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S A Hawley

Publications and source records attributed to S A Hawley.

8 recordsLinked to original sources

Molecular analysis of cis-regulatory sequences at the alpha-amylase locus in Drosophila melanogaster.

The Amylase locus in Drosophila melanogaster contains duplicate, divergently transcribed structural genes for alpha-amylase, AmyA and AmyB. A sensitive and reliable transient expression assay was developed for testing amylase activities produced by exogenous Amy genes in somatically transformed larvae of an amylase-null strain of flies. Alleles tested, AmyA and AmyB, came from recombinant clone lambda Dm65, which contains genomic DNA from a Canton-S strain. The transient assay was used in a deletion analysis aimed at locating cis-regulatory sequences within the 5' region of AmyB. Results suggest that upstream regulatory sequences for correct spatial expression of AmyA and AmyB in third-instar larvae are located within 446 and 430 bp of their respective starts for transcription. A sequence required for high levels of AmyB expression was located within its 5' upstream region between the base pairs at -332 and -219. AmyA does not appear to have a comparable regulatory element in its 5'-flanking sequence. Barely detectable expression of AmyB was observed when it was flanked by only 92 bp of upstream sequence. A model is proposed for incomplete coordinate control of the duplicate Amy genes.

Amino Acid Sequence

Amylase gene expression in intraspecific and interspecific somatic transformants of Drosophila.

The Amylase locus in Drosophila melanogaster normally contains two copies of the structural gene for alpha-amylase, a centromere-proximal copy, Amy-p, and a distal copy, Amy-d. Products of the two genes may display discrete electrophoretic mobilities, but many strains known to carry the Amy duplication are characterized by a single amylase electromorph, e.g., Oregon-R, which produces the mobility variant AMY-1. A transient expression assay was used in somatic transformation experiments to test the functional status of the Amy genes from an Oregon-R strain. Plasmid constructs containing either the proximal or distal copy were tested in amylase-null hosts. Both genes produced a functional AMY-1 isozyme. Constructs were tested against an AMY-3 reference activity produced by a coinjected plasmid that contains the Amy-d3 allele from a Canton-S strain. With reference to the internal control, the Amy-p and Amy-d genes from Oregon-R expressed different relative activity levels for AMY-1 in transient assays. The transient expression assay was successfully used to test the functional status of Amy-homologous sequences from strains of other species of Drosophila characterized by a single amylase elctromorph, namely, Drosophila pseudoobscura ST and Drosophila miranda S 204. The amylase-null strain of D. melanogaster provided the hosts for these interspecific somatic transformation experiments.

Amylases

Molecular genetics of a three-gene cluster in the Amy region of Drosophila.

Analysis of amylase RNA levels in the anterior and posterior midgut regions of flies from the Amy1,6 mapA and c Amy2,3 mapC strains of D. melanogaster, reared on yeast and on yeast supplemented with glucose, indicates that the trans-acting map gene controls the abundance of amylase RNA tissue-specifically, i.e., in the adult posterior midgut. This is consistent with the view that its role in controlling Amy expression is that of a transcription factor. Dietary glucose represses Amy expression in the anterior and posterior midgut regions of adults, reducing the abundance of amylase RNA, which suggests that it also controls Amy transcriptional activity. However, the mechanism for glucose repression appears to act systemically in the midgut, in a manner that is independent of the effects of map on Amy expression. A new glucose repressible TU was identified that is located just proximal to the Amy locus in region 54A of polytene chromosome 2R. It is transcribed in the direction opposite to that of the proximal Amy gene and encodes an RNA about 1500 bases long. Its RNA is expressed in both larvae and adults of the above strains of D. melanogaster, but the nature of the product it encodes is unknown. We speculate that all three genes in the cluster at 54A, namely the two Amy gene copies and the new glucose repressible TU, are coordinately controlled by the same mechanism that regulates Amy gene expression in response to dietary glucose. Somatic transformation experiments suggest that 5' cis-regulatory mechanisms required for the correct spatial expression of the proximal and distal Amylase genes from a Canton-S strain of D. melanogaster, Amy-p1 and Amy-d3, are located within 450 bp and 463 bp of their respective translation start sites. These regions also contain sequences responsive to dietary glucose repression, which is mediated at the DNA level of exogenous Amy genes in somatically transformed larvae reared on a yeast + glucose diet. A positive activator is located in the upstream region of Amy-d3 between the nucleotide pairs at -365 and -252 from the translation start site, but a comparable activator does not appear to exist in the upstream region of Amy-p1. Deletion analysis of the 5' sequence flanking the coding region of Amy-d3 indicates 125 nucleotide pairs of flanking DNA is sufficient for its functional activity. A model is proposed for coordinate control, in part, of the duplicated Amy genes.

Amylases

Structural organization of the alpha-amylase gene locus in Drosophila melanogaster and Drosophila miranda.

Chromosomal sites belonging to the alpha-amylase gene family have been identified in D. melanogaster and D. miranda and in the sibling species of miranda, pseudoobscura, and persimilis. Two sites occur in chromosome 2 of melanogaster; one contains the Amy gene locus (54A) and the other an amylase "pseudogene" (53CD). Two sites of homology exist at 73A and 78C and perhaps another at 81BC in chromosome 3 of pseudoobscura and persimilis and in the homologous regions of the X2 chromosome in miranda. The active Amy locus is apparently at 73A. The structural organization of cloned sequences from this multigene family in melanogaster and miranda is under analysis, with emphasis on the functional Amy gene region. Electrophoretic variants of amylase have served as invaluable tools in these studies. For melanogaster, their use as genetic markers enabled us to positively identify our lambda Dm65 clone of the Amy locus and to show that it contains two functional copies of the structural gene for alpha-amylase. Amylase isozymes are now being used in P element-mediated transformation experiments aimed at defining regulatory elements for the temporal and spatial control of amylase expression during development and in response to dietary glucose. In miranda, electrophoretic variants of amylase were useful in assigning the Amy locus to chromosome X2, and they continue to serve as essential markers in our study of the evolution of dosage compensation for amylase expression in males of this species. Restriction maps of the Amy locus in 7 strains of D. melanogaster indicate that despite the worldwide origins of the chromosome samples, all contain a duplication of the amylase structural gene at this locus regardless of whether they produce two alpha-amylase isozymes, a single variant, or none. We have aligned these maps with the genetic and cytological maps of chromosome 2R in melanogaster and assigned alleles for different amylase isozymes to either the proximal or distal Amy gene copy in a number of strains. Restriction site polymorphism is relatively limited at the Amy locus, but some strain-specific rearrangements exist. The locus of two strains with reduced amylase activity, Amy1 (CA 1) and Amy "null", contain anomalies--an insertion in the former and an inversion in the latter. Causal relationships are being sought between the level of amylase expression in these strains and the position of their respective anomalies.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

An electrophoretic study of reversible protein denaturation: chymotrypsinogen at high pressures.

When reversible denaturation of chymotrypsinogen is produced at elevated hydrostatic pressures, conformational relaxation can occur quite slowly, allowing electrophoretic separation of the principal states from the equilibrium mixture. In this work we report experimental concentration distribution patterns obtained at pH 2.03 at a temperature of 20.5 degrees and find them to be reasonably consistent with the behavior that is expected from a simple two-state isomerism. However, the results do not at all rule out the existence of low levels of intermediate states.

Chymotrypsinogen