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Biomedical subjects

K Usdin

Publications and source records attributed to K Usdin.

33 records · Page 2Linked to original sources

CGG repeats associated with DNA instability and chromosome fragility form structures that block DNA synthesis in vitro.

A large increase in the length of a CGG tandem array is associated with a number of triplet expansion diseases, including fragile X syndrome, the most common cause of heritable mental retardation in humans. Expansion results in the appearance of a fragile site on the X chromosome in the region of the CGG array. We show here that CGG repeats readily form a series of barriers to DNA synthesis in vitro. There barriers form only when the (CGG)n strand is used as the template, are K(+)-dependent, template concentration-independent, and involve hydrogen bonding between guanines. Chemical modification experiments suggest these blocks to DNA synthesis result from the formation of a series of intrastrand tetraplexes. A number of lines of evidence suggest that both triplet expansion and chromosome fragility are the result of replication defects. Our data are discussed in the light of such evidence.

Acetaldehyde↗

L1 (LINE-1) retrotransposable elements provide a "fossil" record of the phylogenetic history of murid rodents.

The single most difficult problem in phylogenetic analysis is deciding whether a shared taxonomic character is due to common ancestry or one that appeared independently due to convergence, parallelism, or reversion to an ancestral state. Mammalian L1 retrotransposons undergo periodic amplifications in which multiple copies of the elements are interspersed in the genome. Because these elements apparently are transmitted only by inheritance and are retained in the genome, a shared L1 amplification event can only be an inherited ancestral character. We propose that L1 amplification events can be an excellent tool for analyzing mammalian evolution and demonstrate here how we addressed several refractory problems in rodent systematics using L1 DNA as a taxonomic character.

Animals↗

A novel K(+)-dependent DNA synthesis arrest site in a commonly occurring sequence motif in eukaryotes.

We have found that a strong DNA synthesis arrest site forms in the chicken beta-globin promoter in vitro under physiological conditions. The arrest site is located in a G+C-rich region in which the guanines are located predominately on the top strand and the pyrimidines on the bottom strand. This region is non-palindromic and has no mirror symmetry. Arrest of DNA synthesis is only observed when the G-rich strand of the promoter is used as the template, and shows an absolute requirement for K+. The sequence G16CG(GGT)3 is necessary and sufficient to arrest DNA synthesis. This arrest is template concentration independent and is eliminated by blocking the N7 positions of the last 4 guanine residues in the arrest site. These observations suggest that the basis of the block to chain extension is the formation of an unusual tetraplex-like structure by the template strand. Sequences able to form intrastrand tetraplexes are ubiquitous in eukaryotes. We show that known intrastrand tetraplex-forming sequences arrest DNA synthesis in vitro, suggesting that this may be a general property of DNA tetraplexes. We suggest that the arrest of DNA synthesis by some of these structures may account for some of the high frequency of recombination associated with these loci, perhaps by promoting strand slippage or providing an opportunity for strand exchange.

Animals↗

Amplification of the ancient murine Lx family of long interspersed repeated DNA occurred during the murine radiation.

We identified and characterized the relics of an ancient rodent L1 family, referred to as Lx, which was extensively amplified at the time of the murine radiation about 12 million years ago, and which we showed was ancestral to the modern L1 families in rat and mouse. Here we have extended our analysis of the Lx amplification by examining more murine and nonmurine species for Lx sequences using both blot hybridization and the polymerase chain reaction for a total of 36 species. In addition we have determined the relative copy number and sequence divergence, or age, of Lx elements in representative murine genera. Our results show that while Lx sequences are confined to murine genera, the extent of the amplification was different in the different murine lineages, indicating that the amplification of Lx did not precede, but was coincident with, the murine radiation. The implications of our findings for the evolutionary dynamics of L1 families and the utility of ancestral amplification events for systematics are discussed.

Animals↗

The evolution of long interspersed repeated DNA (L1, LINE 1) as revealed by the analysis of an ancient rodent L1 DNA family.

All modern mammals contain a distinctive, highly repeated (> or = 50,000 members) family of long interspersed repeated DNA called the L1 (LINE 1) family. While the modern L1 families were derived from a common ancestor that predated the mammalian radiation approximately 80 million years ago, most of the members of these families were generated within the last 5 million years. However, recently we demonstrated that modern murine (Old World rats and mice) genomes share an older long interspersed repeated DNA family that we called Lx. Here we report our analysis of the DNA sequence of Lx family members and the relationship of this family to the modern L1 families in mouse and rat. The extent of DNA sequence divergence between Lx members indicates that the Lx amplification occurred about 12 million years ago, around the time of the murine radiation. Parsimony analysis revealed that Lx elements were ancestral to both the modern rat and mouse L1 families. However, we found that few if any of the evolutionary intermediates between the Lx and the modern L1 families were extensively amplified. Because the modern L1 families have evolved under selective pressure, the evolutionary intermediates must have been capable of replication. Therefore, replication-competent L1 elements can reside in genomes without undergoing extensive amplification. We discuss the bearing of our findings on the evolution of L1 DNA elements and the mammalian genome.

Animals↗

Hypercard-based data management tools for molecular biologists.

I have designed a Macintosh data management system for molecular biologists. This system, called DataMinder, can be used to store information about oligonucleotides, nucleic acid or protein sequences, recombinant DNA clones, cells, reagents and protocols. DataMinder is not limited to data storage. A number of utilities for data analysis are provided, including those for the evaluation of oligonucleotides for use as hybridization probes or primers for DNA synthesis, and a variety of sequence editing features. Context-sensitive help is available on-line. DataMinder is simple to use and to customize and allows for sharing of database information across a computer network.

Base Sequence↗

Insertion of L1 elements into sites that can form non-B DNA. Interactions of non-B DNA-forming sequences.

Three rat L1 element integration (target) sites chosen at random can adopt non-B DNA structures in vitro at normal bacterial superhelical densities. These target sites contain, respectively, short, mixed (AT)n tracts that we show can form one or more cruciforms, short (GT)n tracts, or polypurine:polypyrimidine regions. These sites share no sequence homology, and a non-B DNA structure appears to be the only feature common to them all. When the right end of the L1Rn3 element which forms a complex series of non-B DNA structures including two triplexes, and its target site which undergoes cruciform extrusion, are present on the same supercoiled molecule, they compete for available supercoil energy. The amount of non-B DNA formed at each site varies with pH, the concentration of cations, and the size of the topological domain. The implication of our findings for recombination of L1 elements and for the effect of these elements on contiguous DNA sequences is discussed.

Acetaldehyde↗

The structure of the guanine-rich polypurine:polypyrimidine sequence at the right end of the rat L1 (LINE) element.

We report here that the 64-base pair (bp) guanine-rich polypurine:polypyrimidine tract derived from the right end of the rat long interspersed DNA element is reactive in a supercoil-dependent manner with a variety of chemical probes of non-B DNA structure. At pH 5.0 in the presence of Mg2+, part of the sequence (position 10-40) forms the following two types of triplexes: a G.G.C triplex, and an unusual C.G.C triplex. The latter structure is much more prevalent than the former and is unusual in that the resultant free purine strand forms a hairpin loop. In the absence of Mg2+ the G.G.C triplex disappears and the amount of C.G.C triplex is diminished, and at pH 7.5 in the presence or absence of Mg2+, little or no triplex is observed. Deletion of the 24-bp region just 3' of the triplex-forming region greatly reduces the amount of triplex formed. In this region, which includes an 18-bp polypurine:polypyrimidine sequence, both strands exhibit a moderate symmetric reactivity with the chemical probes tested, independent of pH and Mg2+. The implications of this structurally complex region for the properties of the rat L1 element are discussed.

Animals↗

Rat L (long interspersed repeated DNA) elements contain guanine-rich homopurine sequences that induce unpairing of contiguous duplex DNA.

The L family (long interspersed repeated DNA) of mobile genetic elements is a persistent feature of the mammalian genome. In rats, this family contains approximately equal to 40,000 members and accounts for approximately equal to 10% of the haploid genome. We demonstrate here that the guanine-rich homopurine stretches located at the right end of L-DNA induce oligonucleotide uptake by contiguous duplex DNA. The uptake is dependent on negative supercoiling and the length of the homopurine stretch and occurs even when the L-DNA homopurine stretches are introduced into a different DNA environment. The bound oligomer primes DNA synthesis when DNA polymerase and deoxyribonucleoside triphosphates are added, resulting in a faithful copy of the template to which the oligonucleotide had bound. The implications of this property of the L-DNA guanine-rich homopurine stretches in the amplification, recombination, and dispersal of L elements is discussed.

Animals↗

The loss of a large DNA fragment is associated with an aerial mycelium negative (Amy-) phenotype of Streptomyces cattleya.

Hybridization of various Streptomyces cattleya aerial mycelium negative (Amy-) mutants with a probe containing the gene for argininosuccinate synthetase (pTG17) has revealed the presence of two different types of mutants (stable and unstable). Stable mutants appear to have lost all or part of the region covered by the probe, while the unstable mutants demonstrate no detectable changes in this region. In one group of stable mutants (those demonstrating a partial loss of sequences hybridizing to the probe), a 4.17 kb extrachromosomal element was detected, which hybridized with the pTG17 probe. The significance of this finding is discussed with reference to the genetic instability of the genus Streptomyces.

Autoradiography↗

Evidence for the wide distribution of repetitive DNA sequences in the genus Streptomyces.

Repeated DNA sequences were detected as rapidly reannealing sequences in the chromosomal DNA of 13 out of 14 Streptomyces species using either hypochromicity measurements or hydroxyapatite chromatography. These sequences made up between approximately 4% and 11% of the total DNA of these species; only in Streptomyces rimosus were repeated DNA sequences not detected. The repeated sequences fall into a number of distinct percentage G + C (%G + C) classes, many being of rather low %G + C. Analytical density ultracentrifugation of the DNA of these species indicated satellite bands of low %G + C, and high-resolution thermal denaturation profiles indicated the presence of blocks of DNA of low G + C content too. No such satellite band could be found in Streptomyces coelicolor and no low-%G + C DNA could be detected in its thermal denaturation profile. The possible relationship of this repeated DNA, an unusual occurrence in a procaryote, to genetic instability and genetic control mechanisms in Streptomyces is discussed.

Base Composition↗

The effect of inhibitors of DNA repair on the genetic instability of Streptomyces cattleya.

Various streptomycetes show well defined instabilities that do not appear to be attributable to plasmid loss. The unstable phenotype, in many cases, arises at frequencies too high to be explained by point mutations. The frequency of instability can be enhanced by UV irradiation. Two major repair systems have been found in Escherichia coli: the 'error-free' system which is inhibited by caffeine and the 'error-prone' system which is inhibited by arsenite. Using spores of Streptomyces cattleya NRRL 8057 and the virulent actinophage VC11 we have shown that a caffeine inhibitable, host mediated UV repair system is active in spores during early development. Some evidence was also found for the presence of an arsenite inhibitable UV repair system. The caffeine inhibitable UV repair system was found to be involved in the induction of genetic instability in S. cattleya. The arsenite system may be implicated in the repair of such events. Genetic instability was also induced by single strand breaks in DNA caused by 32P.

Arsenic↗

Fragile X syndrome and Friedreich's ataxia: two different paradigms for repeat induced transcript insufficiency.

DNA repeat expansion is the genetic basis for a growing number of neurological disorders. While the largest subset of these diseases results in an increase in the length of a polyglutamine tract in the protein encoded by the affected gene, the most common form of inherited mental retardation, fragile X syndrome, and the most common inherited ataxia, Friedreich's ataxia, are both caused by expansions that are transcribed but not translated. These expansions both decrease expression of the gene in which the expanded repeat is located, but they do so by quite different mechanisms. In fragile X syndrome, CGG. CCG expansion in the 5' untranslated region of the FMR1 gene leads to hypermethylation of the repeats and the adjacent CpG-rich promoter. Methylation prevents the binding of the transcription factor alpha-Pal/NRF-1, and may indirectly affect the binding of other factors via the formation of transcriptionally silent chromatin. In Friedreich's ataxia, GAA. TTC expansion in an intron of the FRDA gene reduces expression by interfering with transcription elongation. The model that best describes the available data is transcription-driven formation of a transient purine. purine. pyrimidine DNA triplex behind an advancing RNA polymerase. This structure lassoes the RNA polymerase that caused it, trapping the enzyme on the template.

DNA Methylation↗