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D B Roberts

Publications and source records attributed to D B Roberts.

At least 37 records · Page 2Linked to original sources

Binding of bacterial lipopolysaccharide to murine lymphocytes.

Does LPS activate lymphocytes by binding to a specific cell-surface receptor or by nonspecific hydrophobic interaction with the plasma membrane? We examined this question by detecting cell-bound LPS using immunofluorescence microscopy and radiobinding techniques. LPS binding to splenic lymphocytes from C3H/St mice has characteristics of specific binding: saturability with respect to dose and time, selectivity for a subclass of B-cells, and a correlation between binding and mitogenesis. 125I-labeled LPS bound to cells and analyzed quantitatively by SDS-PAGE separated into 3 major components: peaks 1, 2, and 3 (1 equals the fastest moving). Lymphocytes preferentially bound peak 1, murine RBC peaks 1 and 2, and macrophages peak 2. In contrast, specific antibody preferred peaks 2 and 3. Differential staining of gels suggested that peak 3 is carbohydrate-rich and peak 1 is lipid-rich. LPS was released from these cells at different rates. We conclude that selectivity of LPS binding may be reflected in preferential binding of LPS subunits of different size and/or composition, as well as differential retention of bound LPS.

Animals↗

Purification of the mRNAs encoding the subunits of larval serum proteins 1 and 2 of Drosophila melanogaster.

The messenger RNAs for the four subunits of larval serum proteins (LSPs) 1 and 2 were purified from third instar fat body total RNA by fractionating oligo(dT)-selected RNAs on the basis of size. Translations of RNA fractions in vitro showed that the LSP mRNAs were free of other fat body messenger activities, but they could not be completely resolved from each other. The molecular weights of the LSP mRNAs, estimated from their electrophoretic mobilities in 50% formamide/1.4% agarose gels, ranged from 1.0 X 10(6) to 1.35 X 10(6). These estimates are at least 20% larger than the size of RNA necessary to encode each LSP polypeptide.

Adipose Tissue↗

Quantitative in situ hybridization reveals extent of sequence homology between related DNA sequences in Drosophila melanogaster.

Cloned DNA from the larval serum protein one (LSP-1) genes was hybridized to polytene chromosomes of D. melanogaster. The ratio of grains deposited over any two of the three LSP-1 genes with any one LSP-1 subunit probe was constant. Varying the gene dose of any one LSP-1 subunit relative to the others by up to six fold gave a linear relationship of grain ratios to gene ratios. We show that these constant ratios closely reflect the extent of sequence homology between the genes as determined by heteroduplex mapping (Smith et al., 1981) and thermal denaturation studies. The results obtained demonstrate that the LSP-1 subunit genes are present in equal copies in the genome.

Animals↗

Comparison of the larval serum proteins of Drosophila melanogaster using one and two-dimensional peptide mapping.

Immunological data, amino acid composition, and coordinate control during development suggest that the alpha, beta and gamma subunits of the major protein of Drosophila larval serum (LSP-1) are coded for by genes which evolved by replications of an ancestral gene followed by mutation. In order to test this hypothesis, and to study the relationship of these genes with that coding for the second major larval serum protein subunits. One-dimensional maps generated by three different proteases showed many similarities among these proteins. Two-dimensional peptide mapping of the methionine-containing tryptic peptides showed that half of these peptides are common to all four larval serum protein subunits, and that about two-thirds are common to the three LSP-1 subunits. These observations show that the LSP-1 subunits are more closely related to each other than any is to LSP-2, and supported the initial suggestion that the proteins are homologous. Because the genes for the LSP-1 subunits are each located on a different chromosome, the LSP-1 subunits are a suitable system for investigating the evolution and dispersal of related genes, and trans control in eukaryotes.

Animals↗

The etiology of bullous myringitis and the role of mycoplasmas in ear disease: a review.

A critical review of the literature concerning bullous myringitis has found one case of possible mycoplasmal, one of possible viral, and 43 of bacterial, etiology. The bacteria were Streptococcus pneumoniae, Haemophilus influenzae, and beta-hemolytic Streptococcus, in the same percentages as found in (nonbullous) otitis media. One of 858 attempts to isolate Mycoplasma from cases of (nonbullous) otitis media was successful. The evidence that Mycoplasma are a cause of otitis media with or without bullae is weak. Bullous myringitis probably is not a separate clinical entity, but merely acute otitis media with blisters on the eardrum.

Acute Disease↗

The genetic and cytogenetic localization of the three structural genes coding for the major protein of drosophila larval serum.

The alpha, beta and gamma polypeptides that make up Drosophila Larval Serum Protein-1 seem to be coded for by genes that have evolved by duplication of a common ancestral gene. We have found variants of all three polypeptides, and these are variants of the coding sequences. The alpha-chain variant mapped to 39.5 on the X chromosome and to the polytene interval 11A7-11B9. The beta-chain variant mapped to 1.9 on chromosome 2L and to 21D2-22A1. The gamma-chain variant was mapped as 0.13 map units from the tip of chromosome 3L or to --1.41 with respect to ru, which has been defined as 0.0, and to 61A1-61A6.

Animals↗

Drosophila hemolymph proteins: purification, characterization, and genetic mapping of larval serum protein 2 in D. melanogaster.

Three of the major protein species present in the hemolymph of Drosophila melanogaster larvae just prior to pupation are absent from second instar larvae but accumulate rapidly during the third instar. This article describes the purification and characterization of one of these, larval serum protein (LSP) 2, using an immunological assay. It is a homohexamer of molecular weight about 450,000, with a polypeptide molecular weight of 78,000--83,000. Fast and slow electrophoretic variants of this protein map between the markers vin and gs, at 36--37 on chromosome 3.

Animals↗

Drosophila: the genetics of two major larval proteins.

A series of irradiation-induced deficiencies covering 62 polytene chromosome bands in chromosome arm 3L of Drosophila melanogaster includes the loci of two abundant developmentally regulated larval proteins. The structural gene for larval serum protein 2 (LSP 2) lies at 68E3 or 4, and that for salivary glue secretion protein 3 between 68A8 and 68C11, coincident with a major intermoult puff active in the salivary gland at the time of glue synthesis. The structural genes for esterase 6 and four visible recessive loci lie within the same region.

Animals↗

Biochemical and immunological studies on larval serum protein 1, the major haemolymph protein of Drosophila melanogaster third-instar larvae.

Larval serum protein 1 is the major haemolymph protein just before puparium formation in Drosophila melanogaster. It has been purified and characterised as a family of hexamers (molecular weight 450000-480000) of three immunologically related polypeptides (molecular weight 75000-81000). Homologous proteins, present in other dipterans, are similar in structure, amino acid composition and developmental profile.

Amino Acids↗

Protein synthesis in the early Drosophila embryo; analysis of the protein species synthesized.

The soluble proteins were extracted from Drosophila eggs which had been permeabilitzed and incubated in medium containing [35S]methionine. These proteins were analysed on immunoelectrophoresis plates and on SDS polyarcylamide gels both by staining for total protein and by autoradiography. The radioactive proteins must have been synthesized during the period of incubation with [35S]methionine. In the period covered by this study (O-3 h) there was much protein synthesis but no new proteins were synthesized which had not already been synthesized during oogenesis. We conclude that the considerable protein synthesis that occurs in early Drosophila development is translated from maternal mRNA which is activated both by egg deposition and fertilization. Translation of protein from either masked maternal mRNA, which had not been previously translated, or from mRNA transcribed from the zygote genome must occur after blastoderm formation.

Animals↗

A comparison of the proteins found in developing wild type larvae and developing lethal mutant larvae of Drosophila melanogaster.

Extracts of late larval lethal mutants were compared with extracts of wild type larvae of the same developmental age on double diffusion plates using 16 different antisera. Nearly all of the mutant extracts showed relative antigen concentration differences compared with the wild type and four of the mutants lacked a protein at death found in the wild type of the same developmental age. In each case it was a different protein. The results are discussed by considering the different ways in which mutations can lead to the loss of a protein in developing systems.

Animals↗