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M Rosbash

Publications and source records attributed to M Rosbash.

At least 199 records · Page 11Linked to original sources

Number and distribution of polyadenylated RNA sequences in yeast.

The poly(A)-containing RNA, isolated from the budding yeast Saccharomyces cerevisiae, has been characterized with regard to the number and distribution of sequences by a kinetic analysis of RNA-cDNA hybridization. In agreement with results previously obtained on metazoan eucaryotes (Bishop et al., 1974), discrete complexity classes were observed. There exist low, medium, and high complexity classes which contain approximately 20, 400, and 2400 sequences, respectively. This measurements of the number of sequences has been verified by hybridization with single copy DNA. 20% of the single copy fraction of the yeast genome is rendered double-stranded by poly(A)-containing RNA. Assuming asymmetric transcription, this is equivalent to approximately 4000 poly(A)-containing sequences, verifying the results obtained with RNA-cDNA hybridization. In addition, the first-order kinetics of the hybridization with single copy DNA verified the notion that most of the sequence complexity is present at the same intracellular concentration. The same number and distribution of sequences were found in poly(A)-containing polysomal RNA and in total RNA, suggesting that most or all of the sequence complexity is on polysomes and is adenylated. The results indicate that RNA-cDNA hybridization is an accurate method for determining sequence complexity values and that yeast, grown under vegetative conditions, has 3000-4000 different mRNA sequences.

Base Sequence↗

Regulation of a set of abundant mRNA sequences.

The temperature-sensitive mutant of yeast, rna2-, when incubated at the nonpermissive temperature, has a qualitatively distinct distribution of mRNA sequences as compared to wild-type. Quantitative comparison with the wild-type distribution indicates that after 1 hr at the nonpermissive temperature, the concentration of approximately 100-150 abundant sequences is significantly decreased. Control experiments indicate that this effect is not simply a function of the increase in incubation temperature nor a general effect on all mRNAs. Gorenstein and Warner (1976) have shown that the synthesis of ribosomal proteins is preferentially depressed at the non-permissive temperature in rna2-. It is proposed that among these 100-150 sequences are the mRNAs which code for the ribosomal proteins.

Base Sequence↗

The syntheiss of high yields of full-length reverse transcripts of globin mRNA.

Conditions have been determined under which reverse transcriptase catalyzes the synthesis of the high yields of full length complementary deoxyribonucleic acid (cDNA). These conditions depend not only on the cencentration of deoxynucleoside triphosphates (1) but also on the concentration of reverse transcriptase. An analysis of the kinetics of cDNA synthesis and the size of cDNA synthesized as a function of time under different conditions indicates that the mechanism of action of reverse transcriptase is partially distributive. This accounts for the necessity of a high enzyme concentration to obtain high yields of full length cDNA. Additional experiments indicate that the yield of cDNA is limited by the fact that the template mRNA is rapidly inactivated. This is most likely due to the fact that the product cDNA is hydrogen bonded to the template mRNA during synthesis.

Animals↗

Conservation of cytoplasmic poly (A)-containing RNA in mouse and rat.

By comparing the melting temperature of DNA-DNA duplexes between related species, it is shown that total single-copy DNA evolves at a faster rate that DNA which is transcribed into poly (A)-containing RNA. Such a comparison suggests that at least 70% of rat single-copy DNA does not code for protein.

Alleles↗

Analysis of the C-value paradox by molecular hybridization.

Poly(A)-containing RNA was isolated from ovaries of Xenopus laevis laevis and Triturus cristatus carnifex and used as a template for the synthesis of radioactive complementary DNA with RNA-dependent DNA polymerase. When annealed with an excess of homologous DNA, the complementary DNA is rendered double-stranded with kinetics that suggest that the coding sequences are single-copy in both these organisms. In Triturus, these sequences are distinct from the majority of the genome, which consists of repeated sequences, and distinct from the ribosomal cistrons, which are present in proportion to the increase in C-value relative to the Xenopus genome. Moreover, the number of different poly(A)-containing molecules in the ovary (sequence complexity) is the same in Xenopus and in Triturus.

Adenine Nucleotides↗

Messenger and heterogeneous nuclear RNA in HeLa cells: differential inhibition by cordycepin.

Cordycepin (3'-deoxyadenosine) suppresses the labeling of messenger RNA in HeLa cells. The drug has no effect on either the labeling of nuclear heterogeneous RNA or on the transport of messenger RNA into the cytoplasm. The results suggest that messenger RNA and nuclear heterogeneous RNA are synthesized separately, and that the transcription of messenger RNA is inhibited by the drug.

Carbon Isotopes↗

A Drosophila Minute gene encodes a ribosomal protein.

Minute genes have long constituted a special problem in Drosophila genetics. For at least 50-60 different genes scattered throughout the genome, dominant mutations and/or deficiencies have been recognized which result in a common phenotype consisting of short thin bristles, slow development, reduced viability, rough eyes, small body size and etched tergites. Schultz proposed that the Minute loci encode similar but separate functions involved in growth and division common to all cells. Atwood and Ritossa suggested that Minute loci encode components of the protein synthetic machinery, specifically the transfer RNA genes; this now seems unlikely on grounds of both mapping and mutability studies. More recently, we and others suggested that the Minute loci are ribosomal protein genes. We report here that transformation with a cloned 3.3-kilobase (kb) region containing the gene encoding the large subunit ribosomal protein 49 (rp49) suppresses the dominant phenotypes of Minute (3)99D, a previously undescribed Minute associated with a chromosomal deficiency of the 99D interval. This activity is specific to the 99D Minute as it does not suppress other Minute loci elsewhere in the genome. This result provides direct evidence that the Minute locus at the 99D interval encodes the ribosomal protein 49.

Animals↗

Cleavage of 5' splice site and lariat formation are independent of 3' splice site in yeast mRNA splicing.

Analysis of messenger RNA splicing in yeast and in metazoa has led to the identification of an RNA molecule in a lariat conformation. This structure has been found as an mRNA splicing intermediate in vitro and identical molecules have been identified in vivo. Lariat formation involves cleavage of the precursor at the 5' splice site (5' SS) and the formation of a 2'-5' phosphodiester bond between the guanosine residue at the 5' end of the intron and an adenosine within the intron. The yeast branchpoint is located within the absolutely conserved TACTAAC box (that is, the last A of the TACTAAC box is the site of formation of the 2'-5' phosphodiester bond with the 5' end of the intron)3,4. Moreover, efficient 5' SS cleavage and lariat formation require proper sequences at the 5' splice junction and within the TACTAAC box. Here we demonstrate that 5' SS cleavage and lariat formation take place in vitro in the absence of the 3' SS and much of the 3' junction. These results are discussed in light of possible differences between yeast and metazoan mRNA splicing.

Base Sequence↗

Electrophoresis of ribonucleoproteins reveals an ordered assembly pathway of yeast splicing complexes.

Three splicing complexes formed with a yeast pre-messenger RNA during in vitro splicing can be resolved by non-denaturing gel electrophoresis after incubation in the presence of non-specific competitor RNA. The time course of the appearance of these complexes and their composition suggest that they represent an ordered pathway of splicing complex assembly.

Electrophoresis, Polyacrylamide Gel↗