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Biomedical subjects

Y Iwasa

Publications and source records attributed to Y Iwasa.

At least 145 records · Page 8Linked to original sources

Multiple specificities of brain Ca2+- and calmodulin-dependent protein kinase for substrate.

The purified Ca2+- and calmodulin-dependent protein kinase from rat brain, which has a M.W. of 120,000 by gel filtration analysis, showed a broad substrate specificity. In addition to myosin light chain from chicken gizzard, the enzyme phosphorylated myelin basic protein, casein and two endogenous substrates in a Ca2+- and calmodulin-dependent manner. In contrast, chicken gizzard myosin light chain kinase exclusively phosphorylated myosin light chain.

Animals↗

Inhibition of bovine brain cyclic nucleotide phosphodiesterase by a proteinaceous factor from Escherichia coli.

An inhibitory factor for Ca2+ and calmodulin-dependent cyclic nucleotide phosphodiesterase of bovine brain was present in the soluble fraction of Escherichia coli. The factor was heat-stable but trypsin sensitive. The activity of brain phosphodiesterase supported by Ca2+ and calmodulin was inhibited by the factor in a dose dependent manner, but the basal activity was not affected. The inhibition of phosphodiesterase induced by the factor could be abolished by adding large amount of calmodulin, but not by increasing concentration of Ca2+. It was suggested that the factor interacted with calmodulin and thereby inhibited the phosphodiesterase. The factor may be a calmodulin-binding protein in E. coli.

3',5'-Cyclic-AMP Phosphodiesterases↗

Occurrence of two types of Ca2+-dependent protein kinases in the cytosol fraction of the brain.

Two types of Ca2+-dependent protein kinases were demonstrated and partially purified from the cytosol fraction of rat brain by DEAE-cellulose, Sephadex G-200, and calmodulin-affinity column chromatography, using endogenous proteins and chicken gizzard myosin light chains as substrates. The molecular weights of the enzymes were 88,000 (peak I) and 120,000 (peak II) on gel filtration. Peak I had no affinity for calmodulin, whereas peak II had a high affinity for it, with a Ka value of 16.7 nM. The Ka values of peaks I and II for Ca2+ were 2.4 and 1.6 microM, respectively.

Animals↗

Calcium-dependent activation of a multifunctional protein kinase by membrane phospholipids.

The proenzyme of a Ca2+-dependent protease-activated protein kinase previously obtained from mammalian tissues (Inoue, M., Kishimoto, A., Takai, Y., and Nishizuka, Y. (1977) J. Biol. Chem. 252, 7610-7616) was enzymatically fully active without limited proteolysis when Ca2+ and a membrane-associated factor were simultaneously present in the reaction mixture. The activation process was reversed by removing Ca2+ with ethylene glycol bis(beta-aminoethyl ether)N,N,N',N'-tetraacetic acid. An apparent Ka value for Ca2+ was less than 5 x 10(-5) M. Other divalent cations were inactive except for Sr2+, which was 5% as active as Ca2+. The factor was almost exclusively localized in membrane fractions of various tissues including brain, liver, kidney, skeletal muscle, blood cells, and adipose tissue. It was easily extractable with chloroform/methanol (2:1), and was recovered in the phospholipid fraction. In fact, this membrane factor could be replaced by chromatographically pure phosphatidylinositol, phosphatidylserine, phosphatidic acid, or diphosphatidylglycerol. Phosphatidylethanolamine, phosphatidylcholine, and sphingomyelin were far less effective under the comparable conditions. Ca2+-dependent modulator protein was unable to support enzymatic activity. The enzyme thus activated showed an ability to phosphorylate five histone fractions and muscle phosphorylase kinase, and appeared to possess multifunctional catalytic activities.

Animals↗

A role of membranes in the activation of a new multifunctional protein kinase system.

A new multifunctional protein kinase, which normally exists as an inactive form in the soluble fraction in mammalian tissues, attaches to membranes to exhibit full enzymatic activity. A low concentration of Ca2+ is absolutely necessary for this activation. This process is reversible. cAMP shows no effect. The active factors in membranes are phosphatidylinositol, phosphatidylserine, phosphatidic acid, diphosphatidylglycerol, and phosphatidylethanolamine in that order. Phosphatidylcholine and sphingomyelin are far less effective. Cytoplasmic as well as other membrane fractions from various tissues are active in supporting the enzymatic activity. A possible role of this Ca2+ and phospholipid-activated protein kinase system in transmembrane control is proposed.

Animals↗