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Biomedical subjects

W Y Cheung

Publications and source records attributed to W Y Cheung.

At least 19 recordsLinked to original sources

Stimulation of myosin light-chain kinase by Cd2+ and Pb2+.

The effect of Cd2+ on myosin light chain kinase (MLCK) reported in the literature is controversial, apparently because the level of Ca2+ contaminating the reaction mixture could not be accurately controlled by the addition of a metal chelator when Cd2+ was also present. In the present study, we have reduced the contaminating Ca2+ to a trace level that did not interfere with the enzyme activity; thus the use of a metal chelator was not necessary. We showed that Cd2+, or Pb2+ had a biphasic effect on MLCK isolated from chicken gizzard: stimulation at low and inhibition at high concentrations. (The stimulatory effect of on the enzyme activity isolated from chicken gizzard: stimulation at low and inhibition at high concentrations). The stimulatory effect of Cd2+ or Pb2+ on MLCK activity was not seen in the absence of calmodulin, and was abolished by trifluoperazine, a calmodulin antagonist, indicating that the heavy metals exert their activation via calmodulin. The inhibition of the enzyme activity by Cd2+ or Pb2+ at higher concentrations was also seen with the calmodulin-independent catalytic fragment of MLCK, suggesting that the inhibition is probably through their binding to sulfhydryl groups that are essential for catalytic activity. Pb2+ was more effective than Cd2+ in stimulating the enzyme activity, but less potent in inhibition. The extent of stimulation by heavy metals most likely resulted from a combination of the biphasic effects. Dithiothreitol and N,N,N',N'-tetrakis (2-pyridylmethyl) ethylenediamine selectively chelated Cd2+ and Pb2+ over Ca2+, and reversed their stimulatory or inhibitory effect on MLCK.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

A family of related sequences associated with (TTTAGGG)n repeats are located in the interstitial regions of wheat chromosomes.

A family of related sequences associated with (TTTAGGG)n repeats has been cloned from the wheat cultivar Chinese Spring. These sequences reveal a high level of polymorphism between wheat varieties when used as restriction fragment length polymorphism (RFLP) probes. Although this family of sequences contains motifs homologous to the repeats in the telomeres of wheat, they are located at interstitial sites on wheat chromosomes.

Blotting, Southern

Long-range physical mapping of the alpha-amylase-1 (alpha-Amy-1) loci on homoeologous group 6 chromosomes of wheat.

Long-range physical maps of the small multigene family of the malt alpha-amylase genes (alpha-Amy-1) located on the long arms of wheat chromosomes 6A (the alpha-Amy-A1 locus) and 6B (alpha-Amy-B1) were generated by pulsed-field gel electrophoresis analysis. By using three methylation-sensitive rare-cutter restriction endonucleases, NotI, NruI and MluI, and an alpha-Amy-1 cDNA probe and four gene-specific genomic probes from the alpha-Amy-B1 locus, the size of the alpha-Amy-A1 locus was estimated to be about 700 kb and of the alpha-Amy-B1 locus to be about approximately 4300 kb. These two maps indicate clustering of GC-rich and C-methylation-sensitive restriction enzyme recognition sites. At least five regions reminiscent of 'CpG islands' are apparent in alpha-Amy-B1, and three in alpha-Amy-A1. Correlation between recombination frequency and physical distance within the alpha-Amy-B1 locus suggests that 1 cM approximates to 1 Mb in physical distance.

Bacterial Proteins

The isolation of high molecular weight DNA from wheat, barley and rye for analysis by pulse-field gel electrophoresis.

A method is presented for the preparation of large DNA molecules from protoplasts embedded in agarose blocks of three different cereals--hexaploid bread wheat (Triticum aestivum), barley (Hordeum vulgare) and rye (Secale cereale). Pulse-field gel electrophoresis (PFGE) analysis of these DNA preparations using a contour-clamped homogeneous field (CHEF) apparatus indicated that the size of the DNA molecules was greater than 6 Mb. DNA samples prepared by this method were shown to be useful for restriction analysis using both frequent and rare cutting enzymes.

DNA

Activation of troponin C by Cd2+ and Pb2+.

Certain heavy metal actions such as Cd2+ and Pb2+ mimic Ca2+ effectively in stimulating calmodulin (CaM). We now show that these cations also activate skeletal muscle troponin C (TnC), a Ca2(+)-binding protein highly homologous to CaM. Like Ca2+, these cations allow TnC to alter its electrophoretic mobility on polyacrylamide gels, and to bind to phenyl-Sepharose. Moreover, they activate TnC to stimulate myofibrillar ATPase. When TnC was removed from the skeletal myofibrils by treatment with trans-1,2-cyclohexanediamine-N,N,N',N'-tetraacetic acid (CDTA), the ATPase activity was no longer stimulated by the cations. However, after reconstitution of CDTA-treated skeletal myofibril with TnC, the response of ATPase to Ca2+, Cd2+ or Pb2+ was restored. These findings suggest that the activation of myofibrillar ATPase by Cd2+ and Pb2+ is mediated through TnC. The ability of the heavy metals to stimulate TnC-supported ATPase activity correlated quite well with the ability to increase the extent of the myofibrillar superprecipitation. The activation of TnC by Cd2+ or Pb2+ could constitute a possible molecular basis for their toxicity.

Adenosine Triphosphatases

Phosphatidylinositol modulates the response of calmodulin-dependent phosphatase to calmodulin.

Phosphatidylinositol (PtdIns) and many other phospholipids activated calmodulin (CaM)-dependent phosphatase in the presence or absence of Ca2+, and the stimulation was more pronounced in the presence of Ca2+. In addition, PtdIns modulated the response of phosphatase to CaM: at low and nonstimulatory concentrations (less than 70 microM), PtdIns augmented the activity of phosphatase by a submaximum concentration of CaM, giving a synergistic effect; and at high concentrations (greater than 100 microM), PtdIns suppressed the synergistic effect. Kinetic experiments indicated that PtdIns (both nonstimulatory and stimulatory concentrations) increased the affinity of phosphatase for CaM. In addition to the CaM regulatory site, phosphatase appears to have two PtdIns regulatory sites: a high-affinity site the occupation of which does not stimulate enzyme activity, and a low-affinity site the occupation of which stimulates enzyme activity in the absence of CaM and inhibits it in the presence of CaM. Modulating the response of phosphatase to CaM is not unique to PtdIns, and was observed with other phospholipids, including some that did not stimulate the enzyme. This raises the possibility that certain phospholipids may regulate phosphatase in two ways: (i) direct activation of the enzyme and (ii) modulation of its response to CaM.

Animals

Calmodulin-dependent phosphatase preferentially dephosphorylates a 28 kDa protein in human platelets.

1. Human platelets contain a calmodulin-dependent phosphatase (calcineurin) that has many properties similar to those of bovine brain calmodulin-dependent phosphatase. 2. The activity of calcineurin phosphatase accounts for a small fraction of the total phosphatase activity in human platelets. 3. Labeling of human platelets with 32P yielded many phosphoproteins. 4. Incubation of a lysate of the 32P-labeled platelets with bovine brain calmodulin-dependent phosphatase led to preferential dephosphorylation of a 28 kDa protein (P28), a minor component of platelet proteins. 5. P28 is one of several proteins that were rapidly labeled upon stimulation of platelets with thrombin. 6. Even though the enzyme is known to catalyze the dephosphorylation of many substrates in vitro, its apparent preference for P28 suggests that its activity is highly selective.

Animals

Demonstration of endogenous inhibitors for the formation of 14,15-oxido-5,8,11-eicosatrienoic acid from phosphatidylinositol in bovine lung extract.

Bovine lung extract contained an enzyme or enzyme system that catalyzed the formation of 14,15-oxido-5,8,11-eicosatrienoic acid from phosphatidylinositol. The enzyme activity increased markedly during the course of purification, apparently due to the removal of two endogenous inhibitors from the enzyme. Using membranes with known molecular weight cut-offs, we estimated the Mr of Inhibitor 1 to be between 10,000 and 100,000 and Inhibitor 2 less than 1,000. Inhibitor 1 appeared to be partially inactivated by trypsin and was heat labile, whereas Inhibitor 2 was resistant to trypsin and was heat resistant. Both inhibitors were hydrophilic.

8,11,14-Eicosatrienoic Acid

The structure and regulation of phosphoglucose isomerase in Saccharomyces cerevisiae.

We have cloned and sequenced the PGI1 gene, encoding phosphoglucose isomerase (E.C.5.3.1.9), from Saccharomyces cerevisiae. The nucleotide sequence predicts subunits of 554 amino acids with a molecular weight of 61,230. Both the size and amino acid composition correlate well with measurements from purified protein. We have compared the PGI1 protein with the predicted sequence for pig muscle PGI. In spite of some evolutionary divergence the proteins are very similar and there are some highly conserved regions, two of which have been implicated in the active site. It has been suggested that PGI exists in two or more isozyme forms in S. cerevisiae and analogy with ADR2/ADC1 suggests that such PGI isozymes might also be differentially regulated during glycolytic/gluconeogenic growth. We have used accurate quantitation of PGI1 mRNA and gene fusions of PGI1 to the lacZ gene of Escherichia coli to show that PGI1 transcription is regulated neither between glycolytic and gluconeogenic growth nor between exponential and stationary phase. The complete lack of PGI activity in PGI1 deletion mutants and of differential regulation suggests that the isozymes of PGI might result merely from processing of the PGI1 gene product.

Amino Acid Sequence

Quantitative subcellular localization of calmodulin-dependent phosphatase in chick forebrain.

Using a radioimmunoassay, we have measured the level of calmodulin-dependent phosphatase (calcineurin) in various subcellular fractions from chick forebrain. Our results revealed high levels of the enzyme in the cytoplasm and microsomes. A considerable amount was also observed in synaptosomes, where it was found exclusively in the synaptoplasm, comprising 0.32% of the total synaptoplasmic protein. Immunocytochemical localization of the phosphatase in isolated synaptosomes supported the biochemical finding. Phosphatase was not detected in nuclei, myelin, synaptic vesicles, and mitochondria. These results suggest that myelin basic protein and histone H1, widely used in biochemical characterization studies of the phosphatase, may not be physiological substrates, and that the cytoplasm, microsomes, and synaptoplasm may prove to be useful sources for the identification of physiological substrates.

Animals

Differential reactivities of lysines in calmodulin complexed to phosphatase.

Calmodulin and calmodulin complexed with calcineurin phosphatase were trace labeled with [3H]acetic anhydride and the incorporation of [3H]acetate into each epsilon-amino lysine of calmodulin was measured. The relative reactivities of calmodulin lysines were higher in the presence of Ca2+ than in the presence of EGTA, and the order was: Lys-75 greater than Lys-94 greater than Lys-148 greater than or equal to Lys-77 greater than Lys-13 greater than or equal to Lys-21 greater than Lys-30. The changes in relative reactivity implied a change in conformation. When calmodulin was complexed with the phosphatase, Lys-21, Lys-77, and Lys-148 were most protected, implying that these residues are at or near the interaction sites or are conformationally perturbed by the interaction. Lys-30 and Lys-75 were slightly protected, lysine 13 showed no change, while lysine 94 significantly increased in reactivity. Comparison with results obtained from myosin light chain kinase using a similar technique (Jackson, A. E., Carraway, K. L., III, Puett, D., and Brew, K. (1986) J. Biol. Chem. 261, 12226-12232) reveals that calmodulin may interact with each of the two enzymes similarly at or near Lys-21, Lys-75, and Lys-148; one difference with phosphatase is that complex formation also involved Lys-77. These findings suggest that calmodulin interacts differently with its target enzymes.

Acetates

Effects of cadmium on human platelet reactions.

Human platelets incubated with Cd2+ took up the cation slowly, and the uptake was speeded up by ionophore A23187. The capacity of human platelets to accumulate Cd2+ was large, equivalent to 10 nmol Cd2+ per mg protein. The effects of Cd2+ on protein phosphorylation and serotonin release of human platelets were studied. Washed platelets incubated with Cd2+ showed a general increase in protein phosphorylation concurrent with a slow release of serotonin. In the presence of ionophore A23187, however, Cd2+ had a biphasic effect on protein phosphorylation: stimulatory at low and inhibitory at high Cd2+ concentrations. The phosphorylation of two proteins with molecular masses close to 43 and 20 kDa was more sensitive to the inhibitory effect of Cd2+, and under similar conditions, the primary effect of Cd2+ on serotonin release was inhibitory, although at lower Cd2+ concentrations a slight stimulation was noted. Thrombin increased the phosphorylation of several proteins, and a prior incubation with Cd2+ further augmented that of a 20 kDa protein, but this treatment did not affect thrombin-induced serotonin release.

Blood Platelets

Formation of cis-14,15-oxido-5,8,11-icosatrienoic acid from phosphatidylinositol in human platelets.

Human platelets contain a soluble enzyme or enzyme system that catalyzes the formation of lysophosphatidylinositol and a compound more polar than arachidonic acid (compound A) from 2-arachidonoyl sn-phosphatidylinositol. Arachidonic acid, 2-arachidonoyl sn-phosphatidylcholine, or 2-arachidonoyl sn-phosphatidylethanolamine did not serve as substrate for the production of compound A. The reaction required Ca2+ and was not affected by aspirin, indomethacin, or mepacrin. Enzyme activity was not enhanced in the presence of NADPH, but it was inhibited greater than 90% by CO or N2; inhibition was readily reversible by exposure to atmospheric air. Neither metapyrone (SKF 525A) nor cyanide, inhibitors of cytochrome P-450, inhibited compound A formation, suggesting that a cytochrome P-450 system was not involved. Thrombin stimulated the formation of compound A in whole platelets; ionophore A23187 did so much less effectively; and other agonists such as collagen, ADP, and epinephrine were ineffective. Compound A exhibited a fragmentation pattern by GC/MS identical to that of authentic cis-14,15-oxido-5,8,11-icosatrienoic acid. Collectively, these data indicate that human platelets may contain an enzyme system that catalyzes the epoxidation of the arachidonic acid moiety of phosphatidylinositol and its hydrolysis to liberate cis-14,15-oxido-5,8,11-icosatrienoic acid.

8,11,14-Eicosatrienoic Acid