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Biomedical subjects

I M Jeng

Publications and source records attributed to I M Jeng.

7 recordsLinked to original sources

Irreversible inactivation of diacylglycerol kinase-II requires a mediator.

Cytosolic diacylglycerol kinase was irreversibly inactivated by 5'-AMP since the enzyme remained less active after the removal of 5'-AMP by P-10 gel chromatography. The inactivation was time-dependent, suggesting the involvement of a covalent bond modification. A reconstitution experiment detected a rat brain cytosolic mediator for the effect of 5'-AMP. A protein kinase rich fraction prepared from rat liver was also capable of restoring the sensitivity of diacylglycerol kinase-II to 5'-AMP. We propose that 5'-AMP-activated protein kinase is the mediator which inactivates diacylglycerol kinase-II, possibly by phosphorylation.

Adenosine Monophosphate

Indirect inactivation of rat brain cytosolic diacylglycerol kinase by nucleoside-5'-monophosphate.

Cytosolic diacylglycerol kinase was inhibited drastically by nucleoside monophosphate. The inhibition was relatively specific for adenosine-5'-monophosphate (5'-AMP), although uridine-5'-monophosphate was also effective. The effect of 5'-AMP on diacylglycerol kinase appeared to be indirect since the degree of inhibition lessened with the dilution of the cytosol and the more purified enzyme failed to respond to 5'-AMP. A 5'-AMP-dependent mediator is proposed to be involved in the inactivation of diacylglycerol kinase.

Adenosine Monophosphate

Quantitative benedict test using bicinchoninic acid.

Cupric ion (Cu2+), in complex form, functions as a selective oxidizing agent for a variety of compounds in the qualitative Benedict test. Cupric ion is reduced to cuprous ion (Cu+) in the reaction. We found that the cuprous ion formed in this type of redox reaction could be detected and quantified using 2,2'-bicinchoninic acid. This reagent produced an intense purple complex with cuprous ion. The color development in this modified Benedict test was dependent on pH, temperature, and time. The reaction is insensitive to ethanol and sodium dodecyl sulfate. This improved method of the Benedict test has enhanced sensitivity and makes the quantitation of compounds possible. This method should be useful for studies of Benedict-positive compounds which are available only in small amounts.

Biochemistry

An endogenous regulator of diacylglycerol kinase.

During the initial steps of the subcellular fractionation of rat brain homogenate, we recovered more than 100% of diacylglycerol kinase activity. The unusually high yields prompted us to examine the possibility that we had removed an endogenous inhibitor from diacylglycerol kinase during those steps. Our study revealed the existence of a potent inhibitor of diacylglycerol kinase in the crude synaptosomal-mitochondrial fraction (P2 pellet). The inhibitory substance was water soluble upon organic solvent extraction. The inhibitory activity of the substance was retained after extensive dialysis, suggesting the macromolecular nature of this compound. This substance may represent an important physiological regulator of diacylglycerol kinase.

Animals

Inhibition of rat diacylglycerol kinase activity by synthetic L-lysine containing polypeptides.

We investigated whether or not synthetic polymers of amino acids affected the activity of rat diacylglycerol kinase. Among all the polypeptides of amino acids tested, only the polymers containing significant amounts of basic amino acid residues inhibited diacylglycerol kinase activity. Poly-L-lysine was a better inhibitor than poly-L-arginine. Both the density of positive charge and the nature of spacing amino acids of the inhibitory peptides were determining factors in interacting with the enzyme. Various polyamines were ineffective. Our observation indicated that the activity of diacylglycerol kinase might be controlled by a site which binds to a polycation.

Animals

Purification and properties of 3-keto-5-aminohexanoate cleavage enzyme from a lysine-fermenting Clostridium.

The lysine-fermenting Clostridium SB4 is shown to contain a new type of beta-keto acid-degrading enzyme that converts 3-keto-5-aminohexanoate and acetyl-CoA reversibly to L-3-aminobutyryl-CoA and acetoacetate. Following the development of a sensitive radiochemical assay the enzyme was purified 175-fold to about 90% homogeneity in 44% yield. The specific activity of the purified enzyme is 44 IU/mg of protein at 30 degrees. The equilibrium constant for the forward reaction was found to be 0.68 at 30 degrees and pH 7.0, corresponding to a deltaG0' of 0.23 kcal/mol. The enzyme is highly substrate-specific. Of several substrate analogs tested in the forward and back reactions only beta-alanyl-CoA and D-3-aminobutyryl-CoA are utilized about 130% and 1.7% as fast as L-3-aminobutyryl-CoA, respectively. The product formed from beta-alanyl-CoA and acetoacetate is a neutral beta-keto acid, presumably 3-keto-5-aminopentanoic acid; its borohydride reduction product was partially characterized as a hydroxy-amino acid by various chromatographic and ion exchange methods. The activity of the purified enzyme is increased about 5-fold by addition of 0.1 mM Co2+ and to a lesser extent by Mn2+. Activity is inhibited by orthophosphate, thiol reagents, and EDTA; however, exposure of the enzyme to the latter compound prior to addition of Co2+ increases activity, presumably by removing competing divalent cations. Tracer experiments have shown that carbon atoms 1 and 2 of acetoacetate are derived from carbon atoms 1 and 2 of 3-keto-5-aminohexanoate whereas carbon atoms 3 and 4 are derived from acetyl-CoA. The amino acid moiety of 3-aminobutyryl-CoA is derived from carbon atoms 3 to 6 of 3-keto-5-aminohexanoate. Since no evidence for covalent enzyme-substrate intermediates could be obtained by the study of four possible group exchange reactions, a concerted reaction between 3-keto-5-aminohexanoate and acetyl-CoA is considered. The enzyme has a molecular weight of about 97,000 and probably contains four identical subunits. The relatively high specific activity of the enzyme in extracts of Clostridium SB4 indicates it functions in the main pathway of lysine degradation. This relatively stable enzyme provides a convenient and specific method for the quantitative estimation of nanomolar amounts of L- and D-3-aminobutyryl-CoA and beta-alanyl-CoA.

Aminocaproates