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Biomedical subjects

Y Levin

Publications and source records attributed to Y Levin.

At least 37 records · Page 2Linked to original sources

Should electroconvulsive therapy be used as an ambulatory preventive treatment?

Electroconvulsive therapy (ECT) has often been withheld from patients in many instances, even when it was the preferred form of psychiatric treatment. From clinical, social, and legal points of view, it is associated with many negative connotations. This paper reviews the use of ECT as a "legitimate" form of long-term ambulatory preventive treatment for psychiatric patients who have previously received it during hospitalization. Attempts to terminate or reduce the frequency of ECT treatments may well be the cause for readmission or exacerbation of an acute attack in patients already in remission who have been discharged.

Ambulatory Care↗

Physostigmine improves ECT-induced memory disturbances.

Electroconvulsive therapy (ECT) induces transient confusion and amnesia. Using a double-blind crossover method we studied the influence of physostigmine on ECT-induced memory disturbances. We found that physostigmine reverse the impairment of verbal and visual short- and long-term memory after ECT. Immediate recall was neither impaired by ECT nor improved by physostigmine.

Adolescent↗

Twentyfold increase in alkaline phosphatase activity by sequential reversible activation of the enzyme followed by coupling with a copolymer of ethylene and maleic anhydride.

Alkaline phosphatase, APase, (EC 3.1.31) from calf intestine, after shifting the equilibrium by effector molecules towards the dimeric form of the enzyme, was coupled (ratio 1:2, protein: copolymer) to a copolymer of ethylene and maleic anhydride, EMA. The water-soluble APase-EMA was separated from APase and the unbound EMA by DEAE-cellulose ion exchange chromatography. The specific activity of the APase-EMA, compared to APase, increased 26-fold at pH 7.1 and 10-fold at pH 8.6. The pH optimum of APase-EMA was shifted down from pH 9.5 (native APase) to 8.6. This change could be interpreted in terms of polyelectrolyte theory. APase-EMA retained 50-70% of its optimum activity in the pH range 7-8, while APase retained only 5-15% of its optimum activity within the same pH range. Its isoelectric point, pI, was 4.2 (APase 6.0) and it migrated on polyacrylamide gel electrophoresis in a single band, anodic movement twice as fast as APase. Parallel with the kinetic measurements, the reactive-enzyme sedimentation method was used to measure S20,w values. S20,w values obtained for APase-EMA, activated APase, and APase dialyzed against water were 6.56S, 6.46S, and 5.17S, respectively. Molecular weights, Mr, were determined by equilibrium sedimentation: the values obtained were 180,000, 160,000, and 84,500. Mr values of APase-EMA and APase (native) estimated by Sepharose-4B gel filtrations were essentially the same. The above-mentioned values remained unchanged for APase-EMA after intensive dialysis against water, whereas for the activated APase, separation from the effector molecules caused the equilibrium to shift back to the monomeric, very slightly active enzyme with concomitant changes of S20,w to 5.15 and Mr to 82,000.

Alkaline Phosphatase↗

Isolation and characterization of the subunits of human plasma carboxypeptidase N (kininase i).

Carboxypeptidase N (kininase I, arginine carboxypeptidase; EC 3.4.17.3) cleaves COOH-terminal basic amino acids of kinins, anaphylatoxins, and other peptides. The tetrameric enzyme of Mr 280,000 was purified from human plasma by ion-exchange and arginine-Sepharose affinity chromatography. Treatment with 3 M guanidine dissociated the enzyme into subunits of 83,000 and 48,000 molecular weight, which were separated and purified by gel filtration or affinity chromatography. When tested with hippurylarginine, hippurylargininic acid, benzoylalanyllysine, or bradykinin, the Mr 48,000 subunit was as active as the intact enzyme and was easily distinguished from human pancreatic carboxypeptidase B (EC 3.4.17.2). However, the Mr 48,000 subunit was less stable at acid pH or at 37 degrees C than the intact enzyme was. The carbohydrate-containing Mr 83,000 subunit was enzymatically inactive but stabilized the Mr 48,000 subunit at 37 degrees C. Trypsin, plasmin, and plasma or urinary kallikrein cleaved carboxypeptidase N into lower molecular weight active fragments, which were unstable at 37 degrees C. Cleavage of the Mr 48,000 subunit with the same enzymes increased activity and yielded fragments of Mr 29,000 or less. Antibodies to the Mr 83,000 of Mr 48,000 subunits crossreacted with the intact enzyme, and antibody to carboxypeptidase N also recognized both subunits. However, antibody to the Mr 83,000 subunit did not recognize Mr 48,000 subunit and antibody to the Mr 48,000 subunit did not crossreact with the Mr 83,000 subunit. Thus, this study indicates that carboxypeptidase N is composed of two immunologically distinct subunits, a Mr 48,000 subunit that is responsible for the enzymatic activity and a Mr 83,000 subunit that may stabilize the enzyme in blood.

Carboxypeptidase B↗

Purification and characterization of Aspergillus niger exo-1,4-glucosidase.

A specific exo-1,4-glucosidase (1,4-alpha-D-glucan glucohydrooase, EC 3.2.1.3) from Aspergillus niger has been partially purified and subsequently characterized by biochemical, physico-chemical and optical methods. Molecular sieve chromatography yields an enzyme with maximal activity at pH 4.2-4.5 close to its isoelectric point. Reduction and carboxymethylation leads to complete loss of activity and O-acetylation of 3 of the 13 tyrosine residues results in loss of 20 % of the activity. Sodium dodecylsulfate-polyacrylamide gel electrophoresis indicates that the native enzyme consists of two major components of molecular weights 63 000 and 57 500, respectively. Small amounts of dissociated material of molecular weight 28 000 and 16 000 as well as aggregates of the order of 100 000 are also present to the extent of 2-5% of the total potein. Following reduction and carboxymethylation under forcing conditions, the bands around 60 000 diminish and the 28 000-30 000, 16 000 and aggregate bands are dominant...

Amino Acid Sequence↗