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Biomedical subjects

K D Nakamura

Publications and source records attributed to K D Nakamura.

At least 19 recordsLinked to original sources

Effect of chronic caloric restriction on the synchronization of various physiological measures in old female Fischer 344 rats.

A variety of physiological and behavioral parameters which relate to metabolism were continuously monitored in 18 month old female Fischer 344 rats which were maintained on either ad libitum or reduced calorie diets. Caloric restriction (CR) stimulated average motor activity per day, the duration of each feeding episode, food consumed per episode, and water consumed per gram lean body mass (LBM). However, CR limited total food consumption, feeding time, number of feeding episodes per day, total eating and drinking time, and the daily ratio of food consumed to water consumed, CR also decreased average body temperature per day, O2 consumption, CO2 production, and respiratory quotient. A variety of parameters concerning water consumption were not affected. CR rats ate their food immediately when food was presented during the light span, while ad libitum fed animals ate numerous small meals throughout the entire dark span. An anticipatory response to restricted feeding was also noted. Total motor activity, metabolism, and body temperature increased just prior to scheduled feeding and reached maximum values shortly after feeding, suggesting that these parameters were highly synchronized to feeding. Females and males were found to respond to caloric restriction in a similar fashion. Dramatic changes in respiratory quotient and body temperature suggest rapid shifts between metabolic pathways (glycolysis to gluconeogenesis) to obtain optimal efficiency. Lower body temperature and metabolism may provide protection against DNA damage, thereby increasing the survival potential of restricted rats. These responses may provide insight into the mechanisms by which caloric restriction acts to extend life span.

Aging↗

Altered hepatic microsomal function and elevated protooncogene expression as residual effects in rats exposed to delta-9-tetrahydrocannabinol.

The microsomal activation of the potent hepatocarcinogen aflatoxin B1 (AFB1) and the expression of selected protooncogenes were investigated in the livers of rats exposed to delta 9-tetrahydrocannabinol (THC). At equimolar levels of cytochrome P-450, the microsome-mediated binding of AFB1 to DNA was significantly lower (56% of the controls) in preparations from drug exposed rats. Hepatic expression of the c-k-ras protooncogene was 3-fold higher in THC exposed animals. These results suggest the possible occurrence of long lasting residual effects in the rats exposed to THC.

Aflatoxin B1↗

Proto-oncogene expression during retinoic acid-induced neural differentiation of embryonal carcinoma cells.

Proto-oncogene expression is altered in P19 embryonal carcinoma cells during retinoic acid-induced neuronal differentiation. A transient three- to four-fold increase in erbB proto-oncogene expression and a similar although smaller increase in src expression was observed during the period of time when events committing the cells to differentiate were occurring, but prior to the expression of the differentiated phenotype. During the differentiation phase, the only change was a decrease in myc proto-oncogene expression. These changes were not observed in untreated controls, cell treated with retinoic acid while growing as monolayer cultures or with mutants of P19 which did not undergo neuronal differentiation in response to retinoic acid treatment, suggesting some degree of specificity for neuronal differentiation.

Animals↗

The effect of dietary restriction on myc protooncogene expression in mice: a preliminary study.

The effect of chronic dietary restriction on the expression of the c-myc protooncogene was determined in the livers of a hybrid mouse strain (C57Bl6 x C3H F1 hybrid) at three time points during a 24-h period: 1 h after lights on (1 HALO), 5 h prior to feeding (12 HALO), and 2 h after feeding (19 HALO). In addition, in whole animals studies, changes in core body temperature were monitored. In mice which had been subjected to a chronic diet restriction (60% of the intake of ad libitum controls), c-myc expression was significantly reduced at 1 HALO and 19 HALO compared to corresponding ad libitum animals. In addition, significant differences in c-myc expression were found between time points, in both the ad libitum and restricted groups, suggesting that myc protooncogene expression in the liver may be regulated in a circadian fashion. C-myc expression may correlate with body temperature, suggesting a possible association with metabolic output.

Animals↗

Elevated c-myc expression in progeria fibroblasts.

Protooncogene expression was determined in cultured human fibroblasts derived from donors diagnosed with Hutchinson-Gilford Syndrome (Progeria). An increased level of c-myc expression was noted in progeria cells compared to normal parental controls and unrelated, unaffected, age-matched controls. In two progeria cultures a 150% increase in c-myc expression was observed, while a third progeria culture, subsequently identified as a non-classic progeria showed a 45% increase in c-myc expression. Southern blot analysis did not indicate an amplification or translocation of the c-myc gene. No significant differences were found in the expression of the c-erbB or c-src protooncogenes.

Cells, Cultured↗

Comparison of proto oncogene expression in seven primate fibroblast cultures.

In an interspecies comparison of seven primate species, the expression of the erbB proto oncogene was found to be higher in fibroblasts derived from three relatively long-lived species, the human, gorilla, and chimpanzee than in cells from the orangutan, pygmy chimpanzee, squirrel monkey, or red-bellied tamarin. No significant difference was found in the expression of the ras-K, myc, or src proto oncogenes. The difference would not seem to be the result of age differences of the donor animals as we found little variation in the expression of the four proto oncogenes in human fibroblasts derived from donors ranging in age from newborn to 70 years old. In addition, we found little change in expression of the proto oncogenes during long term in vitro culturing, indicating that in vitro age of the individual cultures was not a significant factor in our results.

Aging↗

Molecular events leading to enhanced glucose transport in Rous sarcoma virus-transformed cells.

Transformation by Rous sarcoma virus results in a dramatic increase in the rate at which the transformed cells transport glucose across the cell membrane. The increased transport rate is a consequence of an increased number of transporters in the transformed cells. Utilizing antibody raised against the purified human erythrocyte glucose transporter, we have identified the glucose transporter as a membrane glycoprotein with a monomer Mr of approximately 41,000. The increased rate of glucose transport is dependent on the activity of pp60src, the transforming protein of Rous sarcoma virus. This protein has been shown to be a protein kinase that phosphorylates on tyrosine residues. We have examined the tyrosine phosphorylation of a major cellular protein of Mr 36,000 in cells infected with a panel of partially transforming mutants of Rous sarcoma virus. One of these mutants (CU2) increases the rate of glucose transport only slightly and does not render the infected cells fully anchorage independent or tumorigenic (although other transformation parameters are fully induced). Cells infected with this mutant display a 36,000-dalton protein that is phosphorylated to a considerably lesser extent than cells infected with wild-type virus. Analyses of this sort may help to identify the cellular targets of pp60src whose phosphorylation is necessary for the increased glucose transport rate.

3-O-Methylglucose↗

Transport of potassium, amino acids, and glucose in cells transformed by Rous sarcoma virus.

Transport rates of a number of nutrients and ions have been surveyed in chicken embryo fibroblasts that were density inhibited, growing exponentially, or transformed by Rous sarcoma virus. All the transport systems examined displayed changes associated with changes in growth rate. The rate of ouabain-sensitive potassium transport declined in density-inhibited cells, and increased rapidly in response to serum stimulation. This transport system was regulated both by changes in the activity of the transporters and by the number of transporters in the cell membrane. The rate of transport of the amino acid analog alpha-aminoisobutyric acid declined when cells became density inhibited, but also showed alterations in regulation that were associated with malignant transformation. The rate of glucose transport displayed both growth state-related and transformation-specific changes. The increased rate of glucose transport seen in transformed cells is due to an increase in the number of glucose transporters in the cell membrane. Increased glucose transport is necessary for subsequent changes in glycolysis, and temporally precedes some of the changes in activity of glycolytic enzymes.

Amino Acids↗

A tumor promoter stimulates phosphorylation on tyrosine.

The tumor promoter 12-O-tetradecanoyl-phorbol-13-acetate is mitogenic for normal chicken embryo fibroblasts and also causes these cells to express transiently many properties of cells transformed by Rous sarcoma virus. Since some mitogenic hormones stimulate a tyrosine-specific protein kinase activity, and since the transforming protein of RSV is a tyrosine-specific protein kinase, we have examined whether TPA also stimulates protein phosphorylation on tyrosine. We report here that TPA treatment of normal cells resulted in a very rapid phosphorylation on tyrosine of a protein peak of Mr 40 to 43 kilodaltons. Thus, a similar biochemical activity (tyrosine phosphorylation) is associated with the action of polypeptide mitogenic hormones, Rous sarcoma virus and a tumor promoter. In addition, TPA treatment resulted in rapid changes in phosphorylation of proteins on serine and threonine.

Animals↗

Phosphotyrosine-containing proteins and expression of transformation parameters in cells infected with partial transformation mutants of Rous sarcoma virus.

We have examined the phosphorylation state of five proteins known to become phosphorylated on tyrosine during transformation by Rous sarcoma virus by using cells infected with a panel of partially transforming mutant viruses. Situations of viral mutant and growth temperature were found in which phosphorylation of some proteins occurred more extensively than that of others, indicating that mutations in the src gene had affected the specificity of pp60src for some of its substrates as well as affecting the activity of the enzyme. To obtain insight into the biological functions of these phosphorylations, comparisons were made between the degree of phosphorylation of these proteins and the expression of various indicators of the transformed phenotype. The data suggest that phosphorylation of proteins l, p, and q (Mr of 46,000, 39,000 and 28,000, respectively) is not sufficient to induce changes in adhesiveness, hexose transport or morphology. The phosphorylation of protein p or l or total phosphotyrosine content correlated well with the production of plasminogen activator, and the phosphorylation of proteins l and q correlated well with increased hexose transport. However, even when good correlations were observed, significant exceptions were sometimes noted. It thus remains possible that some phosphorylations on tyrosine observed in Rous sarcoma virus-transformed cells are not causally related to the expression of the measured parameters of transformation.

Animals↗

Tyrosine phosphorylation of specific proteins after mitogen stimulation of chicken embryo fibroblasts.

We found that stimulation of density-inhibited chicken embryo fibroblasts with serum, epidermal growth factor (EGF), platelet-derived growth factor, (PDGF), or multiplication-stimulating activity (MSA) leads to an increase in tyrosine phosphorylation of proteins in the region of Mr 40,000 (40K) to 42K. The increase in tyrosine phosphorylation after serum or EGF stimulation was transient, reaching a maximum at about 5 min and then declining. By fine-resolution analysis of proteins separated on sodium dodecyl sulfate-polyacrylamide gels, we found that after EGF stimulation, the major increase in phosphotyrosine content was in a 42K Mr protein, with a smaller increase in a 40K Mr protein. The increased phosphorylation in the 40K to 42K Mr region accounted for almost all of the increase in phosphotyrosine observed in these cells. These phosphotyrosine-containing proteins were different from the major phosphotyrosine-containing protein of Rous sarcoma virus-transformed chicken embryo fibroblasts, which migrates at an approximate Mr of 36K. Increased tyrosine phosphorylation of proteins of similar Mr was found in 3T3 cells treated with EGF, but not in NR-6 cells, which lack detectable EGF receptors. It is possible that the 40K to 42K Mr phosphotyrosine-containing proteins are involved in the integration of the biological response to a number of different growth factors.

Animals↗

Cultured cells transformed by Rous sarcoma virus: a genetically defined model and its phenotype.

The mechanism by which Rous sarcoma virus transforms cells is better understood at the molecular level than that of any other oncogenic agent. The gene (src) responsible for transformation has been identified and its nucleotide sequence has been determined. The transforming protein (pp60src) has been identified and an enzymatic activity assigned to it. The unusual enzymatic activity of pp60src (phosphorylation of proteins on tyrosine) has allowed us to identify a large number of putative targets of this protein. And genetic evidence indicates that the phosphorylation of various targets is responsible for generating the various manifestations of the transformed phenotype. What can this model system contribute to understanding of hereditary large bowel cancer? First of all, it provides an intellectual paradigm for analyzing the mechanism by which a single autosomal dominant gene can alter the metabolism and regulatory behavior of a cell. A cellular homolog of src or of some other onc gene could be responsible for hereditary colon cancer. Second, it provides a model for understanding why some "markers" of malignancy are not invariably associated with cancer: since the oncogenic protein can interact with a variety of primary targets giving rise to the various parameters of transformation, not every sort of biological effect need be necessary for malignancy. Third, it points out that the various syndromes which constitute hereditary colon cancer may well be due to a single gene: since mutations in the src gene are capable of generating a variety of distinct phenotypic alterations in infected cells, different from that generated by the wild-type virus, it certainly is conceivable that different alleles of a single transforming gene could give rise to the different types of hereditary colon cancer. Whether this is the explanation for the various forms of hereditary colon cancer, or whether they result from the activities of several different onc genes can only be determined by identification of the gene(s) at the molecular level. Finally, this model system has provided information which may prove useful in improving the specificity of cancer chemotherapy. Since production of plasminogen activator seems to correlate well with growth in soft agar and tumorigenicity, an anti-cancer prodrug which is activated specifically by cells producing plasminogen activator might be selectively toxic to malignant cells. We have in fact synthesized such drugs and shown them to be selectively toxic in vitro to malignant cells (Carl et al 1980). In vivo tests of these agents are in progress.

Avian Sarcoma Viruses↗

Phosphorylation of a 36,000 Mr cellular protein in cells infected with partial transformation mutants of rous sarcoma virus.

We have isolated and characterized mutants of Rous sarcoma virus which induce some parameters of transformation but fail to fully induce other parameters. We believe these mutants code for a pp60src which phosphorylates some targets well but phosphorylates others poorly. Using these mutants, we examined the phosphorylation of a 36,000 Mr protein which is phosphorylated on a tyrosine in cells transformed by Rous sarcoma virus, in an attempt to correlate this phosphorylation with the expression of specific transformation parameters. We found that phosphorylation of the 36,000 Mr protein was neither necessary nor sufficient for loss of fibronectin or for loss of density-dependent inhibition of growth. Phosphorylation of the protein was not sufficient for morphological alterations, increased hexose transport, or loss of adhesiveness. For the parameters measured, the best correlation was with increased plasminogen activator. In addition, it is noteworthy that cells infected with the mutant CU2 displayed low levels of phosphorylation of the 36,000 Mr protein and also were deficient in anchorage-independent growth and tumorigenicity, raising the possibility that the phosphorylation of the 35,000 Mr protein may be required for malignant growth properties.

Animals↗

Identification of phosphotyrosine-containing proteins in untransformed and Rous sarcoma virus-transformed chicken embryo fibroblasts.

Phosphorylation on tyrosine residues mediated by pp60src appears to be a primary biochemical event leading to the establishment of the transformed phenotype in Rous sarcoma virus (RSV)-infected cells. To identify the cellular proteins that undergo tyrosine phosphorylation during transformation, a 32P-labeled RSV-transformed chicken embryo cell extract was analyzed by electrophoresis on a polyacrylamide gel. After slicing the gel into approximately 60 slices, phosphoamino acid analyses were carried out on the protein recovered from each gel slice. Phosphotyrosine was found in every gel slice, with two major peaks of this phosphoamino acid around M(r)'s of 59 and 36 kilodaltons. When the same analysis was performed with cells infected with a transformation-defective src deletion mutant of RSV (tdNY101), significant and reproducible peaks of phosphotyrosine were found in only 2 of 60 gel slices. These gel slices corresponded to M(r)'s of 42 and 40 kilodaltons. Identical results were obtained with normal uninfected chicken embryo fibroblasts. We conclude from these observations that pp60src or the combined action of pp60src and pp60src-activated cellular protein kinases cause the tyrosine-specific phosphorylation of a very large number of cellular polypeptides in RSV-transformed cells. In addition, untransformed cells appear to possess one or more active tyrosine-specific protein kinases which are responsible for the phosphorylation of a limited number of proteins. These proteins are different from the major phosphotyrosine-containing proteins of the transformed cells.

Animals↗

Amino acid transport in normal and Rous sarcoma virus-transformed chicken embryo fibroblasts.

A study was made of the transport of a variety of amino acids by uninfected and Rous sarcoma virus-infected chicken embryo fibroblasts. Following a period of amino acid starvation, transformed, but not normal cells, showed increased levels of transport for alpha-aminoisobutyric acid, proline and alanine, three amino acids which are transported primarily by the A transport system. There was no starvation-induced increase in the transport of leucine, phenylalanine, lysine, or cycloleucine. In the absence of starvation, normal and transformed cells exhibited comparable rates of amino acid transport. Cycloheximide was able to block the increase in uptake. The enhanced uptake was characterized by an increase in Vmax for transport and little change in Km. The data demonstrate that an alteration in the regulation of the A amino acid transport system is an early event in malignant transformation by Rous sarcoma virus. However, since this alteration in made manifest only following a period of starvation, our findings suggest that increased amino acid uptake does not play a role in generating the other manifestations of the transformed state seen in cell culture.

Amino Acids↗

Active transport of exogenous S-adenosylmethionine and related compounds into cells and vacuoles of Saccharomyces cerevisiae.

Saccharomyces cerevisiae 4094-B (alpha, ade-2, ura-1) in potassium phosphate buffer with glucose under aerobic conditions took up (-)S-adenosyl-l-methionine from the medium in sufficient quantity to permit the demonstration of its accumulation in the vacuole by ultraviolet micrography. The same result was obtained with (+/-)S-adenosyl-l-methionine, (+/-)S-adenosyl-d-methionine, and (-)S-adenosyl-l-ethionine. The rate of uptake was slow with (-)S-adenosyl-S(n-propyl)-l-homocysteine and S-adenosyl-d-homocysteine. S-Adenosyl-l-homocysteine was assimilated rapidly, but intracellular degradation precluded accumulation and ultraviolet micrographic studies. The uptake of 5'-methyl-, 5'-ethyl-, 5'-n-propylthioadenosine, and 5'-dimethylsulfonium adenosine was minimal.

Aerobiosis↗