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J H Postlethwait

Publications and source records attributed to J H Postlethwait.

At least 73 records · Page 4Linked to original sources

Purification and characterization of acid phosphatase-1 from Drosophila melanogaster.

Acid phosphatase-1 (orthophosphoric monoester phosphohydrolase, acid optimum, EC 3.1.3.2), the major phosphatase in adult Drosophila melanogaster, has been purified to apparent homogeneity. The final product is a glycoprotein homodimer with a subunit molecular weight of about 50,000, as measured by its electrophoretic mobility in denaturing conditions on polyacrylamide gels containing sodium dodecyl sulfate. It has a turnover number of 1720 1-naphthyl phosphate molecules hydrolyzed/s by each acid phosphatase-1 molecule at 37 degrees C, pH 5.0. An average fly contains about 5 ng of enzyme. Pure acid phosphatase-1 displays heterogeneity in isoelectric focusing, with a major band at pH 5.3. The enzyme hydrolyzes a wide variety of phosphate monoesters, including AMP, glucose 6-phosphate, ATP, choline phosphate, or phosphoproteins. The maximum reaction rates are different for all substrates, and some substrates appear to inhibit the reaction at high substrate concentrations. The Michaelis constants for 1-naphthyl phosphate and p-nitrophenyl phosphate are 79 microM and 68 microM, respectively, at pH 5.0 and 37 degrees C. The optimum pH level for 1-naphthyl phosphate is 4.5. Acid phosphatase-1 is inhibited by L(+)-tartrate (but not D(-)-tartrate), phosphate, and fluoride. The reaction rate increases 2.1-fold for every 10 degrees C rise in temperature. Above 48 degrees C, the rate of thermal denaturation is greater than the rate of the enzyme reaction.

Acid Phosphatase↗

Genetic analysis of the hormonally regulated yolk polypeptide genes in D. melanogaster.

To initiate a genetic study of the hormonal regulation of genes coding for the three vitellogenins or yolk polypeptide precursors (YPs) in Drosophila, we have isolated from wild flies genetic variants which alter the mobility in SDS-PAGE of each YP independently. These variants are expressed codominantly and they are sex-linked: Yp1 and Yp2 map to region 8E to 9B1 (locus 30) and Yp3 is in 12A6-7 to 12D3 (locus 44). The amount of each YP synthesized and secreted into the hemolymph is related to the dosage of the above regions, suggesting that the structural genes are in those intervals. These experiments raise the question of the functional role of the proximity of Yp1 and Yp2 and provide a mechanism for a search for mutations altering the hormonally regulated function of these three genes.

Animals↗

Endocrine control of vitellogenesis in Drosophila melanogaster: effects of the brain and corpus allatum.

The endocrine control of yolk deposition in Drosophila melanogaster was studied by ligation and transplantation techniques. Endocrine events associated with the initiation of vitellogenesis were found to be synchronized with eclosion rather than the completion fo adult development. Decapitation experiments showed that a cephalic event occurring at about the time of eclosion is necessary for each animal to initiate vitellogenesis. The morphogenetic effect of the head could be replaced by a juvenile hormone analog (JHA). In addition to the cephalic event, a thoracic factor is required for each follicle to initiate vitellogenesis, since preparation of isolated abdomens before 16 hours after eclosion prevented vitellogenesis. In abdomens isolated after this time, no early vitellogenic stages were formed. The suppression of vitellogenesis in isolated abdomens was reversed by implanting corpora allata or by treating these preparations with JHA, but not by implanting corpora cardiaca. Ovaries that were artificially induced to mature by treating isolated abdomens with JHA still displayed the normal complement of ovarian proteins after electrophoresis in polyacrylamide gels. These results show that a circadian clock triggers vitellogenesis via a cephalic signal at eclosion, which in turn triggers events in the thorax or abdomen. The cephalic signal can be superseded by juvenile hormone, whose presence is necessary for each follicle to become vitellogenic.

Animals↗

Development in genetic mosaics of aristapedia, a homoeotic mutant of Drosophila melanogaster.

Development of the homoeotic mutation, aristapedia (ss(a)), was investigated by means of genetic mosaics. The wild-type alleles of aristapedia and the bristle markers yellow, singed, and forked were removed from cells at different times in development by X-ray induced somatic crossing-over. The phenotype of the resulting clones was examined in order to ascertain whether it was leg or antenna. The y sn f; ss(a) clones showed a leg phenotype if induced before the mid-third instar, but showed an antennal phenotype if induced after this time. Late non-expression of ss(a) may be due either to an influence of surrounding ss(+) tissues on the small ss(a) clones, or to a persistence of the effect of ss(+) for one or two cell generations after it is removed from a cell line.

Alleles↗