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Biomedical subjects

J Kay

Publications and source records attributed to J Kay.

At least 289 records · Page 16Linked to original sources

Incorporation of choline and ethanolamine into phospholipids in germinating soya bean.

1. Incorporation of [Me-14C]choline and [2-14C]ethanolamine into lipids was studied in germinating soya bean (Glycine max L.) seeds. The precursors are only incorporated into phosphatidylcholine and into phosphatidylethanolamine respectively. 2. Base-labelling via a phospholipase-D type of reaction was eliminated as a significant factor. 3. Cyclo heximide inhibited labelling of phosphatidylcholine from [Me-14C]choline but did not affect labelling of the aqueous choline pool. It had no effect on [2-14C]ethanolamine uptake or incorporation into phosphatidylethanolamine. 4. Hemicholinium-15 at 10mM concentrations decreased uptake and lipid labelling from the both bases. 5. There was no evidence for base competition. 6. The endogenous pool of choline was much larger than that of ethanolamine, which resulted in higher specific radioactivities for phosphatidyl-ethanolamine than for phosphatidylcholine. 7. The results can be interpreted as indicating that the kinase and phosphoryltransferase enzymes of the CDP-base pathways are separate for each phospholipid.

Chloramphenicol↗

Interaction of pepstatin with pig pepsinogen.

In contrast with pepsin, pepsinogen does not bind pepstatin at pH values between 5.3 and 2.5. Pepsinogen is not retarded by pepstatin immobilized on to aminohexyl-Sepharose at pH5.3 or 4.1, whereas at pH3.0 activation takes place during the chromatography, with retardation of the resultant pepsin.

Amino Acids↗

Conversion of pepsinogen into pepsin is not a one-step process.

By incubation of pepsinogen with pepstatin at pH2.5, the first 'active' protein generated on activation is trapped in an inactive complex. The first activation peptide liberated has been identified as residues 1-16 from the pepsinogen sequence. This suggests a sequential mechanism rather than a one-step formation of pepsin.

Amino Acid Sequence↗

Complete enzymic digestion of acidic proteins.

Acidic proteins are usually resistant to complete enzymic hydrolysis. The increasing number of "unusual" amino acids, which are unstable to acid hydrolysis, makes it necessary to have a method of enzymic hydrolysis applicable to all proteins. The complete hydrolysis of four acidic proteins by subtilisin plus leucine amino-peptidase plus prolidase followed by carboxypeptidase C, is described. Recoveries of amino acids were in excellent agreement with the expected content from the known sequences.

Amino Acids↗

An active site peptide from pepsin C.

Porcine pepsin C is inactivated rapidly and irreversibly by diazoacetyl-dl-norleucine methyl ester in the presence of cupric ions at pH values above 4.5. The inactivation is specific in that complete inactivation accompanies the incorporation of 1mol of inhibitor residue/mol of enzyme and evidence has been obtained to suggest that the reaction occurs with an active site residue. The site of reaction is the beta-carboxyl group of an aspartic acid residue in the sequence Ile-Val-Asp-Thr. This sequence is identical with the active-site sequence in pepsin and the significance of this in terms of the different activities of the two enzymes is discussed.

Amino Acid Sequence↗

Objectives to direct the training of emergency medicine residents on off-service rotations: psychiatry.

Objectives for Emergency Medicine residents on a Psychiatry rotation is the 33rd article in this continuing series of off-service objectives. Psychiatric presentations, including substance abuse and violent behavior, are ubiquitous in the emergency department. In addition, psychological issues influence every aspect of clinical care. A psychiatry rotation can be valuable in emergency medicine training. This experience can be enhanced by clearly defined learning objectives in clinical psychiatry.

Curriculum↗