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Biomedical subjects

J D Hofman

Publications and source records attributed to J D Hofman.

8 recordsLinked to original sources

Variable arrangement of 5S ribosomal genes within the ribosomal DNA repeats of arthropods.

The polymerase chain reaction and hybridization to genomic blots were used to investigate whether the previously observed inclusion of 5S ribosomal RNA genes in the 28S-18S ribosomal DNA intergenic regions of some crustacean species (copepods) could also be detected in other arthropods. Such an arrangement was found not only in other calanoid copepod species but also in a cirriped, an euphausid, and a spider. It is interesting that species from two different calanoid copepod genera do not have this type of arrangement. We conclude that the inclusion of 5S ribosomal RNA genes within the ribosomal DNA repeats has probably occurred repeatedly during the evolution of arthropod species and that the mechanism(s) responsible for these insertions could also be responsible for their loss.

Animals↗

Systems delivery: evolving new strategies.

Leading-edge organizations are considering major investments in new systems development tools, methods, and techniques in order to improve their capability to deliver information systems more quickly, inexpensively, and effectively. From discussions with senior managers in twelve such companies, the authors have developed a framework for addressing many of the issues involved in these decisions. They argue that redesigning systems development is a major process change that is strategic in nature and that requires significant senior management involvement. Companies must understand their current capabilities and envision their needs in the future.

Decision Making, Organizational↗

Detailed physical map and set of overlapping clones covering the genome of the archaebacterium Haloferax volcanii DS2.

An integrated approach of "bottom up" and "top down" mapping has produced a minimal set of overlapping cosmid clones covering 96% of the 4140 kilobase-pairs (kbp) Haloferax volcanii DS2 genome and a completely closed physical map. This genome is partitioned into five replicons: a 2920 kbp chromosome and four plasmids, of 690 kbp (pHV4), 442 kbp (pHV3), 86 kbp(pHV1) and 6.4 kbp (pHV2). A restriction map for six infrequently-cutting restriction enzymes was constructed, representing a total of 903 sites in the cloned DNA. We have placed the two ribosomal RNA operons, the genes for 7 S RNA and for RNaseP RNA and 22 protein-coding genes on the map. Restriction site frequencies show significant variation in different portions of the genome. The regions of high site density correspond to halobacterial satellite or FII DNA which includes two small regions of the chromosome, the plasmids pHV1 and pHV2, and half of pHV4, but not pHV3.

Archaea↗

Genome mapping in halobacteria.

The goal of our research is to produce an ordered set of cosmid clones for each of several species of halobacteria for use in physical and genetic mapping. These maps will answer questions about genome evolution and about gene organization and regulation in this archaebacterial lineage. Progress in cloning and mapping the genome of Halobacterium volcanii DS2 (synonym Haloferax volcanii DS2) is reported. Overlapping cosmids are recognized by a strategy which makes use of the distinctive restriction fragments around relatively rare restriction sites. Each site recognized by the infrequently cutting restriction enzymes is a landmark from which to identify different regions of the genome. The main advantage of this strategy is that only a small overlap (10-20%) between cosmid clones is required, resulting in a correspondingly small number of cosmid clones to be analyzed. The certainty of overlap is high, and computation is simple. The final 5-10% of each genome is cloned, linked, and identified by chromosome walking methods. Hybridization of cloned homologous or heterologous genes and of stable RNAs to the minimal cosmid set localizes these genes on the physical map. Additional genes have been and will be cloned by complementation of auxotrophic mutants, or as determinants of resistance to antibiotics.

Chromosome Mapping↗

Unusual ribosomal RNA gene organization in copepods of the genus Calanus.

Ribosomal RNA genes in the nuclear genomes of eukaryotes are generally found in tandemly repeated units encoding 18 S, 5.8 S and 28 S rRNA (in that order). 5 S rRNA genes typically lie outside these units, most often in tandem clusters coding exclusively for 5 S rRNA. Inclusion of 5 S genes within the 18 S-5.8 S-28 S repeat unit is known only for certain protozoa and fungi. Here we report that, in the copepod Calanus finmarchicus, single 5 S genes are included within many or all of the 18 S-5.8 S-28 S repeat units. Sequence analyses of regions cloned from two of these repeat units show that they indeed include 5 S genes (which are distal to 28 S genes) and that these are transcribed from opposite strands.

Animals↗

ISH51: a large, degenerate family of insertion sequence-like elements in the genome of the archaebacterium, Halobacterium volcanii.

We describe a new family of repetitive elements in the genome of the archaebacterium Halobacterium volcanii. There are some 20-30 copies of this element, which we designate ISH51. Sequenced copies show typical insertion sequence characteristics (terminal inverted repeats, direct flanking repeats of "target site" DNA). However, members of the ISH51 family are highly heterogeneous, showing on average only 85% primary sequence homology; and some genomic copies appear to be severely truncated. Some ISH51 elements are clustered together in regions of relatively AT-rich DNA. There are at least five such AT-rich "islands" in the H. volcanii genome. Repetitive sequences homologous to ISH51 are found in the genomes of most Halobacterium and Halococcus species.

Base Sequence↗

Sequence of 5S ribosomal RNA gene regions and their products in the archaebacterium Halobacterium volcanii.

We show that the archaebacterium Halobacterium volcanii contains two ribosomal RNA gene clusters, in which genes for individual rRNAs lie in the order 16S-23S-5S. We have cloned the 5S rRNA genes of both clusters and present sequences of the two 5S rRNA genes and their 5' and 3' flanking regions, as well as the sequence of H. volcanii 5S rRNA. We show that a gene for a tRNACys lies downstream from one, but not the other, 5S rRNA gene, and have obtained evidence that this tRNA gene is transcribed in vivo. We discuss regions of potential secondary structure which may be involved in transcription termination. We note regions of unexpected flanking sequence conversation both within H. volcanii 5S rRNA gene regions, and between them and the corresponding 5S rRNA gene region of H. cutirubrum (Hui and Dennis 1984).

Base Sequence↗

The number, physical organization and transcription of ribosomal RNA cistrons in an archaebacterium: Halobacterium halobium.

Because it is now clear that archaebacteria may be as distinct from eubacteria as either group is from eukaryotic cells, and because a specifically archaebacterial ancestry has been proposed for the nuclear-cytoplasmic component of eukaryotic cells, we undertook to characterize, for the first time, the ribosomal RNA cistrons of an archaebacterium (Halobacterium halobium). We found these cistrons to be physically linked in the order 16S-23S-5S, and obtained evidence that they are also transcribed from a common promoter(s) in the order 5'-16S-23S-5S-3'. We showed that, although slightly larger immediate precursors of 16S and 23S are readily seen, no common precursor of both 16S and 23S can be easily detected in vivo. In all these respects the archaebacterium H. halobium is like a eubacterium and unlike the nuclear-cytoplasmic component of eukaryotic cells. We found, however, that it differs from eubacteria of comparable (large) genome size in having only one copy of the rRNA gene cluster per genome.

DNA, Bacterial↗