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R B Wickner

Publications and source records attributed to R B Wickner.

At least 91 records · Page 5Linked to original sources

Portable encapsidation signal of the L-A double-stranded RNA virus of S. cerevisiae.

The (+) single-stranded RNA (ssRNA) of the L-A virus is the species packaged to form new viral particles. Empty L-A viral particles specifically bind viral (+) ssRNA, and a sequence 400 bases from the 3' end is necessary for this activity. We show that its stem-loop structure, the A residue protruding from the stem, and the loop sequence are all important for the binding, and that this 34 base region is sufficient for the binding. M1, a satellite virus of L-A, has a similar structure on its (+) strand that is likewise sufficient for the binding. Heterologous RNA with the binding sequence from L-A or M1, when expressed in vivo, was packaged in L-A viral particles. Thus, the sites necessary to bind to empty particles are encapsidation signals for the L-A virus. Since the pol domain of the 180 kd minor coat protein appears to be responsible for the binding, this result suggests that the RNA polymerase molecule recognizes the viral genome for packaging.

Base Sequence↗

Circular single-stranded RNA replicon in Saccharomyces cerevisiae.

Circular RNA replicons have been reported in plants and, in one case, in animal cells. We describe such an element in yeast. In certain yeast strains, a 20S RNA species appears on transfer of cells to acetate medium. This phenotype shows cytoplasmic (non-Mendelian) inheritance and the 20S RNA is associated with 23-kDa protein subunits as a 32S particle. We demonstrate that yeast 20S RNA is an independent replicon with no homology to host genomic, mitochondrial, or 2-microns plasmid DNA or to the L-A, L-BC, or M1 double-stranded RNA viruses of yeast. The circularity of the 20S RNA is shown by the apparent absence of 3' and 5' ends, by two-dimensional gel electrophoresis, and by electron microscopy. Replication of yeast 20S RNA proceeds through an RNA-RNA pathway, and a 10,000-fold amplification occurs on shift to acetate medium. The copy number of 20S RNA is also reduced severalfold by the SKI gene products, a host antiviral system that also lowers the copy numbers of yeast double-stranded RNA viruses. Yeast 20S RNA and the hepatitis delta virus show some similarities.

Genotype↗

Reconstitution of template-dependent in vitro transcriptase activity of a yeast double-stranded RNA virus.

Isolated mature L-A viral particles from yeast have a transcriptase activity that uses endogenous L-A double-stranded RNA (dsRNA) as template. We have previously demonstrated that empty particles derived from mature L-A viral particles have replicase activity capable of synthesizing minus strand single-stranded RNA (ssRNA) on an added plus strand ssRNA template to form dsRNA. We report here that empty particles also have transcriptase activity that uses added viral dsRNA as template. The newly synthesized ssRNA was the plus strand, and some of these transcripts were converted to the dsRNA form by the replicase activity associated with the empty particles. This transcriptase activity, however, required a much higher concentration of polyethylene glycol than that used previously for the replicase activity. The mode of transcription was conservative. The enzyme transcribed ssRNA from L-A, M1, or X (a deletion mutant of L-A) dsRNAs but not from other yeast dsRNAs (L-BC, T, or W), bacteriophage Phi6 dsRNAs, or animal rotavirus dsRNAs, indicating the same template specificity as that expected for the in vivo reaction. This assay system, and the replicase assay system, will allow us to study in vitro all the enzymatic reactions essential for the viral replication cycle.

Base Sequence↗

The double-stranded RNA genome of yeast virus L-A encodes its own putative RNA polymerase by fusing two open reading frames.

The L-A double-stranded RNA virus of Saccharomyces cerevisiae encodes its major coat protein (80 kDa) and a minor single-stranded RNA binding protein (180 kDa) that has immunological cross-reactivity with the major coat protein. The sequence of L-A cDNA clones revealed two open reading frames (ORF), ORF1 and ORF2. These two reading frames overlap by 130 base pairs and ORF2 is in the -1 reading frame with respect to ORF1. Although the major coat protein of the viral particles is encoded by ORF1, the 180-kDa protein is derived from the entire double-stranded RNA genome by fusing ORF1 and ORF2, probably by a -1 translational frameshift. Within the overlapping region is a sequence similar to that producing a -1 frameshift by "simultaneous slippage" in retroviruses. The coding sequence of ORF2 shows a pattern characteristic of viral RNA-dependent RNA polymerases of icosahedral (+)-strand RNA viruses. Thus, the 180-kDa protein is analogous to gag-pol fusion proteins.

Amino Acid Sequence↗

Internal and terminal cis-acting sites are necessary for in vitro replication of the L-A double-stranded RNA virus of yeast.

Empty particles of the L-A dsRNA virus of Saccharomyces cerevisiae bind to added viral (+) strands and convert them to dsRNA (RNA replication) in an in vitro reaction that is dependent on host factors. X dsRNA (530 bp long) is a deletion derivative of L-A dsRNA (4.5 kb). By modifying our cDNA clone of X and testing template activity of T7 RNA polymerase transcripts, we have found that both the 3' end 30 bases and an internal site on the (+) strand are necessary for optimal replication [in vitro (-) strand synthesis]. Changing any one of the 3' terminal three bases eliminates template activity, but the 3' terminal five bases of M1 (a satellite virus of L-A) can replace the 3' terminal four bases of X. A subterminal stem-loop structure is also important for template activity. The internal site that enhances replication is approximately 400 bp from the 3' end and is distinct from the site necessary for binding of (+) strands to the empty viral particles.

Base Sequence↗

Yeast virology.

The three families of double-stranded RNA (dsRNA) viruses and two families of retroviruses (retrotransposons) of the yeast Saccharomyces cerevisiae are all transmitted between cells only by cell fusion, probably reflecting the high frequency of mating of yeast cells in nature. One dsRNA virus and two retroviruses apparently use ribosomal "frameshifting" to produce major coat protein-polymerase fusion proteins. This mechanism allows regulation of the relative amounts of major coat protein and fusion protein that are made and avoids the possibility of mutant virus genomes being generated by splicing. Moreover, the fusion protein structure suggests a possible mechanism of genome packaging. The recent development of in vitro replication, transcription, and integration systems for these viruses, and the ease with which classical genetic and molecular studies are executed in yeast, are yielding detailed information about the roles of cellular and viral components in the viral replication cycles and the host defensive response. A host defense system against yeast dsRNA viruses is known and there is evidence to suggest a system active against the retroviruses.

DNA Transposable Elements↗

Gene overlap results in a viral protein having an RNA binding domain and a major coat protein domain.

L-A double-stranded RNA (dsRNA) replicates in vivo in yeast in a conservative, asynchronous (first [+] strand then [-] strand), intraviral process. New particles are formed by packaging (+) strands. Added viral (+) single-stranded RNA (ssRNA) is specifically bound by empty virus-like particles (VLPs) and, in a reaction requiring a host factor, is converted in vitro to dsRNA. We find that the isolated binding complex replicates only if it was formed in the presence of the host factor. The VLP minor 180 kd protein, but not the major coat protein, has ssRNA binding activity on Western blots. The 180 kd protein shares a common antigenic domain with the major coat protein, the latter known to be encoded by L-A dsRNA. The 180 kd protein, but not the major coat protein, also shares an antigenic domain with a sequence encoded by the 3' end of the L-A (+) strand. Thus the 180 kd protein is also encoded by L-A dsRNA and consists of a major coat protein domain and a ssRNA binding domain.

Amino Acid Sequence↗

The MAK11 protein is essential for cell growth and replication of M double-stranded RNA and is apparently a membrane-associated protein.

MAK11 is a gene necessary for the maintenance of killer M1 double-stranded RNA, but not for other cellular double-stranded RNAs (L-A, L-BC, T, W). The DNA sequence of this gene revealed a 1407-base pair open reading frame, which corresponds to a 54-kDa protein. The C-terminal region is lysine-rich and is necessary for mak11-complementing activity. The N-terminal 24 amino acids of the open reading frame include 16 hydrophobic amino acids, 4 basic residues, and 4 neutral amino acids; this sequence could span a membrane. We constructed a MAK11-lacZ fusion that includes the entire MAK11 protein and complements the mak11-1 mutation. The fusion protein was localized in a membrane fraction as shown by centrifugation in Percoll gradients. The fusion protein could be released from the membrane fraction by salt washing. Western blotting of protein, isolated from the membrane fraction and purified by p-aminophenyl-beta-D-thiogalactoside-agarose column chromatography, revealed a fusion protein monomer of 170 kDa which agrees with the predicted molecular weight. While the mak11-1 mutation results in specific loss of M1 double-stranded RNA without any apparent growth defect, replacing a 792-base pair internal EcoRV fragment of MAK11 with the URA3 gene (gene disruption) resulted in a lethal mutation.

Amino Acid Sequence↗

Replicase of L-A virus-like particles of Saccharomyces cerevisiae. In vitro conversion of exogenous L-A and M1 single-stranded RNAs to double-stranded form.

Virus-like particles that contain L-A double-stranded RNA are known to have transcriptase activity whose product is L-A single-stranded plus RNA. In low salt conditions, these particles release their double-stranded RNA and can then use added plus L-A or plus M1 single-stranded RNAs as templates to synthesize their respective double-stranded RNAs. The reaction requires dialyzed L-A virus-like particles as the source of the enzyme, a partially purified cell extract (host factor(s)), added single-stranded RNA as a template, and polyethylene glycol 6000, along with four NTPs. Crude host factor extracts prepared from mak3 or mak10ta mutants also support the reaction as effectively as that from a wild type strain, while a crude extract prepared from a pet18 mutant grown under the nonpermissive conditions is less effective. Template specificity of the in vitro reaction is the same as that expected for the enzyme reaction in vivo. Plus L-A and plus M1 single-stranded RNAs, but not 18 S rRNA, are converted to their respective double-stranded RNAs with net RNA synthesis. The newly synthesized strand of M1 double-stranded RNA is a full-length minus strand. This demonstration of replicase activity in the mature L-A virus-like particles which contain L-A double-stranded RNA is consistent with our previous L-A double-stranded RNA replication model; the difference between the mature L-A virus-like particles and L-A double-stranded RNA-synthesizing particles (expected to be replication intermediates in vivo) is just that the former contain L-A double-stranded RNA, while the latter contain L-A plus single-stranded RNA.

DNA Replication↗

PHO85, a negative regulator of the PHO system, is a homolog of the protein kinase gene, CDC28, of Saccharomyces cerevisiae.

The product of the PHO85 gene, which encodes one of the negative regulatory factors of the PHO system in Saccharomyces cerevisiae, shows significant amino acid sequence homology with the CDC28 protein kinase. However, overexpressing PHO85 did not suppress the temperature sensitive phenotype of the cdc28-1 mutation. The nucleotide sequence of the PHO85 gene strongly suggests the presence of an intron near the sequence encoding the N-terminal region.

Amino Acid Sequence↗

Site-specific binding of viral plus single-stranded RNA to replicase-containing open virus-like particles of yeast.

X double-stranded RNA is a deletion mutant of L-A double-stranded RNA and is encapsidated in viral particles by the L-A-encoded major coat protein. X double-stranded RNA has all the cis sites necessary to be transcribed, encapsidated, and replicated. We have cloned X double-stranded RNA and sequenced it. The complete X double-stranded RNA sequence deduced indicates that the first 25 bases of the X plus-strand 5' end originated from the 5' end of the L-A plus strand and that most, if not all, of the rest comes from the 3' end of the L-A plus strand. The X plus strand made by X double-stranded RNA-containing virus-like particles binds specifically to empty open virus-like particles and is converted by these particles to X double-stranded RNA. RNA transcripts of the X complementary DNA clones and deletion derivatives thereof were made in vitro by T7 and T3 RNA polymerases and tested for specific binding to the virus-like particles. The results suggest that the binding is due to the sequence UUUGGCCAGG, 370 bases upstream from the X plus-strand 3' end. This sequence is also present in the M1 plus strand 140 bases from its 3' end.

Amino Acid Sequence↗

Host function of MAK16: G1 arrest by a mak16 mutant of Saccharomyces cerevisiae.

The MAK16 gene was first defined as a gene whose mutation resulted in loss of M1 double-stranded RNA virus-like particles. The mak16-1 mutation also produces temperature-sensitive cell growth. We report here that mak16-1 cells arrest at the nonpermissive temperature in G1 phase, such that they are mating competent. We sequenced the MAK16 gene and found an open reading frame of 306 amino acids encoding a predicted protein of Mr 35,694. Two typical nuclear localization signal sequences were found. MAK16-LacZ fusion proteins that include one of these putative signals entered the nucleus, while unfused beta-galactosidase did not, as judged by subcellular fractionation experiments. In the C-terminal third of the MAK16 open reading frame is an acidic region in which 25 of 41 residues are either glutamate or aspartate. This region contains potential phosphorylation sites for "casein kinases," protein kinases specific for serine or threonine residues in an acidic environment.

Base Sequence↗

A deletion mutant of L-A double-stranded RNA replicates like M1 double-stranded RNA.

X double-stranded RNA (dsRNA) is a 0.52-kilobase dsRNA molecule that arose spontaneously in a nonkiller strain of Saccharomyces cerevisiae originally containing L-A and L-BC dsRNAs (L-BC is the same size as L-A but shares no homology with it). X hybridized with L-A, and direct RNA sequencing of X showed that the first 5' 25 base pairs (of the X positive strand) and at least the last 110 base pairs of the 3' end were identical to the ends of L-A dsRNA. X showed cytoplasmic inheritance and, like M1, was dependent on L-A for its maintenance. X was encapsidated in viruslike particles whose major coat protein was provided by L-A (as is true for M1), and X was found in viruslike particles with one to eight X molecules per particle. This finding confirms our "head-full replication" model originally proposed for M1 and M2. Like M1 or M2, X lowers the copy number of L-A, especially in a ski host. Surprisingly, X requires many chromosomal MAK genes that are necessary for M1 but not for L-A.

Base Sequence↗

Suppression of chromosomal mutations affecting M1 virus replication in Saccharomyces cerevisiae by a variant of a viral RNA segment (L-A) that encodes coat protein.

For the maintenance of "killer" M1 double-stranded RNA in Saccharomyces cerevisiae, more than 30 chromosomal genes are required. The requirement for some of these genes can be completely suppressed by a cytoplasmic element, [B] (for bypass). We have isolated a mutant unable to maintain [B] (mab) and found that it is allelic to MAK10, one of the three chromosomal MAK genes required for the maintenance of L-A. The heat curing of [B] always coincided with the loss of L-A. To confirm that [B] is located on L-A, we purified viral particles containing either L-A or M1 from strains with or without [B] activity and transfected these purified particles into a strain which did not have either L-A or M1. The transfectants harboring L-A and M1 from a [B] strain showed the [B] phenotype, but the transfectants with L-A and M1 from a [B-o] strain did not show the [B] phenotype. Furthermore, the transfectants having L-A from a [B] strain and M1 from a [B-o] strain also showed the [B] phenotype. Therefore, we concluded that [B] is a property of a variant of L-A. In the transfection experiment, we also proved that the superkiller phenotype of the [B] strain is a property of L-A and that L-A with [B] activity can maintain a higher copy number of M1 regardless of the source of M1 viruslike particles. These data suggest that MAK genes whose mutations are suppressed by [B] are concerned with the protection of M1 (+) single-stranded RNA or the formation of M1 viruslike particles and that an L-A with more efficient production of M1 viruslike particles can completely dispense with the requirement for those MAK genes.

Chromosomes↗

Metal-binding, nucleic acid-binding finger sequences in the CDC16 gene of Saccharomyces cerevisiae.

The CDC16 gene is involved in the process of chromosome segregation in mitosis and a cdc16ts mutant accumulates the predominant microtubule-associated protein at the nonpermissive temperature. We find that the CDC16 gene open reading frame (ORF) is capable of encoding a protein whose calculated molecular weight and pI are 94,967 and 6.60, respectively. This hypothetical protein contains 16 cysteine residues; five are clustered at the N-terminal, 4 are placed about 3 residues apart in the middle of the peptide, and 3 are located close to the C-terminal. Each of these could form a metal-binding, nucleic acid-binding domain, suggesting this protein acts either as a repressor of the microtubule-associated protein gene or as a component necessary for spindle elongation, possibly interacting with the DNA. The start of the CDC16 ORF is only 95 bp downstream from the end of the MAK11 ORF. In this region there are two TATA boxes in tandem, but there is no room for a UAS or other regulatory sequences. An ATG is present 5 bp upstream of the start of the large ORF. Its frame terminates after only two amino acids.

Amino Acid Sequence↗

Molecular cloning of chromosome I DNA from Saccharomyces cerevisiae: isolation of the MAK16 gene and analysis of an adjacent gene essential for growth at low temperatures.

MAK16 is an essential gene on chromosome I defined by the thermosensitive lethal mak16-1 mutation. MAK16 is also necessary for M double-stranded RNA replication at the permissive temperature for cell growth. As part of an effort to clone all the DNA from chromosome I, plasmids that complemented both the temperature-sensitive growth defect, and the M1 replication defects of mak16-1 strains were isolated from a plasmid YCp50: Saccharomyces cerevisiae recombinant DNA library. The two plasmids analysed contained overlapping inserts that hybridized proportionally to strains carrying different dosages of chromosome I. Furthermore, integration of a fragment of one of these clones occurred at a site linked to ade 1, confirming that this clone was derived from the appropriate region of chromosome I. An open reading frame adjacent to MAK16 potentially coding for a 468 amino acid protein was defined by sequence analysis. 185 amino acids of this open reading frame were replaced with a 1.2 kb fragment carrying the S. cerevisiae URA3 gene by a one-step gene disruption. The resulting strains grew at a rate indistinguishable from the wild type at 20 degrees C, 30 degrees C, or 37 degrees C, but could not grow at 8 degrees C. The deleted region is thus essential only at 8 degrees C, and we name this gene LTE1 (low temperature essential).

Base Sequence↗

Gene disruption indicates that the only essential function of the SKI8 chromosomal gene is to protect Saccharomyces cerevisiae from viral cytopathology.

We have cloned the SKI8 gene, one of the chromosomal genes that repress replication of M, L-A, and L-BC double-stranded RNA viruslike particles in yeast. The clone was used to map SKI8 to chromosome VII near ade5 and to construct a deletion mutant. The deletion mutant was unable to grow at 8 degrees if and only if M1 double-stranded RNA was present.

Chromosome Mapping↗