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D D Shukla

Publications and source records attributed to D D Shukla.

At least 19 recordsLinked to original sources

Coat protein phylogeny and systematics of potyviruses.

The feasibility of applying molecular phylogenetic methods of analysis to aligned coat-protein sequences and other molecular data derived from coat proteins or genomic sequences of members of the proposed taxonomic family of Potyviridae, is discussed. We show that comparative sequence analysis of whole coat-protein sequences may be used reliably to differentiate between sequences of closely related strains, and to show groupings of more distantly related viruses; that coat proteins of putative Potyviridae cluster according to the proposed generic divisions, and, even if some are only very distantly related, the members of the family form a cluster distinct from coat proteins of other filamentous and rod-shaped viruses. Taxonomic revisions based on perceived evolutionary relationships, and the lack of feasibility of erecting higher taxa for these viruses, are discussed.

Amino Acid Sequence

Sequence data as the major criterion for potyvirus classification.

Recent knowledge of the structure of the potyvirus particle and its components appears to have resolved what was thought to be an intractable problem of plant virology. This review describes how coat-protein and gene sequence data can be used to provide an hierarchical classification of potyviruses. This classification puts the aphid and non-aphid-transmitted potyviruses into a single family, divides this family into four genera that correspond to the four modes of vector transmission, discriminates distinct potyvirus species from strains, and provides a basis for the formation of subgroups composed of closely related species within a genus.

Capsid

Differentiation of the four viruses of the sugarcane mosaic virus subgroup based on cytopathology.

A cytological comparison has been made of representative isolates of johnsongrass mosaic (JGMV), maize dwarf mosaic (MDMV), sorghum mosaic (SrMV) and sugarcane mosaic (SCMV) viruses. These four viruses now encompass the complex of virus strains which were formerly considered as strains of sugarcane mosaic and/or maize dwarf mosaic viruses. The structure of the cytoplasmic cylindrical inclusions induced by these viruses, together with other cytological alterations, allow the four viruses to be distinguished. Pinwheels, scrolls and laminated aggregates were produced only by SCMV whereas JGMV, MDMV, and SrMV produced only pinwheels and scrolls. SrMV produced amorphous cytoplasmic inclusions which are not produced by JGMV and MDMV. The latter two were rather similar in cytological effects except that the SCMV-JG (U.S.A.) isolate of MDMV produced aggregates of needle-like structures in the cytoplasm which were not found with JGMV and the other MDMV isolates. The specific cytological effects induced by these viruses thus corroborate the recent classification of these viruses based mainly on the properties of the coat-protein gene, the 3' noncoding nucleotide sequences, and host reactions.

Cytopathogenic Effect, Viral

Present status of the sugarcane mosaic subgroup of potyviruses.

Until recently, sugarcane mosaic virus (SCMV) was believed to be a single potyvirus consisting of a large number of strains, differing from each other in certain biological and antigenic properties. The use of affinity-purified polyclonal antibodies directed towards the surface-located, virus-specific amino termini of the coat proteins showed that 17 strains from Australia and the United States represented four distinct potyviruses, namely johnsongrass mosaic virus (JGMV), maize dwarf mosaic virus (MDMV), sorghum mosaic virus (SrMV) and SCMV. Comparisons of strains from each of these four viruses on the basis of reactions on differential sorghum and oat cultivars, cell-free translation of RNAs, morphology and serology of cytoplasmic cylindrical inclusions, amino acid sequence and peptide profiling of coat proteins, 3' non-coding nucleotide sequences, and molecular hybridization with probes corresponding to the 3' non-coding regions, resulted in exactly the same taxonomic assignments as obtained using amino-terminal serology. These results further confirm that the former sugarcane mosaic virus actually consists of four distinct viruses and show that MDMV, SrMV, and SCMV are more closely related to each other than they are to JGMV. Because these four viruses are closely related but distinct, formation of a sugarcane mosaic subgroup in the genus Potyvirus would be appropriate.

Edible Grain

Strains of bean common mosaic virus consist of at least two distinct potyviruses.

Bean common mosaic virus (BCMV) consists of a large number of pathotypes and strains which have largely been identified by their characteristic interactions with a selected number of differential bean cultivars. The relationships among these strains and other potyviruses that infect legumes are complex, with indications that BCMV, blackeye cowpea mosaic virus (BlCMV) and azuki bean mosaic virus (AzMV) may be strains of the one virus. Using high performance liquid chromatographic peptide profiles of coat-protein digests, the NL3 and NY15 strains of BCMV were compared with each other, with the Type and W strains of BlCMV and with the mild mottle strain of peanut stripe virus (PStV). The results suggest that BCMV-NL3 and BCMV-NY15 are distinct potyviruses, not strains of the one virus, and that BCMV-NY15 is a strain of the same potyvirus that includes BlCMV, PStV, AzMV and three potyvirus isolates (74, PM, PN) from soybeans.

Capsid

Serology of potyviruses: current problems and some solutions.

The serological relationships among members of the family Potyviridae are extremely complex and inconsistent. Variable cross-reactivity of polyclonal antisera, unexpected paired relationships between distinct viruses, and lack of cross-reactions between some strains are the major problems associated with the serology of potyviruses. Recent biochemical and immunochemical investigations of coat proteins have established the molecular basis for potyvirus serology and provided explanations for most of the problems with serology of potyviruses. Information from these studies has also formed the basis for the development of several novel approaches to the accurate detection and identification of potyviruses. However, even these novel approaches are not without drawbacks and some of them cannot be applied easily in plant virus laboratories, since they require prior sequence information and facilities for peptide synthesis. These findings suggest that serology is an imperfect criterion for the identification and classification of potyviruses.

Animals

Transient expression of the coat protein of sugarcane mosaic virus in sugarcane protoplasts and expression in Escherichia coli.

The coat protein (CP) of strain SC of sugarcane mosaic virus (SCMV-SC) was expressed transiently in sugarcane protoplasts after electroporation with one of two plasmids encoding the CP gene. The CP gene was fused with either the cauliflower mosaic virus 35S promoter or the synthetic monocotyledon promoter "Emu". The coat protein gene was also inducibly expressed in Escherichia coli when fused to the trc promoter. The protein expressed in both systems had the same electrophoretic mobility and antigenic specificity as purified SCMV-SC coat protein. Transient expression of the 35S-CP gene in protoplasts could only be demonstrated in Western blots developed with the chemiluminescence enzyme substrate luminol.

Base Sequence

Bean yellow mosaic, clover yellow vein, and pea mosaic are distinct potyviruses: evidence from coat protein gene sequences and molecular hybridization involving the 3' non-coding regions.

The sequences of the 3' 1019 nucleotides of the genome of an atypical strain of bean yellow mosaic virus (BYMV-S) and of the 3' 1018 nucleotides of the clover yellow vein virus (CYVV-B) genome have been determined. These sequences contain the complete coding region of the viral coat protein followed by a 3' non-coding region of 173 and 178 nucleotides for BYMV-S and CYVV-B, respectively. When the deduced amino acid sequences of the coat protein coding regions were compared, a sequence identity of 77% was found between the two viruses, and optimal alignment of the 3' untranslated regions of BYMV-S and CYVV-B gave a 65% identity. However, the degree of homology of the amino acid sequences of coat proteins of BYMV-S with the published sequences for three other strains of BYMV ranged from 88% to 94%, while the sequence homology of the 3' untranslated regions between the four strains of BYMV ranged between 86% and 95%. Amplified DNA probes corresponding to the 3' non-coding regions of BYMV-S and CYVV-B showed strong hybridization only with the strains of their respective viruses and not with strains of other potyviruses, including pea mosaic virus (PMV). The relatively low sequence identities between the BYMV-S and CYVV-B coat proteins and their 3' non-coding regions, together with the hybridization results, indicate that BYMV, CYVV, and PMV are distinct potyviruses.

Amino Acid Sequence

Differentiation of potyviruses and their strains by hybridization with the 3' non-coding region of the viral genome.

Nucleic acid hybridization with the 3' non-coding region of the potyvirus genome as the probe was shown to be a relatively simple means of distinguishing between distinct potyviruses and their strains. Comparisons of the nucleotide sequences of potyvirus genomes (ignoring gaps) showed that the degree of identity between equivalent genes of strains was greater than 96%, while between distinct potyviruses the identity ranged from 42% to 65%, suggesting that any extended sequence could be considered representative of the whole genome and be suitable as a diagnostic probe. The comparisons however, also revealed that some parts of the genome, but not the 3' non-coding region, had local regions of high sequence identity that could lead to cross-hybridization between distinct potyviruses. For this reason, and because its location immediately upstream of the poly(A) tail makes it the most accessible region for the purpose of cloning and sequencing, the 3' non-coding sequence should be most suitable for use as a diagnostic probe. Successful hybridizations (using radiolabeled, polymerase chain reaction-amplified 3' non-coding sequences) have been achieved by probing recombinant clones, purified potyviral RNA, partially purified total RNA from infected plants, and a crude extract of infected plant tissue. The method has been used to support the proposals that watermelon mosaic virus 2 and soybean mosaic virus-N are both strains of the same virus, and to discriminate between several isolates previously believed to be strains of sugarcane mosaic virus. The method should have wide application as a means of differentiating distinct potyviruses from strains.

Blotting, Southern

Coat protein properties suggest that azuki bean mosaic virus, blackeye cowpea mosaic virus, peanut stripe virus, and three isolates from soybean are all strains of the same potyvirus.

The interrelationship of a number of potyviruses infecting legumes has been investigated by comparing molecular properties of their coat proteins. Comparison of the coat proteins by the techniques of amino acid analysis and PAGE was inadequate to distinguish strains from distinct potyviruses. However, high-performance liquid chromatographic peptide profiles of tryptic digests of coat proteins of these legume-infecting potyviruses enabled such assignments to be made. These data indicate that amino acid sequences of coat proteins of azuki bean mosaic virus, the Type and W strains of blackeye cowpea mosaic virus, three isolates (74, PM, PN) of a potyvirus obtained from soybean in Taiwan, and the Blotch and Mild Mottle strains of peanut stripe virus (PStV) may be very similar to the known sequence of PStV Stripe coat protein. In contrast, peptide profiles of coat proteins from soybean mosaic virus, clover yellow vein virus, bean yellow mosaic virus, potato virus Y, and tobacco etch virus were dissimilar to each other and to the profile of PStV Stripe, suggesting that their coat protein sequences were also quite different. Based on observations of the coat protein structure of many potyviruses, the results suggest that the potyvirus isolates with similar coat proteins are strains of the same potyvirus.

Amino Acid Sequence

The use of peptide-mediated electrofusion to select monoclonal antibodies directed against specific and homologous regions of the potyvirus coat protein.

Whilst monoclonal antibodies (Mab) to potyviruses have been generated, it has not been possible to produce molecules with high specificity or broad reactivity to defined conserved amino acid sequences. In the current study, peptide-mediated electrofusion was used to select for high efficiency antibody-secreting hybridomas after mice were immunized with highly immunogenic viral coat protein. Mice were immunized with coat protein from either one potyvirus (potato virus Y, PVY-D) or a mixture of five distinct potyviruses. Two well-defined peptides were used for selective electrofusions. Peptide-1 was selected from the highly specific N terminal region of PVY-D and peptide-2 from the highly conserved N terminal/core junction region of Johnson grass mosaic virus (JGMV). Conventional PEG-mediated fusions using mice immunized with these peptides did not result in hybridoma formation. On the other hand, electrofusions using biotin-streptavidin to bridge peptide-specific B cells to myeloma cells produced hybridomas secreting antibodies either highly specific to PVY-D or cross-reactive with all potyviruses, depending on the peptide used.

Amino Acid Sequence

Coat protein of potyviruses. 7. Amino acid sequence of peanut stripe virus.

The amino acid sequence of the 287-residue coat protein of peanut stripe virus (PStV) was determined from the sequences of overlapping peptide fragments. Results indicated that the amino terminus was blocked by an acetyl group, as has previously been found for the coat protein of Johnsongrass mosaic potyvirus. Comparison of the PStV sequence with coat proteins of 20 distinct potyviruses gave sequence identities of 47-57%, except for zucchini yellow mosaic virus (ZYMV), passionfruit woodiness virus (PWV), and the related strains watermelon mosaic virus 2 (WMV 2) and soybean mosaic virus-N, which showed sequence identities of 70-76%. Several amino acid residues which were common to the core sequences of these coat proteins were at positions previously found to be invariant among potyvirus coat proteins. The degree of these similarities suggests that although PStV, WMV 2, ZYMV, and PWV are distinct potyviruses, they share a common ancestor in their evolutionary development.

Amino Acid Sequence

Selection of polyclonal antibodies to the N terminus of bean yellow mosaic potyvirus coat protein by induction of tolerance with monoclonal antibody.

Polyclonal antisera to potyviruses contain virus-specific as well as cross-reacting antibodies. The virus-specific antibodies are directed to the surface-located, N-terminal region of the coat protein, whereas cross-reacting antibodies are produced against multiple epitopes within the core region of the coat protein (minus N and C termini), which displays extensive sequence homology among distinct potyviruses. In the present study, immunological tolerance was induced in mice against the cross-reactive central core region of bean yellow mosaic virus (BYMV) using a rat monoclonal antibody (mAb) to the L3T4 molecule (the mouse equivalent of CD4). Generation of specific antisera reactive to the N terminus of BYMV was attained in tolerized mice by secondary immunization with whole viral coat protein from BYMV. This approach appears to be ideally suited to potyviruses where a two-third of the coat protein molecule contains immunogenic epitopes which can result in cross-reacting antibodies.

Animals

Unexpected sequence diversity in the amino-terminal ends of the coat proteins of strains of sugarcane mosaic virus.

The sequence of the 3'-terminal 1343 nucleotides of the SC strain of the sugarcane mosaic virus (SCMV-SC) genome was compared with the 1376 nucleotides at the 3' terminus of maize dwarf mosaic virus B (MDMV-B). The SCMV-SC sequence includes an open reading frame which codes for the viral coat protein of 313 amino acids (nucleotides 157 to 1116), followed by a 3' non-coding region of 235 nucleotides and a poly(A) tail. The MDMV-B sequence codes for the capsid protein (nucleotides 157 to 1139) of 328 amino acids and has a 3' non-coding region of 236 nucleotides. The coat protein of SCMV-SC has 92% identity with that of MDMV-B except for the region between amino acid residues 27 and 70 of SCMV-SC. This region of SCMV-SC is smaller (44 residues) than the equivalent region in MDMV-B (59 residues) and has only 22% identity with the MDMV-B sequence. Possible mechanisms for the generation of this sequence diversity are discussed. Despite this diversity, the sequence identities of both the major part of the coat proteins and the 3' non-coding regions confirm the proposal, based on previously described serological data, that SCMV-SC and MDMV-B are strains of SCMV.

Amino Acid Sequence

Expression of potyvirus coat protein in Escherichia coli and yeast and its assembly into virus-like particles.

When the full-length coat protein (CP) of the potyvirus, Johnsongrass mosaic virus (JGMV), was expressed in Escherichia coli or yeast, it assembled to form potyvirus-like particles. The particles were heterogeneous in length with a stacked-ring appearance and resembled JGMV particles in their flexuous morphology and width. This cell-free assembly system should permit analysis of the mechanisms of particle assembly and genome encapsidation. Two mutant forms of CP produced by site-directed mutagenesis failed to assemble into virus-like particles.

Amino Acid Sequence

Taxonomy of potyviruses: current problems and some solutions.

There are two major requirements for potyvirus taxonomy; group-specific criteria and criteria which discriminate between distinct viruses and strains. This review discusses the relative merits in potyvirus taxonomy of molecular parameters, such as gene sequence data, nucleic acid hybridization, coat protein sequence data, or high-performance liquid chromatography peptide profiles, and phenotypic characteristics, such as particle morphology, host range, symptomatology, cross-protection, cytoplasmic inclusion morphology, and serology. Coat protein and gene sequence data are the most useful criteria, as they can be used to distinguish viruses from strains and to establish evolutionary relationships between groups of distinct potyviruses. This has led to the revised classification of some viruses and strains and to the clarification of previously conflicting and inconsistent biological properties. It has also provided a sound basis for subgrouping potyviruses. An analysis of the data supports the view that the potyvirus group, including the non-aphid-transmitted viruses, should be elevated to family status, that the vector transmission mode, which correlates with major sequence diversity, should define the four genera, and that distinct potyviruses correspond to species and their variants to strains.

Amino Acid Sequence

Coat protein of potyviruses. 6. Amino acid sequences suggest watermelon mosaic virus 2 and soybean mosaic virus-N are strains of the same potyvirus.

The amino acid sequence of the coat protein of watermelon mosaic virus 2 (WMV 2) was determined by a combination of peptide and nucleic acid sequencing. The coat protein of WMV 2 contained 281 amino acid residues including a single cysteine at position 132 and a blocked amino terminus. Comparison with the coat protein sequences of 20 strains of ten distinct potyviruses showed sequence homologies ranging from 43% to 69% except for the N strain of soybean mosaic virus (SMV-N), where the sequence homology with WMV 2 was 83%. This degree of homology and the location of sequence differences between WMV 2 and SMV-N is much closer to that observed between strains of the same virus than that found between distinct potyviruses. These data suggest that WMV 2 and SMV-N may be strains of the same virus.

Amino Acid Sequence