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Biomedical subjects

L Sankaran

Publications and source records attributed to L Sankaran.

27 records · Page 2Linked to original sources

The induction of alpha-lactalbumin in rat mammary explants in the absence of exogenous prolactin: effects of progesterone and estrogen.

Mammary explants from both pregnant and virgin rats cultured in medium containing insulin, hydrocortisone and prolactin show a progressive increase in alpha-lactalbumin activity. However, when cultured with insulin and hydrocortisone only, explants from pregnant, but not those from virgin rats show an induction of alpha-lactalbumin-like activity similar to that seen when prolactin is present. The activity induced in the absence of exogenous prolactin corresponds to newly synthesized alpha-lactalbumin molecules, since 1) the activity is suppressed completely by rabbit anti-rat alpha-lactalbumin serum and 2) culture in the presence of [3H]-amino acids generates [3H]-alpha-lactalbumin, identified by SDS-polyacrylamide gel electrophoresis. Mammary tissue from virgin rats can be rendered responsive to insulin and hydrocortisone in this regard by administration in vivo of either progesterone or estrogen, but not by desoxycorticosterone acetate. This ability to convert virgin rat mammary cells to a state in which they are independent of exogenous prolactin in terms of alpha-lactalbumin synthesis represents a heretofore unreported effect of the female sex steroids.

Animals↗

Specific factors influencing histotypic aggregation of chick embryo hepatocytes.

Conditions are described for the reproducible assay of substances affecting the in vitro rate of aggregation of isolated chick embryo hepatocytes. Two low molecular weight (less than 1000) fractions--one that promotes hepatocyte aggregation (HAP) and the other that inhibits this stimulation (HAI)--have been isolated and partially purified from adult chicken liver. One major active component of HAP was identified as taurine (2-aminoethanesulfonate). The presence of HAP during the entire time of assay was required for largest aggregate formation. HAP had no effect on aggregation of chick embryo neural retina, kidney, or heart cells. Our results and the fact that puromycin completely inhibits aggregate formation suggest that HAP and HAI influence the specific synthesis and interaction of membrane macromolecules involved in the aggregation process.

Animals↗

Specific, reversible inactivation of phosphofructokinase by fructose-1,6-bisphosphatase. Involvement of adenosine 5'-triphosphate, oleate, and 3-phosphoglycerate.

Optimal conditions necessary for the reversible inactivation of crystalline rabbit muscle phosphofructokinase by homogeneous rabbit liver fructose-1,6-bisphosphatase have been studied. At higher enzyme levels (to 530 mug/ml of phosphofructokinase) the two proteins were mixed and incubated in a pH 7.5 buffer composed of 50 mM Tris-HC1, 2 mM potassium phosphate, and 0.2 mM dithiothreitol. Aliquots were removed at various times and assayed for enzyme activity. A time dependent inactivation of phosphofructokinase caused by 1-2.3 times its weight of fructose-1,6-bisphosphatase was observed at 30, 23, and 0 degree C. This inactivation did not require the presence of adenosine 5'-triphosphate or Mg2+ in the incubation mixture, but an adenosine 5'-triphosphate concentration of 2.7 mM or greater was required in the assay to keep phosphofructokinase in an inactive form. A mixture of activators (inorganic phosphate, (NH4)2SO4, and adenosine 5'-monophosphate), when added to the assay cuvette, restored nearly all of the expected enzyme activity. Incubations with other proteins, including aldolase, at concentrations equal to or greater than the effective quantity of fructose-1,6-bisphosphatase had no inhibitory effect on phosphofructokinase activity. Removal of tightly bound fructose 1,6-bisphosphate from phosphofructokinase could not explain this inactivation, since several analyses of crystalline phosphofructokinase averaged less than 0.1 mol of fructose 1,6-bisphosphate/320 000 g of enzyme. Furthermore, the inactivation occurred in the absence of Mg2+ where the complete lack of fructose-1-6-bisphosphatase activity was confirmed directly. At lower phosphofructokinase concentrations (0.2-2 mug/ml) the inactivation was studied directly in the assay cuvette. Higher ratios of fructose-1,6-bisphosphatase to phosphofructokinase were necessary in these cases, but oleate and 3-phosphoglycerate acted synergistically with lower amounts of fructose-1,6-bisphosphatase to cause inactivation. The inactivation did not occur when high concentrations of fructose 6-phosphate were present in the assay, or when the level of adenosine 5'-triphosphate was decreased. However, the inactivation was found at pH 8, where the effects of allosteric regulators on phosphofructokinase are greatly reduced. Experiments with rat liver phosphofructokinase showed that this enzyme was also subject to inhibition by rabbit liver fructose 1,6-bisphosphatase under conditions similar to those used in the muscle enzyme studies. Attempts to demonstrate direct interaction between phosphofructokinase and fructose-1,6-bisphosphate by physical methods were unsuccessful. Nevertheless, our results suggest that, under conditions which approximate the physiological state, the presence of fructose-1,6bisphosphatase can cause phosphofructokinase to assume an inactive conformation. This interaction may have a significant role in vivo in controlling the interrelationship between glycolysis and gluconeogenesis.

Adenosine Triphosphate↗

Control of differentiation in streptomycetes: involvement of extrachromosomal deoxyribonucleic acid and glucose repression in aerial mycelia development.

When Streptomyces alboniger spores were grown in Hickey-Tresner broth containing 5 muM ethidium bromide, a high frequency of permanently cured aerial mycelia-negative (am-) colonies was recovered. The appearance an am- colonies was time dependent: a very low frequency (0.3%) at zero time, a maximum (9 to 21%) after 2 to 5 days of growth, and a decline again to low frequencies later in the growth cycle. On agar, cured am- colonies of S. alboniger still produced puromycin. The development of aerial mycelia in S. alboniger, S. scabies, and S. coelicolor was also sensitive to glucose repression. Colonies grown on Hickey-Tresner agar containing 2% glucose remained phenotypically am- throughout the observation period. Adenine (2.5 mM or greater), and to a lesser extent adenosine and guanosine, specifically reversed the repression. The accumulation of undissociated organic acids appears to be involved in glucose repression of aerial mycelia formation. However, this does not appear to be the case with puromycin production in S. alboniger; glucose repression was observed over the pH range 5.0 to 7.5.

Adenine↗

Biosynthesis of puromycin in Streptomyces alboniger: regulation and properties of O-demethylpuromycin O-methyltransferase.

Mechanisms for regulation of puromycin biosynthesis in Streptomyces alboniger were studied by measuring the levels of S-adenosyl-l-methionine:O-demethylpuromycin O-methyltransferase. The enzyme was released in soluble form from mycelia by 3 to 5 min of sonication at 4 C. Maximal specific activities of 0.7 and 0.1 nmol/min per mg of protein were found in cells grown in corn steep liquor-corn starch and Hickey-Tresner media, respectively. In both media, the O-methyltransferase activity rose from low levels to a maximum during midlogarithmic growth and then declined or disappeared completely (in Hickey-Tresner medium) during stationary phase. Either glucose (1%) or ethidium bromide (5 muM) reduced O-methyltransferase formation to very low levels with no effect on overall growth. Complete glucose repression of antibiotic formation occurred on agar. Cells grown in the presence of ethidium bromide continued to produce low enzyme levels after regrowth in the absence of dye, but formed normal amounts of puromycin on Hickey-Tresner agar. The O-methyltransferase, either crude or purified, was rapidly inactivated at 37 C. Each substrate alone, or both together at lower concentrations, protected against this loss of activity. Puromycin inhibited the transferase. Regulation of O-methyltransferase synthesis in S. alboniger includes (i) induction early in growth that is susceptible to catabolite repression and differential inhibition by ethidium bromide, and (ii) protection of the enzyme from inactivation by increased intracellular levels of its substrates. The O-methyltransferase was purified 30- to 40-fold by a combination of protamine sulfate precipitation, ammonium sulfate fractionation, adsorption and gradient salt elution from diethylaminoethyl-cellulose and Sephadex G-200 gel filtration. The enzyme was very unstable, even at low temperatures, upon purification beyond the salt fractionation step, but was stabilized by the addition of S-adenosyl-l-methionine during later stages of purification.

Culture Media↗