increased abruptly from 0.06 micrometers2/micrometers3 in 0.75 M sucrose to 4.09 micrometers2/micrometers3 in 1 M sucrose. When the time of exposure was prolonged, the degree of plasmolysis increased gradually for the duration of the experiment (30 min) after exposure to 1 M sucrose without lysozyme, whereas with lysozyme plasmolysis reached a maximum (4.09 micrograms2/micrometers3) in 2 to 5 min. The examination of ultrastructure showed that the protoplast bodies of lysozyme-treated cells in 1 M sucrose and untreated cells in 2 M sucrose are maximally retracted from the intact wall of the bacteria; hardly any retraction of protoplasts could be seen for untreated cells in 1 M sucrose. The data suggest that the B. licheniformis cells are isoosmotic to 800 to 1,100 mosM solutions, but are able to withstand much greater osmotic pressure with no signs of plasmolysis because the cell wall and the plasma membrane are held in close association, perhaps by a covalent bond. It is likely that lysozyme weakens this bond by degradation of the peptidoglycan layer. Cellular autolysis also weakens this wall-membrane association.

Bacillus↗

Subcellular distribution of marker enzymes in cells of a minute fungus, Fusidium sp. 100-3.

An electron microscope cytochemical technique was used to determine the subcellular distribution of marker enzymes in Fusidium sp. 100-3 cells. Nucleoside diphosphatase was found in the nuclear envelope and intracytoplasmic membrane segment. Thiamine pyrophosphatase was found to be associated with the mesosomes. Cytochrome c (oxidase) activity was found only in the mitochondrial cristae. Strong alkaline phosphatase activity was present in the vacuole; in addition, the enzyme activity was discretely dispersed throughout the cytoplasm without any association with any membrane material. The overall characteristics of the cell ultrastructure and subcellular enzyme distribution of Fusidium sp. 100-3 cells compare fairly well with those of a fungal cell. But there are considerable differences from the characteristics of higher eucaryotic cells. Detailed data on the marker enzymes distribution in a variety of fungal cells are not available. Therefore, it is not possible to conclude whether the marker enzyme distribution of Fusidium sp. 100-3 cells is unique or is typical of any fungal organism. Detailed studies of cell ultrastructure of and marker enzyme distribution in minute fungal cells and their comparison to the ultrastructure of and marker enzyme distribution in other fungal organisms may be helpful in understanding the phylogenetic and ontogenic development of subcellular organelles.

Acid Anhydride Hydrolases↗

Immunoelectron microscopic localization of penicillinase in Bacillus licheniformis.

Penicillinase was localized in log-phase cells of Bacillus licheniformis 749/C by labeling with ferritin-anti-penicillinase immunoglobulin G conjugate. Mildly fixed homogenized cells, isolated subcellular fractions, and frozen thin sections were labeled. The label was distributed in discrete patches in the cell envelope. The patches extended from the inside part of the membrane to the outside part of the wall. The inside part of the membrane was labeled more extensively than the outside part. The cytoplasm also bound some ferritin-immunoglobulin G conjugate. Immunoelectrophoresis and biochemical assay of cytosol material suggest that the cytoplasmic antigenic sites are a protease-sensitive form of penicillinase.

Antigen-Antibody Reactions↗