Search PubMed⌕ Search

Biomedical subjects

B D Bruce

Publications and source records attributed to B D Bruce.

32 records · Page 2Linked to original sources

Isolation of a carotenoid-containing sub-membrane particle from the chloroplastic envelope outer membrane of pea (Pisum sativum).

Chloroplastic envelope membranes isolated from pea (Pisum sativum) leaves are rich in carotenoids, containing approximately 2 micrograms of carotenoid mg-1 protein. We report here that envelopes can be surfactant-solubilized while maintaining association of carotenoids with protein components of the membrane. Treatment of isolated chloroplastic envelope membranes with 0.5% Deriphat 160 (N-lauryl-beta-imminodipropionate) causes general solubilization but preserves an envelope sub-membrane fragment which is fractionated by centrifugation in a sucrose gradient and by chromatography on a column of DEAE-Sephacel. The isolated submembrane complex contained five major proteins with M(r) values equivalent to 75,000, 36,000, 34,000 17,500, and 14,500. Spectroscopic and chromatographic analyses revealed that the complex contains violaxanthin and at least one other carotenoid. Carotenoid content of the fractionated complex was estimated as 4.8 micrograms mg-1 protein. Immunoblot analysis reveals that the constituent proteins of this complex are derived from the chloroplastic outer envelope membrane. These data suggest that at least some of the carotenoids of the chloroplastic envelope may be organized by apoproteins.

Carotenoids↗

Biosynthesis of the chloroplast cytochrome b6f complex: studies in a photosynthetic mutant of Lemna.

The biosynthesis of the cytochrome b6f complex has been studied in a mutant, no. 1073, of Lemna perpusilla that contained less than 1% of the four protein subunits when compared with a wild-type strain. RNA gel blot analyses of the mutant indicated that the chloroplast genes for cytochrome f, cytochrome b6, and subunit IV (petA, petB, and petD, respectively) are transcribed and that the petB and petD transcripts undergo their normal processing. Analysis of polysomal polyA+ RNA indicated that the level of translationally active mRNA for the nuclear-encoded Rieske Fe-S protein (petC) was reduced by greater than 100-fold in the mutant. Immunoprecipitation of in vivo labeled proteins indicated that both cytochrome f and subunit IV are synthesized and that subunit IV has a 10-fold higher rate of protein turnover in the mutant. These results are discussed in terms of the assembly of the cytochrome complex and the key role of the Rieske Fe-S protein in this process.

Chloroplasts↗

Green algal cytochrome b6-f complexes: isolation and characterization from Dunaliella saline, Chlamydomonas reinhardtii and Scenedesmus obliquus.

Cytochrome b6-f complexes have been isolated from Chlamydomonas reinhardtii, Dunaliella saline and Scenedesmus obliquus. Each complex is essentially free of chlorophyll and carotenoids and contains cytochrome b6 and cytochrome f hemes in a 2:1 molar ratio. C. reinhardtii and S. obliquus complexes contain the Rieske iron-sulfur protein (present in approx 1:1 molar ratio to cytochrome f) and each catalyzes a DBMIB- and DNP-INT-sensitive electron transfer from duroquinol to spinach plastocyanin. Immunological assays using antibodies to the peptides from the spinach cytochrome complex show varying cross-reactivity patterns except for the complete absence of binding to the Rieske proteins in any of the three complexes, suggesting little structural similarity between the Rieske proteins of algae with those from higher plants. One complex (D. salina) has been uniformly labeled by growth in NaH14CO3 to determine stoichiometries of constituent polypeptide subunits. Results from these studies indicate that all functionally active cytochrome b6-f complexes contain four subunits which occur in equimolar amounts.

Chlamydomonas↗

Subunit stoichiometry of the chloroplast photosystem I complex.

A native photosystem I (PS I) complex and a PS I core complex depleted of antenna subunits has been isolated from the uniformly 14C-labeled aquatic higher plant, Lemna. These complexes have been analyzed for their subunit stoichiometry by quantitative sodium dodecyl sulfate-polyacrylamide gel electrophoresis methods. The results for both preparations indicate that one copy of each high molecular mass subunit is present per PS I complex and that a single copy of most low molecular mass subunits is also present. These results suggest that iron-sulfur center X, an early PS I electron acceptor proposed to bind to the high molecular mass subunits, contains a single [4Fe-4S] cluster which is bound to a dimeric structure of high molecular mass subunits, each providing 2 cysteine residues to coordinate this cluster.

Carbon Radioisotopes↗

Structural Aspects of Photosystem I from Dunaliella salina.

A native PSI complex and a PSI core complex have been isolated from the halophilic green alga, Dunaliella salina. The composition and properties of these complexes are similar to previously described PSI complexes from spinach membranes. By growth on (14)C-NaHCO(3), it has been possible to isolate uniformly labeled (14)C-PSI complexes in order to determine PSI subunit stoichiometry. This analysis has shown a ratio of one copy of three low molecular weight subunits (22,000; 15,000; 8,000) per two copies of high molecular weight subunits (84,000). Using a (14)C-labeled cytochrome b(6)-f complex as an internal protein standard, it has been possible to estimate the molecular weight of a PSI core complex as about 330,000. This complex contains one P700, two 84,000 subunits, and one subunit of 22,000, 15,000, and 8,000.

Journal Article↗

Design and application of a versatile triple-laser cell and chromosome sorter.

A high-resolution triple-laser sorter was designed and constructed to provide flexible switchover and high-resolution sorting of cells or chromosomes with any combination of one, two, or three lasers. These features provide a central facility instrument that currently serves multiple users and analyzes different stain combinations with minimal switchover effort between experiments. Improved optics and mounts that focus the three laser beams independently are able to resolve beads and chromosomes better than our previously reported dual-laser sorter. An improved signal collection unit with electronically controlled reference positions can be focused more quickly and precisely for any signal combination. A removable dye laser extends the range of usable fluorochrome labels. A rapid sheath switchover permits sorting of sterile cells and sterile chromosomes sequentially without additional sterilization or reservoir sheath change. Improved dual-laser chromosome resolution is at least as good, analyzing 8,000 chromosomes/s, compared to the previous dual-laser bench at 2,000/s. Stimulated and unstimulated peripheral blood lymphocytes were analyzed according to simultaneous measurements of cell surface receptors labeled with a fluoresceinated neuropeptide and a Texas red-labeled antibody as well as DNA content during the cell cycle. These results demonstrate the broad range of potential applications of this triple-laser system.

Cell Separation↗

Evolutionary implications of the human aldolase-A, -B, -C, and -pseudogene chromosome locations.

The aldolase genes represent an ancient gene family with tissue-specific isozymic forms expressed only in vertebrates. The chromosomal locations of the aldolase genes provide insight into their tissue-specific and developmentally regulated expression and evolution. DNA probes for the human aldolase-A and -C genes and for an aldolase pseudogene were used to quantify and map the aldolase loci in the haploid human genome. Genomic hybridization of restriction fragments determined that all the aldolase genes exist in single copy in the haploid human genome. Spot-blot analysis of sorted chromosomes mapped human aldolase A to chromosome 16, aldolase C to chromosome 17, the pseudogene to chromosome 10; it previously had mapped the aldolase-B gene to chromosome 9. All loci are unlinked and located on to two pairs of morphologically similar chromosomes, a situation consistent with tetraploidization during isozymic and vertebrate evolution. Sequence comparisons of expressed and flanking regions support this conclusion. These locations on similar chromosome pairs correctly predicted that the aldolase pseudogene arose when sequences from the aldolase-A gene were inserted into the homologous aldolase location on chromosome 10.

Base Sequence↗

Spot-blot analysis of sorted chromosomes assigns a fructose intolerance disease locus to chromosome 9.

The aldolase B gene was mapped to chromosome 9 using a rapid gene mapping system. This system uses a dual-laser sorter to identify and separate metaphase human chromosomes stained with either DIPI-chromomycin or Hoechst-chromomycin. Chromosome panels were constructed from a normal cell line by sorting 22 chromosome fractions directly onto nitrocellulose filters. Twelve labeled gene probes hybridized to the sorted chromosomal DNA fractions predicted by previous chromosome assignments. Eighteen newly cloned genes have been mapped using the same protocol.

Carbohydrate Metabolism, Inborn Errors↗

Mapping parathyroid hormone, beta-globin, insulin, and LDH-A genes within the human chromosome 11 short arm by spot blotting sorted chromosomes.

Rearranged human chromosomes carrying segments of chromosome 11 were separated from the normal chromosome 11 by high-resolution chromosome sorting. Sorted chromosomes were tested with parathyroid hormone, beta-globin, insulin, and LDH-A gene-specific probes to determine the genes carried by each chromosome segment. Based on the gene content and karyotypes of these abnormal chromosomes, the parathyroid hormone, beta-globin, insulin, and LDH-A genes and the unique restriction fragment ADJ-762 are all located on the terminal band of the short arm of human chromosome 11 (band 11p15), with LDH-A proximal to the other loci.

Animals↗

Gene encoding human growth hormone-releasing factor precursor: structure, sequence, and chromosomal assignment.

We have isolated and characterized overlapping clones from phage lambda and cosmid human genomic libraries that predict the entire structure of the gene encoding the precursor to human growth hormone-releasing factor. The gene includes five exons spanning 10 kilobase pairs of human genomic DNA. There appears to be a segregation of distinct functional regions of the GRF precursor and its mRNA into the five exons of the gene. The DNA sequences of all exons, intron/exon boundaries, and 5' and 3' flanking regions are presented. Dot-blot analysis of DNA from high resolution dual-laser-sorted human chromosomes indicates that the single-copy growth hormone-releasing factor gene is located on human chromosome 20.

Amino Acid Sequence↗

High-resolution chromosome sorting and DNA spot-blot analysis assign McArdle's syndrome to chromosome 11.

A rapid gene-mapping system uses a high-resolution, dual-laser sorter to identify genes from separate human chromosomes prepared with a new stain combination. This system was used to sort 21 unique chromosome types onto nitrocellulose filter papers. Several labeled gene probes hybridized to the sorted chromosomal DNA types predicted by their previous chromosome assignments. The skeletal muscle glycogen phosphorylase gene was then mapped to a portion of chromosome 11 by spot blotting normal and translocated chromosomes.

Animals↗

Primary photochemistry in the facultative green photosynthetic bacterium Chloroflexus aurantiacus.

The mechanism of primary photochemistry has been investigated in purified cytoplasmic membranes and isolated reaction centers of Chloroflexus aurantiacus. Redox titrations on the cytoplasmic membranes indicate that the midpoint redox potential of P870, the primary electron donor bacteriochlorophyll, is +362 mV. An early electron acceptor, presumably menaquinone has Em 8.1 = -50 mV, and a tightly bound photooxidizable cytochrome c554 has Em 8.1 = +245 mV. The isolated reaction center has a bacteriochlorophyll to bacteriopheophytin ratio of 0.94:1. A two-quinone acceptor system is present, and is inhibited by o-phenanthroline. Picosecond transient absorption and kinetic measurements indicate the bacteriopheophytin and bacteriochlorophyll form an earlier electron acceptor complex.

Bacteria↗

Primary photochemistry in the facultatively aerobic green photosynthetic bacterium Chloroflexus aurantiacus.

Photochemical activity was examined in membrane fragments and a purified membrane preparation from Chloroflexus. Flash-induced absorption difference spectroscopy strongly suggests a primary donor (P(865)) that is more similar to the P(870) bacteriochlorophyll a dimer found in the purple photosynthetic bacteria than it is to P(840) found in the anaerobic green bacteria. Redox measurements on P(865) and an early acceptor also indicate a photochemical system characteristic of the purple bacteria. The membrane preparation contains a tightly bound type c cytochrome, c(554), that is closely coupled to the reaction center as indicated by its ability to rereduce photooxidized P(865). Chloroflexus thus appears to be distinct photochemically from other families of photosynthetic bacteria and may occupy an important role in photosynthetic evolution.

Journal Article↗