Search PubMed⌕ Search

Biomedical subjects

A K Chatterjee

Publications and source records attributed to A K Chatterjee.

At least 109 records · Page 6Linked to original sources

Regulation of formation in vivo of pyridoxal phosphate in hydrazine-treated rats.

The formation in vivo of pyridoxal phosphate was studied in hydrazine-treated rats. hydrazine was administered i.p. at a dose of 1.28 mg/day (20% LD50) for each 100 g body weight for 7 days. Hydrazine administered at the present dose did not appear to have an effect on the pyridoxal phosphate level of either liver on kidney tissue. Hydrazine treatment, however, elevated the pyridoxal level in liver, while kidney pyridoxal level remained unaltered under the same condition. The pyridoxine phosphate oxidase activity in liver, unlike that in kidney, was found to be increased after hydrazine treatment. The increase in pyridoxine phosphate oxidase activity in the liver of hydrazine-treated rats was prevented by actinomycin D treatment. It has been suggested that hydrazine treatment at the present dose enhanced the rate of formation of pyridoxal phosphate from pyridoxine-5-phosphate in liver, while the formation of pyridoxal phosphate in kidney appeared to be independent of hydrazine treatment. The increased activity of liver pyridoxine phosphate oxidase in hydrazine-treated rats was ascribed to the induction of the enzyme. It has been further suggested that the unalteration in the liver pyridoxal phosphate level in hydrazine-treated rats inspite of enhanced conversion of pyridoxine-5-phosphate to pyridoxal phosphate, was probably caused by the increased hydrolysis of pyridoxal phosphate.

Animals↗

Isolation and characterization of Hfr strains of Erwinia amylovora.

Hfr strains (Hfr 159 and its derivatives, Hfr 160 and Hfr 161) were constructed from Erwinia amylovora ICPB EA178 by introducing an Escherichia coli F'his+ plasmid and then selecting for integration of F'his+ after treatment with acridine orange. The Hfr strains were relatively stable upon repeated transfers on nonselective media. Interrupted mating experiments and analyses of inheritance of unselected markers showed that his+ is transferred by Hfr 159 as the proximal marker at a relatively high frequency (about 5 x 10(-4) recombinants per input donor cell), followed by ilv+, orn+, arg+, pro+, rbs+, met+, trp+, leu+, ser+, and thr+ (not necessarily in that precise order). The donor strains, previously constructed in E. amylovora by integration of F'lac+ from E. coli transfer cys+ as the proximal marker followed by ser+. Further analysis of one of those earlier donor strains, Hfr99, showed that ser+ is followed by arg+, orn+, met+, pro+, leu+, ilv+, rbs+, his+, trp+, and thr+ (not necessarily in that precise order). Thus, the Hfr strains constructed by integration of F'his+ are different, in terms of origin and direction of transfer, from those derived from integration of F'lac+. The applicability of these Hfr strains to mapping the genes on the E. amylovora chromosome is indicated.

Acridines↗

Some studies on ascorbic acid metabolism in hydrazine-treated rats.

The metabolism of ascorbic acid was studied in hydrazine-treated rats. Hydrazine was administered i.p. at a dose of 1.28 mg/day (20% LD50) for each 100 g body weight for 7 days. Hydrazine administration at the present dose did not appear to have an effect on the total ascorbic acid level of liver, kidney, spleen and testis. The adrenal and plasma total ascorbic acid levels were, however, elevated. The activity of liver D-glucuronoreductase and that of liver and kidney dehydroascorbatases were diminished after hydrazine administration. The changes in the activities of liver enzymes were accompanied by a fall in the reduced ascorbic acid level and an elevation in the dehydroascorbic acid level. The uronolactonase activity of liver, on the other hand, remained independent of hydrazine treatment. It has been suggested that hydrazine treatment at the present dose reduced the biosynthesis of L-ascorbic acid from D-glucuronolactone as substrate. In spite of diminished synthesis, the normal level of total ascorbic acid in the liver of hydrazine-treated rats was maintained by reducing the degradation of L-ascorbic acid. The rise in the plasma total ascorbic acid level after hydrazine treatment was ascribed to reduced catabolism and urinary excretion of ascorbic acid, while the elevation in adrenal total ascorbic acid level might result from increased uptake of ascorbic acid by the gland from blood or from nonfunctional accumulation.

Alcohol Oxidoreductases↗

Unusual susceptibility of Erwinia amylovora to antibacterial agents in relation to the barrier function of its cell envelope.

Wild-type strains of the bacterial phytopathogen Erwinia amylovora (the cause of fire blight disease of apples and pears) are markedly susceptible to novobiocin, deoxycholate, and sodium dodecyl (= lauryl) sulfate. The inhibitory concentration, expressed as the concentration causing a 99% inhibition of growth, of these three antibacterial agents were 15 to 100, 40 to 800, and 50 to 800 mug/ml, respectively, depending on the E. amylovora strain. Growth of strains of other Erwinia spp. and Salmonella typhimurium is not affected at all, or is only slightly affected, at these concentrations. Introduction of the F'lac(+), RP1, and R100drd-56 (but not E-lac(+)) plasmids into an E. amylovora strain results in enhanced susceptibility to novobiocin and sodium dodecyl sulfate but not to deoxycholate. E. amylovora wild-type strains spontaneously release a periplasmic enzyme, cyclic phosphodiesterase, but not a cytoplasmic enzyme, glucose-6-phosphate dehydrogenase, into the growth medium. Addition of MgCl(2) (20 mM) and NaCl (84 mM) to tryptone broth stimulates the growth of wild-type E. amylovora strains and reduces or eliminates leakage of the periplasmic enzyme. Mutant strains of E. amylovora, selected for resistance to each separate antibacterial agent (or to all three of them), showed a direct correlation (in all but the novobiocin-resistant mutant) between drug resistance and reduced periplasmic leakiness. The relatively low maximum growth temperature (<37 degrees C) of E. amylovora seems unrelated to periplasmic leakage, as judged from the inability of added MgCl(2) to raise the maximum growth temperature, although the generation time at 30 degrees C is reduced from 108 to 54 min upon the addition of 20 mM MgCl(2). The extensive leakage of periplasmic enzyme and unusual drug susceptibility of E. amylovora strains might stem from some defect(s) in some cell envelope component(s) other than the lipopolysaccharide of these bacteria (which contain the usual liposaccharide constituents).

Anti-Bacterial Agents↗

Donor strains of the soft-rot bacterium Erwinia chrysanthemi and conjugational transfer of the pectolytic capacity.

Donor strains of Erwinia chrysanthemi ICPB EC16, a member of the soft-rot (pectolytic) section of the enterobacterial genus Erwinia, were obtained by chromosomal integration of an F'lac(+) plasmid originating from Escherichia coli. These stable donor strains, selected from an unstable F'lac(+) heterogenote by repeated platings of single Lac(+) colonies on lactose minimal agar, do not segregate (as does the parent F'lac(+) heterogenote) into Lac(-) or F(-) clones, in either the presence or absence of acridine orange. One representative donor strain (from the 12 that have been selected) has been examined in more detail; it can transfer ade(+), gal(+), gtu(+) (utilization of galacturonate), his(+), lac(+), leu(+), lys(+), mcu(+) (multiple carbohydrate utilization), pat(+) (production of polygalacturonic acid trans-eliminase), thr(+), and trp(+) in a polarized manner to appropriate recipient strains of E. chrysanthemi; the frequencies of ade(+), leu(+), and thr(+) transfer were higher than those of the other markers tested to date. This donor strain transfers lac(+) genes during a 6-h mating on membranes; most of the Lac(+) recombinants are donors of chromosomal markers. The kinetics of entry as well as the frequencies of transfer of chromosomal markers indicate that thr(+) and leu(+) enter the recipient as proximal markers and that lac(+) enters as a distal marker. Analysis of the recombinants demonstrates close linkage between thr and leu, ade and thr, his and pat, and his and trp loci. The results suggest that the integration of F'lac(+) into the chromosome of E. chrysanthemi has occurred at a region adjacent to the leu-thr loci, and that the chromosome is transferred in the following sequence: origin----leu--thr--ade--lys--mcu--pat--his--trp--gal--gtu--lac--F. Plant-tissue maceration occurs in Pat(+) recombinants and not in Pat(-) recombinants, even though both form another pectolytic enzyme, hydrolytic polygalacturonase. This genetic evidence supports the idea that the E. chrysanthemi polygalacturonic acid trans-eliminase plays an essential role in bringing about plant-tissue maceration.

Chromosomes, Bacterial↗

Enzymatic degradation of polygalacturonic acid by Yersinia and Klebsiella species in relation to clinical laboratory procedures.

As scored by several specified plating procedures, clinical and environmental strains of Yersinia enterocolitica, Yersinia pseudotuberculosis, and Klebsiella pneumoniae "Oxytocum" showed detectable, albeit generally weak, ability to digest polygalacturonic (pectic) acid. None of these bacterial strains had the vigorous and rapid pectolytic activity on these polygalacturonic acid-containing media that is typical of soft-rot Erwinia species, although some of the Oxytocum strains came fairly close. Analyses of the pectolytic enzyme contents of the cells and culture supernatants of the Yersinia and Klebsiella species revealed that readily detectable quantities of cell-bound polygalacturonic acid trans-eliminase and hydrolytic polygalacturonase were formed by the Yersinia and Klebsiella species; however, the total units of enzyme activity produced by these bacteria were, in general, lower than were produced by soft-rot Erwinia species. Furthermore, unlike the situation in soft-rot Erwinia cultures, these pectolytic enzymes of Yersinia and Klebsiella species were not excreted rapidly and massively into the growth medium. Cultures of other enterobacteria (Citrobacter species, Enterobacter species, Erwinia amylovora, Erwinia herbicola, Escherichia coli, Proteus species, Salmonella typhimurium, and Serratia marcescens) showed no pectolytic ability whatsoever by any of the plating procedures used and (to the extent they were so examined) produced no pectolytic enzymes detectable either in their cells or culture supernatants. This slow or weak release of pectolytic enzymes by Yersinia and Klebsiella species has a bearing on clinical laboratory procedures suitable for detecting their pectolytic activity; methods adequate for this purpose are detailed.

Bacteriological Techniques↗