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At least 109 records · Page 6Linked to original sources

Simultaneous demonstration of nonspecific esterase and chloroacetate esterase in human blood cells.

A new cytochemical method is described for the simultaneous demonstration of nonspecific esterase in monocytes and chloracetate esterase in granulocytes. The procedure uses both alpha-naphthyl butyrate and naphthol AS-D chloroacetate as substrates and hexazotized pararosaniline as the coupler. The enzyme reaction products are highly chromogenic and their localization is precise. This method is potentially useful for the accurate diagnosis of the acute monocytic leukemias. Its advantages and limitations are also discussed.

Acute Disease↗

Esterase-26 (ES-26): characterization and genetic location on chromosome 3 of an eserine-sensitive esterase of the house mouse (Mus musculus).

Genetic variation of a codominantly inherited esterase, designated ES-26, has been discovered in the house mouse using isoelectric focusing in polyacrylamide gels. The ES-26A phenotype (pI 8.2) was found in C57BL/10Sn. A/J showed the ES-26B phenotype (pI 7.8-7.9). A third phenotype, ES-26C (double-banded: pI's 8.1 and 8.3), was observed in SJL/J. ES-26 was detected only in liver, stomach, and small intestine. The enzyme was shown to be controlled by the presumed structural locus Es-26, located on chromosome 3. From a four-point cross, the gene order Car-2--6.2 +/- 2.7--Es-16--21.0 +/- 4.5--Es-26--13.6 +/- 3.8--Amy-1 was established.

Animals↗

The effects of Mg2+ on certain steps in the mechanisms of the dehydrogenase and esterase reactions catalysed by sheep liver aldehyde dehydrogenase. Support for the view that dehydrogenase and esterase activities occur at the same site on the enzyme.

Stopped-flow experiments in spectrophotometric and fluorescence modes reveal different aspects of the aldehyde dehydrogenase mechanism. Spectrophotometric experiments show a rapid burst of NADH production whose course is not affected by Mg2+. The slower burst seen in the fluorescence mode is markedly accelerated by Mg2+. It is argued that the fluorescence burst accompanies acyl-enzyme hydrolysis and, therefore, that Mg2+ increases the rate of this process. Experiments on the hydrolysis of p-nitrophenyl propionate indicate that acyl-enzyme hydrolysis is indeed accelerated by Mg2+ and a combination of Mg2+ and NADH. Vmax. values for p-nitrophenyl propionate hydrolysis in the presence of NADH and NADH and Mg2+ agree closely with the specific rates of acyl hydrolysis from the E . NADH . acyl and E . NADH . acyl . Mg2+ complexes seen in the dehydrogenase reaction with propionaldehyde. These observations support the view that esterase and dehydrogenase activities occur at the same site on the enzyme. Other evidence is presented to support this conclusion.

Aldehyde Dehydrogenase↗

Genetic variation and biochemical properties of esterase-18 (ES-18) in the laboratory rat (Rattus norvegicus): a new locus of esterase cluster 2 in linkage group V.

A new liver-specific rat carboxylesterase isozyme (EC 3.1.1.1) designated esterase-18 (ES-18) is described. Genetic variation of ES-18 was examined in 93 inbred strains and substrains and a structural locus Es-18 was suggested, coding for either the presence (Es-18a) or the absence (Es-18b) of the isozyme. Linkage studies involving two backcross series revealed that Es-18 resides in cluster 2 of LGV. No recombination between Es-18 and other cluster 2 loci was found in 19 lines of two RI strain sets or in the backcross series.

Animals↗

Linkage group V of platyfishes and Swordtails of the genus Xiphophorus (Poeciliidae): linkage of loci for malate dehydrogenase-2 and esterase-1 and esterase-4 with a gene controlling the severity of hybrid melanomas.

Electrophoretic variations ascribable to three enzyme loci coding for esterase-1 and -4 (ES1 and ES4) and a malate dehydrogenase-2 isozyme (MDH2) were studied in interspecific backcrosses of fishes of the genus Xiphophorus (Poeciliidae). Normal segregation was demonstrated for all three loci. Linkage analyses indicated a gene order of ES1-6%-ES4-33%-MDH2. This group [designated linkage group (LG) V] was shown to assort independently from the 11 loci comprising LG's I-IV and from 18 other informative markers, with the limits of the data. A factor controlling the extent of development of inherited melanomas was demonstrated to be associated only with LG V loci, implying predominant control by a single gene, which probably determines the completeness of differentiation of macromelanophores in hybrids. Possible explanations for variability in the apparent chromosomal position of the melanoma severity gene, as assessed by estimates of recombination with the LG V enzyme loci, are discussed.

Animals↗