Biomedical subjects
S Krishna
Publications and source records attributed to S Krishna.
Plasmodium falciparum: in vitro studies of the pharmacodynamic properties of drugs used for the treatment of severe malaria.
The speed and stage specificity of antimalarial drug action on the metabolic activities of cultured Plasmodium falciparum were studied for chloroquine (CQ), quinine (QN), artemisinin (AR), and sodium artelinate (SA). CQ had the most rapid onset of action on [3H]hypoxanthine and [3H]isoleucine uptake, reaching 50% of its maximum effect in 1.8 hr compared with 3.5-7.4 hr for the other three drugs. In contrast there was a lag time of 1-4 hr before AR and SA had a measurable inhibitory effect, although after this delay antimalarial action was very rapid. Parasite glycolysis was relatively drug resistant; the inhibition of lactate production was < 60% of that for [3H]hypoxanthine and [3H]isoleucine uptake. The susceptibility of P. falciparum changed markedly as the parasite matured. Maximum drug effects occurred at the late ring and early trophozoite stage, which corresponds to the time at which the most rapid increases in synthetic and glycolytic activities occur. Mature schizonts and young rings were relatively unaffected by the antimalarial drugs. Young rings were particularly resistant to QN. Schizonts multiplied successfully in the presence of relatively high concentrations of all four drugs. The two artemisinin compounds had the broadest time window of action and may be particularly suitable for the treatment of severe malaria.
A family of cation ATPase-like molecules from Plasmodium falciparum.
We report the nucleotide and derived amino acid sequence of the ATPase 1 gene from Plasmodium falciparum. The amino acid sequence shares homology with the family of "P"-type cation translocating ATPases in conserved regions important for nucleotide binding, conformational change, or phosphorylation. The gene, which is present on chromosome 5, has a product longer than any other reported for a P-type ATPase. Interstrain analysis from 12 parasite isolates by the polymerase chain reaction reveals that a 330-bp nucleotide sequence encoding three cytoplasmic regions conserved in cation ATPases (regions a-c) is of constant length. By contrast, another 360-bp sequence which is one of four regions we refer to as "inserts" contains arrays of tandem repeats which show length variation between different parasite isolates. Polymorphism results from differences in the number and types of repeat motif contained in this insert. Inserts are divergent in sequence from other P-type ATPases and share features in common with many malarial antigens. Studies using RNA from the erythrocytic stages of the malarial life cycle suggest that ATPase 1 (including the sequence which encodes tandem repeats) is expressed at the large ring stage of development. Immunolocalization has identified ATPase 1 to be in the region of the parasite plasma membrane and pigment body. These findings suggest a possible model for the genesis of malarial antigens.
Pharmacokinetics, efficacy and toxicity of parenteral halofantrine in uncomplicated malaria.
1 The pharmacokinetics, efficacy and toxicity of a new parenteral formulation of halofantrine hydrochloride were evaluated in 12 adults with acute uncomplicated falciparum malaria and nine adults who attended in convalescence. 2 Intravenous halofantrine (1 mg kg(-1) infused in 1 h) was given every 8 h for a total of three doses in the acute study. Halofantrine cleared parasitaemia rapidly in all but one patient, with a mean (s.d.) parasite clearance time of 71 (29) h. Convalescent patients received a single infusion (1 mg kg(-1) in 1 h). 3 An open two-compartment model with the following parameters described the pharmacokinetics of halofantrine in acute malaria (mean (s.d)): V1 = 0.36 (0.18) l kg(-1); CL = 0.355 (0.18) l h(-1) kg(-1); t1/2alpha = 0.19 (0.12) h; t1/2beta = 14.4 (7.5) h. 4 Intravenous halofantrine in acute malaria produced significant prolongations of the QT and QTc intervals (mean (s.d.)) of 20 (15%) and 8.2 (5.6)%, respectively (P < 0.001) after the third dose, but no clinically significant cardiotoxcity. Eight patients experienced mild to moderate thrombophlebitis at the halofantrine infusion site which had resolved in six by the time of follow-up. In the single treatment failure who received oral quinine, there was a large rise in plasma halofantrine concentration but this did not result in detectable toxicity. 5 These data provide the basis for the design of improved dosing regimens for the use of parenteral halofantrine in malaria.
Mechanistic aspects of the interaction of polyanionic oligodeoxynucleotides with HL60 cells.
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Homogeneously staining region in anthracycline-resistant HL-60/AR cells not associated with MDR1 amplification.
Anthracycline-resistant HL-60/AR cells and their drug-sensitive HL-60/S counterparts were characterized by karyotypic analysis and examined for the overexpression of DNA and mRNA sequences coding for P-glycoprotein (Pgp). The HL-60/S cells were karyotypically stable over a 5-year period of study (1986-1991), except for an additional small Giemsa-positive band noted at 7q22 in cultures harvested in 1987, but not in 1986. This change did not affect drug sensitivity. The drug-resistant HL-60/AR cells examined in 1986, 1987, and 1991 demonstrated a very stable karyotype. The most striking feature was a large homogeneously staining region in the long arm of chromosome 7 (7q11.2), and translocation of the remainder of the long arm to another centromere. Other changes in the HL-60/AR cells included inversion in 9q, partial deletion of the short arm of chromosome 10p, addition of material to the p arm of der(16), loss of chromosome 22, and the appearance of a new marker chromosome. Both HL-60/S and the HL-60/AR cells were found not to amplify DNA or mRNA sequences coding for the Pgp. Thus, although the HL-60/AR cells possess the classical multidrug resistance phenotype and demonstrate a homogeneously staining region near the region of the MDR1 gene, their resistance is due to mechanisms other than those coded for by MDR1.
The major histocompatibility complex class I antigen-binding protein p88 is the product of the calnexin gene.
A 90-kDa phosphoprotein (p90) of the endoplasmic reticulum was identified by a monoclonal antibody generated against human hepatoma cells. Pulse-chase experiments with [32P]phosphate and [35S]methionine demonstrated that p90 formed both stable and transient complexes with other cellular proteins, suggesting its role as a molecular chaperone. This protein associates with heavy chains of major histocompatibility complex class I proteins, suggesting that it is the human homolog of the recently described 88-kDa protein that transiently associates with murine class I molecules in the endoplasmic reticulum. The p90 protein also associates in B lymphocytes with membrane immunoglobulin mu heavy chains and may serve as a chaperone for many membrane-bound polypeptides. A partial human p90 cDNA was cloned from a lambda gt11 expression library and identified as the human homolog of calnexin, a major canine calcium-binding protein found to be associated with the signal-sequence receptor in endoplasmic reticulum membranes.
Expression of thrombospondin-related anonymous protein in Plasmodium falciparum sporozoites.
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Tetrameric cell-surface MHC class I molecules.
Purified major histocompatibility complex (MHC) class I molecules have been studied at high resolution by X-ray crystallography; the structure is a complex of a single heavy chain, a beta 2-microglobulin light chain and a tightly bound peptide moiety. We show here that complete MHC class I molecules are post-translationally assembled into tetramers (made up of four heavy chains and four beta 2-microglobulin units) and that this tetrameric species is expressed on the cell surface. The multivalent tetrameric structure of class I molecules can be reconciled with models of T-cell activation that invoke antigen-receptor crosslinking, as opposed to models that depend on an allosteric change.
Tandem competitive polymerase chain reaction (TC-PCR): a method for determining ratios of RNA and DNA templates.
A sensitive and accurate method for determining the ratios of RNA and DNA templates by polymerase chain reaction (PCR) is presented. A common competitor containing tandemly arranged internal standards differing from the target template by the presence of different restriction enzyme sites is coamplified with the target templates under identical conditions. Products from each template and internal standard are identified by the band pattern after digestion with the restriction enzyme. As the amount of the common competitor is kept constant for all target templates, the ratio of PCR products from the templates reflects their ratio in the reaction mix before amplification. The method was used to study the relative abundance of mRNA for the pro-alpha1 and pro-alpha2 chains of type I collagen and for estimating disturbances of normal ratio in the inherited bone disorder, osteogenesis imperfecta.
Encephalitis, not cerebral malaria, is likely cause of coma with negative blood smears.
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Subcellular distribution of daunorubicin in P-glycoprotein-positive and -negative drug-resistant cell lines using laser-assisted confocal microscopy.
Four well defined multidrug-resistant cell lines and their drug-sensitive counterparts were examined for intracellular distribution of daunorubicin (DNR) by laser-assisted confocal fluorescence microscopy: P-glycoprotein-negative HL-60/AR cells, and P-glycoprotein-positive P388/ADR, KBV-1, and MCF-7/ADR cells. Both drug sensitive cell lines (HL-60/S, P388/S, KB3-1, and MCF-7/S) and drug-resistant cell lines (HL-60/AR, P388/ADR, KBV-1, and MCF-7/ADR) exposed to DNR showed a similar rapid distribution of drug from the plasma membrane to the perinuclear region within the first 2 min. From 2-10 min, the drug sensitive HL-60/S, P388/S, and MCF-7/S cells redistributed drug to the nucleus and to the cytoplasm in a diffuse pattern. In contrast, drug-resistant HL-60/AR, P388/ADR, and MCF-7/ADR redistributed DNR from the perinuclear region into vesicles distinct from nuclear structures, thereby assuming a "punctate" pattern. This latter redistribution could be inhibited by glucose deprivation (indicating energy dependence), or by lowering the temperature of the medium below 18 degrees C. The differences in distribution between sensitive and resistant cells did not appear to be a function of intracellular DNR content, nor the result of drug cytotoxicity. Drug-sensitive KB3-1 and -resistant KBV-1 cells did not fully follow this pattern in that they demonstrated an intracellular DNR distribution intermediate between HL-60/S and HL-60/AR cells with both "punctate" and nuclear/cytoplasmic uptake sometimes in the same cell. These data indicate that the intracellular distribution of DNR is an important determinant of drug resistance regardless of the overexpression of P-glycoprotein. The intracellular movement of drug requires the presence of glucose and a temperature above 18 degrees C, implicating energy-dependent processes and vesicle fusion in the distribution process. This intracellular transport of DNR away from the nucleus in multidrug-resistant cells may protect putative cell targets such as DNA against drug toxicity.
Membrane glycoprotein changes associated with anthracycline resistance in HL-60 cells.
The glycoproteins on the surface of HL-60/S wild-type, drug-sensitive human leukemia cells and HL-60/AR anthracycline-resistant cells which do not overexpress the P-glycoprotein, were characterized by labeling with [35S]-methionine, NaB[3H4], phosphorus 32, or sodium iodide I 125. HL-60/S and HL-60/AR cell lysates and membrane fractions tagged with [35S]-methionine or phosphorus 32 showed no significant differences in their protein patterns as analyzed by sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) and by autoradiography. HL-60/S cells labeled with NaB[3H4] yielded glycoproteins that were smeared predominantly in the molecular-weight range of 210,000 and 160,000 Da, with pI values ranging between pH 4 and pH 4.4. In contrast, NaB[3H4]-labeled HL-60/AR cells showed 7-8 discrete glycoproteins within a molecular-weight range of 170,000 and 140,000 Da, with pI values also ranging between pH 4 and pH 4.4. In addition, [3H]-glucosamine incorporation into HL-60/S and HL-60/AR cells revealed that the latter showed lower uptake of [3H]-glucosamine than did the former. Following treatment with tunicamycin, [3H]-glucosamine uptake in HL-60/S cells decreased, whereas that in HL-60/AR cells remained unchanged. Surface-membrane radioiodination of HL-60/S and HL-60/AR cells showed two distinct protein electrophoretic patterns, with differences being observed in both the high-(220-95 kDa) and low-molecular-weight ranges (21 kDa). Flow cytometric analysis of HL-60/S and HL-60/AR cells using myeloid and lymphoid antigen-specific antibodies demonstrated no antigenic differences between HL-60/S and HL-60/AR cells. HL-60/S cells incubated in the presence of tunicamycin, an inhibitor of N-linked glycosylation, or the protein kinase C agonist phorbol 12-myristate 13-acetate (PMA) developed a glycoprotein pattern similar to that observed in HL-60/AR cells. In addition, tunicamycin treatment of HL-60/S cells decreased daunorubicin (DNR) retention and altered its intracellular distribution as compared with that in HL-60/AR cells. These data indicate that HL-60/AR cells do not possess either de novo or amplified high-molecular-weight surface-membrane proteins; instead, existing proteins are hypoglycosylated. These results also show that HL-60/AR cells exhibit the multidrug-resistant phenotype in association with altered membrane glycoproteins of both high (220-95 kDa) and low molecular weight (21 kDa), but without overexpression of the P-glycoprotein. Furthermore, in HL-60/S cells, the multidrug-resistant phenotype is partially inducible by inhibition of N-linked glycosylation of cell-surface proteins.
Erythrocyte survival in severe falciparum malaria.
Erythrocyte survival was studied in 17 Thai patients (10 males, 7 females; aged 13-57 years) with severe falciparum malaria. To ensure radioisotopic labelling of cells before bone marrow recovery and survival analysis under near-steady state conditions, 51Cr labelling of autologous erythrocytes was performed at the time of admission (0 h) and calculation of mean cell lifespan (MCL) was based on semilogarithmic plots of corrected counts from 60 h onwards. Five patients received blood transfusions, all within 48 h of admission. The overall mean (+/- S.D.) MCL was short (44.1 +/- 21.7 days). Nontransfused patients had similar MCL values (43.6 +/- 20.4) to those of transfused patients (45.5 +/- 27.3 days, p greater than 0.8). Patients with and without palpable splenomegaly had MCL values which were not significantly different (54.1 +/- 28.8 vs. 37.2 +/- 12.3 days respectively, p greater than 0.1). There was no association between admission haematocrit or peripheral parasitaemia and MCL (p greater than 0.2 in each case), but there was an inverse correlation between total serum bilirubin and MCL (r = -0.49, p less than 0.025). There is accelerated destruction of non-parasitised erythrocytes in severe malaria resulting in a mean MCL that is half that found previously in healthy Thai volunteers (89.6 +/- 13.1 days, p less than 0.001) and significantly shorter than that reported previously in Thai patients with uncomplicated P. falciparum infections studied after parasite clearance (56.8 +/- 10.2 days, p less than 0.05).
Plasmodium berghei: lactic acidosis and hypoglycaemia in a rodent model of severe malaria; effects of glucose, quinine, and dichloroacetate.
Fulminant malaria infections are characterised by hypoglycaemia and potentially lethal lactic acidosis. In young adult Wistar rats (n = 26) infected with Plasmodium berghei (ANKA strain), hyperparasitaemia (greater than 50%), anaemia (PCV 19.6 +/- 5.3%; mean +/- SD) hypoglycaemia (1.04 +/- 0.74 mmol/litre), hyperlactataemia (13.2 +/- 2.20 mmol/litre), hyperpyruvicaemia (0.51 +/- 0.12 mmol/litre) and metabolic acidosis (arterial pH 6.96 +/- 0.11) developed after approximately 14 days of infection. Hypoglycaemia was associated with appropriate suppression of plasma insulin concentrations. In a second series of experiments the metabolic effects of treatment with glucose (500 mg/kg/hr), quinine (5 mg/kg bolus followed by 10 mg/kg over 1 hr) and a potent activator of pyruvate dehydrogenase, dichloroacetate (300 mg/kg) were studied over a 1-hr period. In control animals quinine had no measurable effects, but dichloroacetate significantly reduced arterial blood lactate (74%) and pyruvate (80%). In infected animals, glucose infusion attenuated the rise in lactate (38% compared with 82%; P less than 0.01) but quinine had no additional metabolic effects. Dichloroacetate further attenuated the rise in lactate (14%; P less than 0.01).
Soluble Fc epsilon R II levels in normal children and patients with immunodeficiency diseases.
CD23 is expressed on mature B cells and is identical to a low-affinity IgE Fc epsilon receptor type II (Fc epsilon R II). The C terminal portion of CD23 is released to the serum as soluble Fc epsilon R II (sFc epsilon R II), which may be involved in regulation of IgE synthesis. We studied sFc epsilon R II levels in normal children and in patients with immunodeficiencies, including common variable immunodeficiency (CVI), partial DiGeorge syndrome, and immunodeficiency associated with ectodermal dysplasia to examine the relationship of sFc epsilon R II levels to B cell numbers and other immunoparameters. Serum Fc epsilon R II levels are higher in younger children (younger than 3 years) and decline gradually with age. In 11 patients with CVI with normal numbers of B cells (greater than 6%), sFc epsilon R II levels were comparable to that of control subjects. Five patients with CVI with deficiencies of peripheral B cells had levels of sFc epsilon R II similar to levels of control subjects. In all but one patient with partial DiGeorge syndrome, sFc epsilon R II levels were not significantly elevated, despite the presence of elevated peripheral B cell numbers. Of six patients with ectodermal dysplasia, four demonstrated increased Fc epsilon R II levels, a finding not correlated with serum IgE levels or with peripheral eosinophil or B cell numbers.
Immunogenicity of herpes simplex virus type 1 glycoproteins expressed in vaccinia virus recombinants.
Vaccinia virus recombinants expressing glycoproteins B (vgB11), D (VgD52), E (gE/7.5 and gE/4B), G (gG-vac), H (gH-vac), and I (gI-vac) of HSV-1 were used to compare the protective response to these individual glycoproteins in the mouse. Glycoprotein D induced the best neutralizing antibody titers and the most increased rates of HSV clearance from the ear as well as good protection from the establishment of latent HSV infections in the sensory ganglia. Glycoprotein B also induced good neutralizing antibody titers and as great a protection from the establishment of latency as gD although the rate of virus clearance from the ear was not as great as after immunization with gD. Glycoprotein E induced weak neutralizing antibody but gG, gH, and gI did not show a neutralizing antibody response. At higher challenge doses of virus (10(6) PFU HSV-1 in the ear), gE induced a protective response by increasing the rate of virus clearance and reducing the acute infection of ganglia as compared to negative control immunized mice. However there was no protection from the establishment of latent infections after immunization with gE. No protective response was seen to gG, gH, or gl.
Calcium metabolism in malaria-infected erythrocytes.
Changes in the concentration of free calcium regulate many intracellular metabolic pathways and other important aspects of cellular function. The erythrocyte maintains intracellular calcium concentrations within a narrow range, but infection by malarial parasites disrupts these homeostatic mechanisms. The observation that infected erythrocytes have supranormal concentrations of calcium raises questions about the storage and functions of calcium ions within parasites. These are addressed in the following review by Sanjeev Krishna and Laura Squire-Pollard.