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S Numa

Publications and source records attributed to S Numa.

At least 145 records · Page 8Linked to original sources

Studies on some lipogenic enzymes of cultured myeloid leukemic cells.

The microsomal fraction of M1 cells (an established cell line of myeloid leukemia) was capable of catalyzing acylation of sn-glycerol 3-phosphate by long-chain fatty acyl-CoA thioesters. The principal lipid product formed was identified as phosphatidic acid. Palmityl-CoA, stearyl-CoA, and oleyl-CoA were more effective acyl donors than linoleyl-CoA and arachidonyl-CoA. M1 cells and macrophages differentiated from them exhibited similar levels of sn-glycerol 3-phosphate-acylating activity, which were approximately one-half that in mouse liver and approximately four times that in peritoneal macrophages. The levels of acetyl-CoA carboxylase activity in M1 cells and macrophages differentiated from them were not significantly different from each other and were comparable to those in mouse liver, whereas no activity was detected in peritoneal macrophages. These results indicated that differentiation of the myeloid leukemic cells, which results in loss of leukemogenicity and mitotic activity, is not associated with changes in the activities of these lipogenic enzymes, although the cultured cells exhibited remarkably higher activities than freshly harvested peritoneal macrophages. Furthermore, the present study supports the view that the glycerophosphate pathway makes an essential contribution to the de novo synthesis of phospholipids in M1 cells, as well as in both types of macrophages.

Acetyl-CoA Carboxylase↗

Acetyl-coenzyme-A carboxylase from rat liver. Subunit structure and proteolytic modification.

The subunit structure of rat liver acetyl-coenzyme-A carboxylase has been studied by polyacrylamide gel electrophoresis in the presence of dodecylsulfate. A number of individual preparations of the enzyme purified by the same procedures exhibited three different types of electrophoretic patterns as follows: first, a single slow-moving protein bands (Mr 230000); secondly, two adjacent fast-moving protein band (M4 124000 and 118 000); finally, all three protein bands. With the use of the [14C]biotin-labelled enzyme, the biotinyl prosthetic group was shown to be associated with the polypeptide of 230000 Mr as well as with that of 124000 Mr, but not with the polypeptide of 118000 Mr. Studies were next made with the labelled enzyme to examine the possibility that the two light polypeptides might have been formed by proteolytic modification of the heavy polypeptide during the procedures used for the purification of the enzyme. Treatment of the enzyme with trypsin or chymotrypsin resulted in cleavage of the heavy polypeptide into two nonidentical polypeptides with molecular weights of approximately 120000. Incubation of the enzyme with proteases derived from rat liver converted the heavy polypeptide into lighter polypeptides of 80000-130000 Mr. Acetyl-CoA carboxylase isolated from crude rat liver extracts by means of immunoprecipitation with specific antibody invariably showed only the heavy polypeptide. The biotin content of the enzyme was found to be 1 mol per 237000 g protein. These results indicate that rat liver acetyl-CoA carboxylase, unlike bacterial and plant biotin enzymes, has only one kind of subunit, which has a molecular weight of 230000 and contains one molecular of biotin. Thus, the mammalian enzyme exhibits a highly integrated subunit structure.

Acetyl-CoA Carboxylase↗

Content, synthesis and degradation of acetyl-coenzyme A carboxylase in the liver of growing chicks.

Immunochemical techniques were used to study the mechanism underlying the marked increase in the level of acetyl-coenzyme A carboxylase activity in chick liver observed after hatching. The results of immunochemical titrations and Ouchterlony double-diffusion analysis indicated that this increase in the activity level of the enzyme was due to an elevation in the enzyme quantity. Isotopic leucine incorporation studies revealed that the rate of synthesis of the enzyme per liver was 18-fold higher in 9-day-old chicks than in 1-day-old chicks. In terms of the synthesis rate per gram of liver, this increase was 5-fold. The half-life for degradation of the enzyme in 9-day-old chicks was shown to be 46 h, whereas no apparent degradation of the enzyme as well as of total soluble liver protein was observed in 1-day-old chicks. These results indicate that the increase in the hepatic acetyl-CoA carboxylase content in growing chicks can be ascribed to accelerated synthesis of the enzyme.

Acetyl-CoA Carboxylase↗

[Regulation of lipid synthesis in animal organs].

Studies were made of the mechanisms regulating the quantity and catalytic efficiency of hepatic acetyl coenzyme A carboxylase, which plays a critical role in the control of fatty acid biosynthesis. The microsomal enzyme system responsible for the formation of phosphatidic acid, the initial step in glycerolipid biosynthesis, was resolved into two component enzymes. The acyl-donor specificities of these and other acyltransferases account for the asymmetric fatty acid distribution in naturally occurring glycerolipids.

Acetyl-CoA Carboxylase↗

Separation of 1-acylglycerolphosphate acyltransferase and 1-acylglycerolphosphorylcholine acyltransferase of rat liver microsomes.

1-Acylglycerolphosphate acyltransferase (Ec 2.3.1-) and 1-acylglycerolphosphorylcholine acyltransferase (EC 2.3.1.23) of rat liver microsomes were separated from each other. The separation was achieved by sucrose density gradient centrifugation of the enzyme preparation that was obtained by solubilizing microsomes with a nonionic detergent, Triton X-100, and subjecting the solubilized microsomes to molecular-sieve chromatography. The two acyltransferases are distinguishable from each other also with respect to their stabilities to heat and to Triton X-100. Hence, it is concluded that these acyltransferases are distinct enzymes. These results, together with our previous finding that glycerolphosphate acyltransferase is also a separate enzyme, demonstrate the presence of distinct acyltransferases responsible for the acylation of the different acyl acceptors. Furthermore, the acyl-donor specificities of these acyltransferases provide the enzymatic basis for the nonrandom distribution of fatty acids in naturally occurring glycerolipids.

Acyltransferases↗

Partial purification, properties, and subcellulsr distribution of rat liver phosphatidate phosphatase.

Phosphatidate phosphatase (EC 3.1.3.4Y was purified 15- to 20-fold from the soluble fraction of rat liver. The purification procedure involved calcium phosphate gel adsorption and elution, ammonium sulfact precipitation, and molecular-sieve chromatography. For the enzyme assay, and aqueous dispersion of phosphatidate, rather than "membrane-bound" phosphatidate, was used as substrate. The partially purified enzyme depends almost entirely on the presence of Mg2+ for its activity. Morover, the activity of the enzyme is stimulated by phosphatidylcholine. The enzyme exhibits a high substrate specificity for phosphatidate. The apparent Km for phosphatidate is approximately 0.05 mM. The optimum pH is between 7.4 and 7.6. The enzyme is inhibited by fluoride and by p-chloromercuribenzoate. The subcellular distribution of phosphatidate phosphatase in rat liver was studied by assaying the activity of the enzyme in the presence of Mg2+ and phosphatidylcholine. In contrast ot the results of previous studies, most of the enzyme activity was found in the soluble fraction.

Adsorption↗

Acetyl-coenzyme-A carboxylase in cultured hepatocytes. Effects of exogenous fatty acids on the content, synthesis and degradation of the enzyme.

Studies were made on the content, synthesis and degradation of acetyl-coenzyme-A carboxylase in JTC-25 - P3 cells, hepatocytes which can be maintained in a protein-free and lipid-free chemically defined medium. The addition of corn oil or fatty acid to the medium resulted in a decrease in the activity level of the enzyme without impairing the viability of cells. All the fatty acids tested exhibited this effect, although linoleic acid and oleic acid were more effective than palmitic acid, stearic acid and arachidonic acid. Immunochemical titration and Ouchterlony double-diffusion analysis indicated that the decrease in the activity level of the enzyme observed in cells incubated in medium supplemented with fatty acid can be ascribed to a reduction of the quantity of the enzyme. Isotopic leucine incorporation studies with the use of immunochemical techniques demonstrated that this reduction of the enzyme content is due to a decrease in the rate of synthesis of the enzyme. The rate of degradation of the enzyme was essentially unaffected, the half-life being 25 and 28 h, respectively, in cells incubated in the presence and absence of fatty acid. It was shown that most of the isotopic fatty acid added to the medium was incorporated into cellular phospholipids, while a very small portion of it was recovered in triglyceride and nonesterified fatty acid.

Acetyl-CoA Carboxylase↗