PubMed Health⌕ Search

Biomedical subjects

R Koenig

Publications and source records attributed to R Koenig.

At least 109 records · Page 6Linked to original sources

Beet soil-borne virus RNA 3--a further example of the heterogeneity of the gene content of furovirus genomes and of triple gene block-carrying RNAs.

The complete nucleotide sequence of RNA 3 of the Ahlum isolate of beet soil-borne virus (BSBV) was determined from cDNAs obtained with immunocaptured virus particles and denatured preparations of dsRNA. BSBV RNA 3 is unique among the plant virus RNAs studied so far in containing apparently only the coding sequences of a triple gene block (TGB). The derived amino acid sequences of the three putative TGB-encoded proteins showed the highest level of sequence similarities with those of the corresponding proteins of potato mop top furovirus (PMTV) followed by those of peanut clump furovirus and barley stripe mosaic hordeivirus. Progressively fewer similarities were found with the TGB-encoded proteins of beet necrotic yellow vein virus (uncertain classification), potato X potexvirus, and potato M carlavirus. The 3'-terminal 78 nucleotides of BSBV RNA 3 can be folded into a tRNA-like structure and a high degree of sequence similarity exists between the 122 3'-terminal nucleotides of BSBV RNA 3 and PMTV RNA 2. In other regions, however, no pronounced sequence similarities were found between the two RNAs, and PMTV RNA 2 contains an additional putative gene for a cysteine-rich protein downstream of the TGB. The two viruses are unrelated serologically. BSBV RNA 3 adds a further variant to the heterogeneity of the gene content of furovirus genomes and of triple gene block-carrying RNAs.

Amino Acid Sequence↗

Expression of single-chain antibody fragments (scFv) specific for beet necrotic yellow vein virus coat protein or 25 kDa protein in Escherichia coli and Nicotiana benthamiana.

The coding sequences for the variable regions of heavy and light chains of monoclonal antibodies (mAbs) to beet necrotic yellow vein virus (BNYVV) coat protein (cp) or the 25 kDa nonstructural protein (P25) were cloned into the pCOCK vector and expressed as single-chain antibody fragments (scFv) in Escherichia coli. For expression in higher plants the scFv were targeted either to the secretory pathway by including the sequences encoding the pectate lyase B (PelB) or the phytohemagglutinin (PHA) signal peptides in the vector constructs or they were targeted to the cytoplasm by omitting a signal peptide-encoding sequence from the constructs. The scFv were detected mainly in plants in which the PHA signal peptide had been used for targeting demonstrating for the first time the usefulness of this peptide for enabling scFv expression in plants. The scFv were not secreted into the culture fluids of suspension cultures, but were retained in the cells. The amount of expression of scFv in the best expressing plants was at least as high as in bacterial culture supernatants. In a dot blot immunoassay, 0.4 ng BNYVV cp or 0.8 ng P25 were detected by the respective scFv either from E. coli or from plants. The majority of the 21 plants expressing cp-specific scFv had near-normal growth whereas the three plants expressing P25-specific scFv grew poorly and did not form roots.

Antibodies, Viral↗

Detection of beet necrotic yellow vein virus strains, variants and mixed infections by examining single-strand conformation polymorphisms of immunocapture RT-PCR products.

Single-strand conformation polymorphism analysis was found to be a powerful tool for rapidly assigning large numbers of beet necrotic yellow vein virus (BNYVV) isolates to a known strain group as well as for detecting mixed infections, minor variants or new strain groups. The prevalence of the B-type in Germany and France and the A-type in most other countries was confirmed. Minor variants with a very restricted distribution were detected occasionally. New rhizomania outbreaks in Great Britain were caused either by the A- or B-type or mixtures of both suggesting introduction of BNYVV from several sites abroad. An entirely different BNYVV type (P-type) was identified in a small area in France. Evidence for further strain groups in China was also obtained.

Europe↗

Location, size, and complexity of epitopes on the coat protein of beet necrotic yellow vein virus studied by means of synthetic overlapping peptides.

Five regions on the coat protein of BNYVV which had been shown previously to be involved in the formation of continuous epitopes were further analyzed by means of synthetic overlapping peptides. It was found that at least some of these regions may encompass several overlapping epitopes (or parts thereof). Four monoclonal antibodies (MAbs) which were known to be specific for the C-terminus of BNYVV coat protein (amino acids 182-188 = RTSPPGQ) were found to react with different sets of peptides which had either the sequence RTS, RTSP, RTSPP, or PPGQ in common. Two other MAbs which also had been shown previously to be specific for the C-terminus of BNYVV coat protein failed to react with overlapping decapeptides. Two epitopes which were previously located in the areas of amino acids 115-125 and 125-140 could now be located more precisely on the sequences SANVRRD (amino acids 115-121) and AESSG (amino acids 128-132), respectively. Replacement studies with alanine showed that not all amino acids within these sequences are equally important for antibody binding. On the other hand, amino acids outside these sequences may strongly influence the reactivity of epitopes. The accessibility of amino acid sequences on the particles of BNYVV is discussed.

Amino Acid Sequence↗

Expression of the beet yellows closterovirus capsid protein and p24, a capsid protein homologue, in vitro and in vivo.

The positive-sense RNA genome of beet yellows closterovirus (BYV) encompasses open reading frames (ORFs) for the viral capsid protein (CP, ORF 6) and for a CP homologue (p24, ORF 5). The sequences of the ORFs 5 and 6 were inserted into an Escherichia coli expression vector, pQE-9, under the control of the bacteriophage T5 promoter. The proteins were expressed in bacteria, purified, and used for antiserum production in rabbits. The recombinant BYV CP and p24 showed serological cross-reactions when probed with each antiserum on Western blots. The cross-reactions of the anti-p24 serum with the CP, and of the anti-CP serum with the p24, were abolished by preadsorption with the heterologous antigens, suggesting that CP and p24 share a common epitope(s) resistant to SDS denaturation. Cross-reactivity of the soluble CP and p24 was also observed in indirect plate-trapped antigen ELISA, whereas virtually none was encountered in double-antibody sandwich ELISA. Using a polyclonal anti-p24 serum preadsorbed with the recombinant CP, the p24 was detected in BYV-infected plants. Analysis of subcellular fractions of BYV-infected Tetragonia expansa indicated that both proteins are predominantly located in the soluble fraction of the host cells. Primer extension analysis of the individual double-stranded forms of the subgenomic RNAs bearing the CP and p24 genes allowed them to be mapped and their 5' start sites to be located at nucleotide positions 13,588 and 12,815, respectively, in the complete genome sequence. This corresponds to the 5' untranslated regions of 52 and 105 nucleotides in the subgenomic RNAs for CP and p24, respectively. The data obtained indicate that the synthesis of both subgenomic RNAs is initiated on a negative RNA strand at an adenosine residue found within the conserved sequence 5' CCAUUUPyA (shown as positive-sense), which may thus represent a core element of the subgenomic promoter. This conserved sequence also resembles the sequences at the 5' ends of the CP subgenomic RNAs of tobamoviruses and the Bromoviridae family members, the viruses evolutionarily most closely related to BYV.

Antigens, Viral↗

Restriction fragment length polymorphism analysis of reverse transcription-PCR products reveals the existence of two major strain groups of beet necrotic yellow vein virus.

Beet necrotic yellow vein virus (BNYVV)-infected sugarbeets were obtained from many parts of Europe and also from some sites in Asia and the U.S.A. Reverse transcription (RT)-PCR products of more than 1 kbp were obtained for four different regions of the viral genome which may be particularly important with respect to the pathogenic properties of the virus, i.e. for the coat protein and the 42K protein-encoding regions on RNA 2 and for major parts of RNAs 3 and 4. Restriction fragment length polymorphism (RFLP) patterns obtained with these PCR products revealed the existence of two major strain groups of BNYVV, named type A and type B. The A type was detected in Greece, the former Yugoslavia, Slovakia, parts of Austria, Italy, Spain, parts of France, Belgium, The Netherlands and England as well as in Asia (Turkey, Kazachstan, China and Japan) and the U.S.A. The B type occurs in Germany and parts of France. Mixed infections were detected at the borderline regions between areas of the A and B types. Comparisons of published and newly determined nucleotide sequences of the respective parts of the BNYVV genome indicate that the percentage of nucleotide differences between the A and the B type is approximately 3% for the respective regions of RNAs 2 and 3 and approximately 1.5% for RNA 4. Nucleotide sequences appear to be remarkably stable within each of the two strain groups. The majority of the nucleotide differences between the A and B types occur in the third triplet position. The amino acid changes in the coat protein area are outside the four previously determined antigenic regions that are accessible on the surface of the virus particles and are involved in the formation of continuous and presumably also discontinuous epitopes. This may explain why serological differences between the two strain groups have not been found.

Base Sequence↗

Nucleotide sequence of the coat protein gene of pelargonium leaf curl virus and comparison of the deduced coat protein amino acid sequence with those of other tombusviruses.

The sequence of 1,787 nucleotides (nts) in the genomic RNA of pelargonium leaf curl virus (PLCV) was determined. It included the entire coat protein (cp) gene (nts 585 to 1,754), 558 nts of the 3' end of the putative RNA polymerase gene, 26 nts of an intercistronic region between the two genes and 33 nts downstream of the stop codon of the cp gene. The cp gene was cloned into the expression vector pET8c and expressed in E. coli. The deduced cp amino acid sequence of PLCV was compared with those of five other tombusviruses. The closer the degree of serological relatedness between two viruses, the more similarity was found in their cp amino acid sequences not only in the protruding domains, but also in their random and shell domains and in the arm regions. Nucleic acid hybridization tests, cp amino acid comparisons and serological tests all suggest the same order of sequence for the relationships in the tombusvirus group.

Amino Acid Sequence↗

Radiation-induced lymphoid tumors and radiation lethality are inhibited by combined treatment with small doses of zinc aspartate and WR 2721.

Combined small doses of zinc aspartate and WR 2721 provided additive protection against radiation lethality in mice. Survival obtained with a small dose of WR 2721 which was ineffective alone could be enhanced to 83% by combining the drug with zinc aspartate, which on its own also displayed no effect. The survival of 25% provided by a higher dose of WR 2721 was increased significantly by adding zinc aspartate. Additivity was also tested in a model of radiation carcinogenesis. For this purpose, lethality and occurrence of lymphoid tumors induced by fractionated total-body irradiation were studied in C57B1/6 mice treated with zinc aspartate and WR 2721. In order to reveal additive effects, both agents were used at sub-optimal dosages. In mice subjected to 5 daily exposures of 1.9 Gy, the combination of zinc aspartate and WR 2721 was effective and enhanced the survival to 83% as compared with 25% afforded by WR 2721 alone (p < 0.005). Similarly, histological assessment of organ involvement with lymphoma revealed that zinc aspartate and WR 2721 alone did not bring about a significant reduction of lymphoma incidence. On the other hand, the combined agents diminished organ involvement with lymphoma to 9.1% as against 90% in the controls (p < 0.0005) and 62.5% with WR 2721 alone (p < 0.025). Thus, combined treatment with zinc aspartate and WR 2721 also inhibited radiation-induced lymphoid tumors.

Amifostine↗

Tissue print-immunoblotting reveals an uneven distribution of beet necrotic yellow vein and beet soil-borne viruses in sugarbeets.

An uneven distribution of the coat protein antigens of beet necrotic yellow vein (BNYVV) and beet soil-borne (BSBV) viruses in tap roots of naturally infected sugarbeets and of BNYVV coat protein antigen in leaves and petioles of mechanically inoculated sugarbeet seedlings was detected by means of tissue print-immunoblotting. BNYVV antigen-containing areas in the tap roots were usually found underneath a root beard. Occasionally BNYVV antigen was detected predominantly, but not exclusively in the xylem vessels.

Antigens, Viral↗

Epitope mapping on fragments of beet necrotic yellow vein virus coat protein.

The location of five SDS-stable epitopes on the coat protein (CP) of beet necrotic yellow vein virus was determined by reacting Escherichia coli-expressed free CP, as well as fusion proteins (FP) containing fragments of the CP, with polyclonal and monoclonal antibodies on Western blots. Epitope 1, which has previously been found to be exposed on only one extremity of the virus particle, was located in the region between amino acids (aa) 1 and 7, i.e. on the N terminus of the CP. It was blocked when the N terminus of the CP was linked to a portion of the beta-galactosidase sequence in an FP. Epitope 3, which has previously been found to be exposed on the opposite extremity of the particle, was located in the region between aa 37 and 59. Epitope 4, which is exposed along the entire length of the particle, occurs on the C terminus of CP (aa 183 to 188). Two previously unknown epitopes were identified in the regions between aa 115 and 125 and 125 and 140, respectively. The former was located on the same extremity of the particle as epitope 3, the latter became accessible only after denaturation of the particle. Nothing is known about the probably non-adjacent aa sequences that participate in the formation of the two SDS-labile epitopes (epitopes 2 and 5) which are found on one extremity and along the entire length of the particle, respectively.

Blotting, Western↗

Single- and double-stranded RNAs associated with an isolate of beet soil-borne virus.

Ethidium bromide staining of electrophoretically separated ssRNAs and dsRNAs as well as northern blot analyses with cDNA clones suggested that the genome of the Ahlum serotype of beet soil-borne virus (BSBV) consists of two major ssRNA species of approximately 3.6 and 3.2 kb, respectively, and possibly a minor ssRNA of approximately 6.0 kb. A few of our clones hybridized with both the 3.6-kb and the 3.2-kb RNAs, the majority of the clones, however, hybridized only with the 3.2-kb RNA. The 3.2-kb RNA is, therefore, apparently not a degradation product or a partially deleted form of the 3.6-kb RNA. None of our clones hybridized with the faint band(s) of the 6.0-kb ssRNA(s) which was produced by RNA extracts of some of our virus preparations. A fourth ssRNA of approximately 3.0 kb, which hybridized with the same clones as the 3.2-kb RNA, was found at relatively high concentrations in RNA extracts from purified virus, but not in total RNA extracts from leaves. Its origin is unknown. It is apparently not derived from the 3.2-kb RNA by the loss of a VPg or a poly(A) tail. Hybridization tests with 32P-labelled poly(dT) suggested that none of the RNAs of BSBV is polyadenylated. With respect to size and the lack of a poly(A) tail the RNAs of BSBV are more similar to those of definitive furoviruses than to those of beet necrotic yellow vein virus which is only a possible member of the furovirus group and has RNAs which readily hybridized with poly(dT).

Blotting, Northern↗

cDNAs of beet necrotic yellow vein virus RNAs 3 and 4 are rendered biologically active in a plasmid containing the cauliflower mosaic virus 35S promoter.

cDNAs of beet necrotic yellow vein virus RNAs 3 and 4 could be rendered biologically active when they were placed under the control of the cauliflower mosaic virus 35S promoter and polyadenylation signal. Although the 35S in vivo transcripts should have contained up to forty 5' and several hundred 3' nonviral nucleotides, the progeny viral RNAs had the same sizes as in naturally infected sugarbeets. The progeny RNAs did not hybridize with the nonviral sequences indicating that they were apparently not replicated. Deletion and insertion mutants of RNA 3 cDNA clones were also biologically active in plants but a plasmid which contained the cDNA of RNA 3 in antisense orientation was not. The biological activity of plasmid DNAs compared with the corresponding synthetic transcripts is discussed.

Blotting, Northern↗

Effect of recombinant beet necrotic yellow vein virus with different RNA compositions on mechanically inoculated sugarbeets.

Beet necrotic yellow vein virus (BNYVV) inocula with different RNA compositions were prepared from infectious transcripts of RNAs 3 and 4 and the Rg 1 isolate, which has a genome consisting only of RNAs 1 and 2. The recombinant viruses were inoculated on 6- to 8-day-old sugarbeet seedlings by 'vortexing'. Inocula containing RNAs 1 and 2 or 1, 2 and 4 produced some growth reduction, but the most dramatic effects, with yield reductions of about 95% in a highly susceptible variety, were seen when RNA 3 was also present in the inoculum. Under these conditions the side roots were brown and brittle and often deteriorated, but 'root beardedness' was not observed. This might be due to the fact that our experiments were done in the absence of Polymyxa betae. Alternatively, the heavy inoculation at a very young age may either have weakened the plants to such an extent that extensive root proliferation was impaired or it may have led to rapid deterioration of the proliferating rootlets, which would therefore be lost prior to or during removal of the tap roots from the soil. In the presence of RNA 3 the virus concentrations in tap roots were markedly increased suggesting that this RNA facilitates the multiplication and/or spread of the virus in root tissues.

Plant Diseases↗

[Leiomyosarcoma of the inferior vena cava. Report of 3 cases].

Three cases of leiomyosarcoma of the inferior vena cava are reported. With the help of a review of the literature, the value of ultrasonography, computed tomography and cavography is recalled. Surgical possibilities and results are described together with the necessity of adjuvant treatments.

Echinococcosis, Hepatic↗

Protection against Amanita phalloides by the iridoid glycoside mixture of Picrorhiza kurroa (kutkin).

Survival of mice after lethal doses of lyophilizate from Amanita phalloides ('death cap') was markedly increased by pretreatment with single doses of kutkin, a mixture of iridoid glycosides picroside I and kutkoside isolated from the roots of Picrorhiza kurroa. The protective effect of kutkin was comparable to that of silibinin. The curative efficacy of kutkin appeared to be slightly superior.

Amanita↗

Antigenic analysis of the coat protein of beet necrotic yellow vein virus by means of monoclonal antibodies.

By means of monoclonal antibodies (MAbs), five (groups of) epitopes were identified on particles of beet necrotic yellow vein virus (BNYVV). Epitopes 1 and 2, which were located on the opposite extremities of virus particles, are discontinuous (SDS-labile) epitopes which were destroyed when the particles were treated with trypsin. Epitope 3 is a continuous (SDS-stable) epitope located at the same extremity as epitope 2. It was not destroyed when the particles were treated with trypsin and was present on an Escherichia coli-expressed fusion protein containing amino acids (aa) 1 to 103 of the BNYVV coat protein. The continuous epitope 4, which was located along the entire length of the particles, was found to be present on a fusion protein containing aa 104 to 188 of the BNYVV coat protein but not on trypsin-treated virus particles. In Western blots, these treated particles yielded two slightly smaller coat proteins which failed to react with MAbs specific for epitope 4 but did react with polyclonal antisera and MAbs specific for epitope 3. BNYVV coat protein has a trypsin cleavage site on the carboxyl side of arginine in position 182, so it is therefore suggested that epitope 4 is located on the exposed C terminus, which is composed of aa 183 to 188. Epitope 5 was also located along the entire length of the particles but in a more uneven distribution than epitope 4. This may be because it is a discontinuous epitope that is very sensitive to subtle changes in protein conformation.

Antibodies, Monoclonal↗

The use of filter hybridization techniques for the identification, differentiation and classification of plant viruses.

In attempts to use dot-blot hybridization tests for the identification of viruses or for assigning them to a certain taxonomic group we found that hybridization signals may be given not only by the homologous virus, but also by heterologous viruses belonging to the same or different taxonomic groups. Possible reasons for this phenomenon, which was observed with uncloned as well as with cloned cDNAs, are discussed. Quantitative dot-blot hybridization tests with extracted viral RNAs proved to be very sensitive in differentiating closely related viruses which were barely distinguishable in serological tests. Estimates on the degree of homology between the RNAs of different viruses may be influenced by a number of experimental parameters, such as competition for the available cDNA between homologous and heterologous RNAs or homologous RNAs in different concentrations on the same sheet of nitrocellulose, saturation phenomena due to close packaging of highly concentrated RNA on the blot and, of course, stringency conditions during washing procedures. Taking these parameters into account we have reestimated the degree of homology between the RNAs of 5 tombusviruses. Our new data suggest that the order of sequence for the relationships among these 5 tombusviruses is similar to that proposed by Koenig and Gibbs (1986) on the basis of serological data.

DNA↗