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T O Diener

Publications and source records attributed to T O Diener.

At least 19 recordsLinked to original sources

Identification of multiple structural domains regulating viroid pathogenicity.

To investigate the role of individual structural domains in viroid pathogenicity and replication, a series of interspecific chimeras was constructed by exchanging the terminal left (TL) and/or pathogenicity (P) domains between tomato apical stunt (TASVd) and citrus exocortis (CEVd) viroids. All six chimeras tested were replicated stably in tomato, and the symptoms exhibited by infected plants were intermediate between those induced by the parental viroids. Quantitative comparisons of symptom development and progeny accumulation revealed that: (i) the TL domain of TASVd contains a determinant required for appearance of severe veinal necrosis in tomato, (ii) the severe epinasty and stunting characteristic of TASVd requires the presence of its TL and P domains, and (iii) the variable (V) and terminal right (TR) domains comprising the right side of the native structure also play an important role in viroid pathogenicity. Chimeras containing the right side of TASVd accumulated to higher levels early in infection, and infected plants developed more severe symptoms than those whose right halves were derived from CEVd. Although the individual contributions of the TL and P domains to symptom induction could not be completely separated from that of viroid titer, the TL domain appears to exert a greater effect upon symptom severity than does the P domain. The TL, P, V, and TR domains of TASVd and CEVd contain three discrete regions of sequence and/or structural variability that may correspond to the pathogenicity determinants uncovered by our genetic analysis.

Base Sequence

Phylogeny of viroids, viroidlike satellite RNAs, and the viroidlike domain of hepatitis delta virus RNA.

We report a phylogenetic study of viroids, some plant satellite RNAs, and the viroidlike domain of human hepatitis delta virus RNA. Our results support a monophyletic origin of these RNAs and are consistent with the hypothesis that they may be "living fossils" of a precellular RNA world. Moreover, the viroidlike domain of human hepatitis delta virus RNA appears closely related to the viroidlike satellite RNAs of plants, with which it shares some structural and functional properties. On the basis of our phylogenetic analysis, we propose a taxonomic classification of these RNAs.

Hepatitis Delta Virus

Subviral pathogens of plants: viroids and viroidlike satellite RNAs.

Contrary to earlier beliefs, viruses are not the smallest causative agents of infectious diseases. Single-stranded RNAs as small as 246 nucleotides exist in certain higher plants and cause more than a dozen crop diseases. These RNAs have been termed viroids. Despite their extremely limited information content, viroids replicate autonomously in susceptible cells--that is, they do not require helper functions from simultaneously replicating conventional viruses. Viroids are covalently closed circular molecules with a characteristic rodlike secondary structure in which short helical regions are interrupted by internal and bulge loops. Viroids are not translated; they are replicated by a host enzyme (or enzymes) (probably RNA polymerase II) via oligomeric RNA intermediates by a rolling circle mechanism. Viroidlike satellite RNAs resemble viroids in size and molecular structure, but are found within the capsids of specific helper viruses on which they depend for their own replication. These RNAs are of great interest to molecular biology for at least two reasons: 1) they are the smallest and simplest replicating molecules known, and 2) they may represent living fossils of precellular evolution in a hypothetical RNA world.

Base Sequence

Indian bunchy top disease of tomato plants is caused by a distinct strain of citrus exocortis viroid.

A viroid has been isolated from tomato plants affected by Indian bunchy top disease of tomato (Lycopersicon esculentum Mill.). In dot blot hybridization assays with 32P-labelled cRNA probes specific for the detection of various viroids, the Indian viroid was shown to be most closely related to the citrus exocortis viroid (CEVd). Sequence determination showed that the viroid consists of 372 nucleotides and confirmed its close relationship with CEVd. The viroid, for which we propose the acronym CEVd-t, differs from the Australian CEVd strains A and B by 36 and 47 nucleotides, respectively, and from the Spanish grapevine isolate by 52 changes. A phylogenetic analysis confirmed the closet relationship with CEVd in all structural domains, except the pathogenicity and left-terminal domains, which are closely related to the corresponding domains of the potato spindle tuber and tomato apical stunt viroids, respectively.

Base Sequence

Viroids and viroid-like satellite RNAs: a phylogenetic analysis.

With the discovery that certain RNAs possess catalytic properties (Kruger et al., 1982; Guerrier-Takada et al., 1983), the possible significance of certain small plant pathogenic RNAs, namely viroids and viroid-like satellite RNAs, as relics of precellular evolution deserves consideration. As a first step in this endeavor, I report here the results of a phylogenetic study of the computer-aligned nucleotide sequences of these RNAs that is based on the parsimony principle (Felsenstein and Sober, 1986).

Base Sequence

The role of the viroid central conserved region in cDNA infectivity.

The effect of sequence duplication upon the infectivity of plasmid DNAs containing monomeric tomato apical stunt viroid cDNAs has been determined. Two factors appear to control the specific infectivity of the different plasmid constructions tested: the presence of a subset of a palindromic sequence located within the central conserved region and the orientation of the viroid cDNA within the recombinant plasmid. Deletions which disrupt the integrity of the putative processing site abolished cDNA infectivity, a result that is consistent with the involvement of this site in the cleavage/ligation of viroid RNAs during replication.

Base Sequence

Construction of novel viroid chimeras containing portions of tomato apical stunt and citrus exocortis viroids.

Several novel tomato apical stunt viroid (TASV) recombinants were isolated after inoculation of tomato seedlings with monomeric viroid cDNAs. Two intraspecific recombinants were constructed by exchanging the left and right sides of the closely related Ivory Coast and Indonesian strains of TASV, and a third, interspecific, recombinant was constructed by similar manipulations involving TASV and citrus exocortis viroid (CEV) cDNAs. Characterization of these TASV recombinants by RNA protection assays and nucleotide sequence analysis of polymerase chain reaction-amplified cDNAs revealed no evidence for sequence instability. The symptoms induced by replication of the CEV-TASV chimera in tomato were milder than those induced by either TASV or the TASV chimeras and resembled those induced by the CEV isolate which provided its pathogenicity domain.

Base Sequence

Nucleotide sequence and proposed secondary structure of Columnea latent viroid: a natural mosaic of viroid sequences.

The Columnea latent viroid (CLV) occurs latently in certain Columnea erythrophae plants grown commercially. In potato and tomato, CLV causes potato spindle tuber viroid (PSTV)-like symptoms. Its nucleotide sequence and proposed secondary structure reveal that CLV consists of a single-stranded circular RNA of 370 nucleotides which can assume a rod-like structure with extensive base-pairing characteristic of all known viroids. The electrophoretic mobility of circular CLV under nondenaturing conditions suggests a potential tertiary structure. CLV contains extensive sequence homologies to the PSTV group of viroids but contains a central conserved region identical to that of hop stunt viroid (HSV). CLV also shares some biological properties with each of the two types of viroids. Most probably, CLV is the result of intracellular RNA recombination between an HSV-type and one or more PSTV-type viroids replicating in the same plant.

Base Composition

Infectivity of chimeric viroid transcripts reveals the presence of alternative processing sites in potato spindle tuber viroid.

In an investigation of viroid replication and pathogenesis, we have assessed the effect of sequence duplication of the upper central conserved region (CCR) of the molecule on the infectivity of RNAs transcribed in vitro from partial dimers of wild-type and mutant viroid cDNAs. In one set of experiments, the relative infectivities of one monomeric potato spindle tuber viroid (PSTV) and five oligomeric SP6 transcripts [PSTV or PSTV-TASV (tomato apical stunt viroid) chimeras] were compared. With one exception, the extent of sequence duplication in the CCR, and thus the length of the so-called palindrome, does correlate with an increase in specific infectivity. In a second set of experiments, in vitro generated site-specific mutations in cloned PSTV were used as markers to determine if a cleavage/ligation at sites other than the palindrome could generate infectious molecules in vivo. The creation of a novel PSTV-TPMV (tomato planta macho viroid) chimera in these experiments provides evidence that multimeric RNAs can be processed at sites other than the CCR to yield monomeric progeny.

Base Sequence

Circular RNAs: relics of precellular evolution?

The demonstration of enzymatic capabilities of certain RNAs, in addition to their well-known template properties, has led to the recognition that RNAs are the only biological macromolecules that can function both as genotype and phenotype, hence raising the possibility of Darwinian selection and precellular evolution at the RNA level in the absence of DNA or protein. Recent models of such precellular RNA systems are patterned after the properties of intron-derived ribozymes. On the basis of a phylogenetic analysis and known properties of certain small plant pathogenic RNAs (viroids and viroid-like satellite RNAs), I suggest that these plant RNAs are more plausible candidates than introns as "living fossils" of a precellular RNA world. Their small size and circularity would have enhanced probability of their survival in error-prone, primitive self-replicating RNA systems and assured complete replication without the need for initiation or termination signals. All of these RNAs possess efficient mechanisms for the precise cleavage of monomers from oligomeric replication intermediates. Some (most viroids) require a host factor, but others (viroid-like satellite RNAs and one viroid) function as self-cleaving RNA enzymes far smaller and simpler than those derived from introns. The question is raised whether introns could have evolved from viroids or viroid-like satellite RNAs rather than vice versa, as has been widely speculated.

Base Sequence

Purified scrapie prions resist inactivation by procedures that hydrolyze, modify, or shear nucleic acids.

Prions were purified from scrapie-infected hamster brains and incubated for 24 hr at 65 degrees with 2 mM Zn2+ or 5 mM Mg2+; no loss of infectivity was observed. Bacteriophage M13, tobacco mosaic virus (TMV), potato virus X, and potato spindle tuber viroid were all inactivated by divalent metal ions under these conditions. Prions also resisted inactivation by prolonged digestions with DNase I, RNases A and T1, and micrococcal nuclease. Prions were resistant to psoralen photoadduct formation using high concentrations of psoralens; in contrast, M13 bacteriophage was inactivated by low concentrations of all these psoralens. Hydroxylamine failed to inactivate prions even after lengthy exposures to concentrations as high as 1 M, while TMV and M13 were both inactivated. Sonication of prions failed to decrease infectivity even though rod-shaped aggregates were disrupted while both M13 and TMV lost infectivity.

Animals

Purified scrapie prions resist inactivation by UV irradiation.

The development of effective purification protocols has permitted evaluation of the resistance of isolated scrapie prions to inactivation by UV irradiation at 254 nm. Prions were irradiated on ice with doses of UV light ranging up to 120,000 J/m2. UV dosimetry experiments, performed with Saccharomyces cerevisiae plasmid DNA or eucaryotic cells, indicated that under these experimental conditions an incident UV dose of 10 J/m2 formed 2 thymine dimers per 5.1 X 10(6) daltons of eucaryotic cell DNA. The D37 values for scrapie prions ranged from 17,000 to 22,000 J/m2; D37 values were also determined for virus, viroid, and enzyme controls. The number of pyrimidine dimers formed was correlated with the D37 values obtained for irradiated prions and target nucleic acids. The D37 value for bacteriophage M13, 6.5 J/m2, occurred at a dose that would form 0.56 dimers per target genome; the D37 for potato spindle tuber viroid, 4,800 J/m2, occurred at a dose that would form about 24 dimers per target viroid. The D37 value for an EcoRI restriction site, a target of 12 bases, occurred at a dose that would correspond to the formation of 0.89 thymine dimers per target site. The D37 value for prions occurred at a dose that would form 1 dimer in every 4 bases of single-stranded target nucleic acid. If the putative scrapie nucleic acid were double-stranded and readily repairable after UV damage, then the prion D37 value could reflect a nucleic acid molecule of 30 to 45 base pairs. While the D37 value for prions fell within the range of pure protein targets, our experiments cannot eliminate the possibility that a prion contains a small, highly protected nucleic acid molecule.

Animals

Viroid processing: a model involving the central conserved region and hairpin I.

A model is proposed for the processing of oligomeric viroid replication intermediates into monomeric, circular progeny viroids. The model identifies a thermodynamically extremely stable base-paired configuration that partially or completely dimeric, as well as higher, viroid oligomers can assume and postulates that this structure, which involves structural features common to all viroids (the central conserved region and secondary hairpin I), is essential for precise cleavage and ligation. The model explains why recombinant plasmids containing tandem repeats of two or more viroid sequence equivalents are highly infectious when inoculated into viroid-susceptible plants, why certain plasmids containing partially duplicated viroid-specific inserts are less infectious, and why plasmids containing monomeric inserts are noninfectious or at best marginally infectious. The model also accounts for the fact that vector-derived sequences on either or both sides of the viroid sequence(s) of a restriction fragment are precisely excised and are lacking in progeny viroids.

Base Sequence

Viroid discovery.

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History, 20th Century