Induction of sporulation in Saccharomyces cerevisiae leads to the formation of N6-methyladenosine in mRNA: a potential mechanism for the activity of the IME4 gene.
暂无分享,去创建一个
C. Timpte | J. Bokar | Mary J Clancy | Mary Eileen Shambaugh | Candace S Timpte | Joseph A Bokar | M. Clancy | M. E. Shambaugh
[1] S. Shimba,et al. Methylated cap structures in eukaryotic RNAs: structure, synthesis and functions. , 1992, Pharmacology & therapeutics.
[2] R. Blumenthal,et al. Structure-guided analysis reveals nine sequence motifs conserved among DNA amino-methyltransferases, and suggests a catalytic mechanism for these enzymes. , 1995, Journal of molecular biology.
[3] A. K. Banerjee. 5'-terminal cap structure in eucaryotic messenger ribonucleic acids. , 1980, Microbiological reviews.
[4] Y. Kassir,et al. Monitoring meiosis and sporulation in Saccharomyces cerevisiae. , 1991, Methods in enzymology.
[5] Ram Reddy,et al. Accurate and efficient N-6-adenosine methylation in spliceosomal U6 small nuclear RNA by HeLa cell extract in vitro , 1995, Nucleic Acids Res..
[6] J. Warner,et al. Methylated, blocked 5' termini of yeast mRNA. , 1976, The Journal of biological chemistry.
[7] H. Busch,et al. Small Nuclear RNAs: RNA Sequences, Structure, and Modifications , 1988 .
[8] A Janulaitis,et al. Sequence motifs characteristic for DNA [cytosine-N4] and DNA [adenine-N6] methyltransferases. Classification of all DNA methyltransferases. , 1995, Gene.
[9] M. Ares,et al. A yeast intronic splicing enhancer and Nam8p are required for Mer1p-activated splicing. , 2000, Molecular cell.
[10] G. Björk,et al. Transfer RNA modification. , 1987, Annual review of biochemistry.
[11] W. Saenger,et al. Three-dimensional structure of the adenine-specific DNA methyltransferase M.Taq I in complex with the cofactor S-adenosylmethionine. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[12] L. Welder,et al. Nucleotides adjacent to N6-methyladenosine in maize poly(A)-containing RNA , 1981 .
[13] L. Minvielle-Sebastia,et al. Multipurpose vectors designed for the fast generation of N‐ or C‐terminal epitope‐tagged proteins , 1994, Yeast.
[14] F. Rottman,et al. Biosynthesis and Functions of Modified Nucleosides in Eukaryotic mRNA , 1998 .
[15] K. Beemon,et al. Sequence specificity of mRNA N6-adenosine methyltransferase. , 1990, The Journal of biological chemistry.
[16] G. Roeder,et al. Meiosis-specific RNA splicing in yeast , 1991, Cell.
[17] J. V. Van Etten,et al. The amino acid sequence of the eukaryotic DNA [N6-adenine]methyltransferase, M.CviBIII, has regions of similarity with the prokaryotic isoschizomer M.TaqI and other DNA [N6-adenine] methyltransferases. , 1988, Gene.
[18] D. Botstein,et al. Genomic expression programs in the response of yeast cells to environmental changes. , 2000, Molecular biology of the cell.
[19] J L Nichols,et al. 'Cap' structures in maize poly(A)-containing RNA. , 1979, Biochimica et biophysica acta.
[20] T. Nakagawa,et al. The Saccharomyces cerevisiae MER3 gene, encoding a novel helicase‐like protein, is required for crossover control in meiosis , 1999, The EMBO journal.
[21] F. Rottman,et al. Purification and cDNA cloning of the AdoMet-binding subunit of the human mRNA (N6-adenosine)-methyltransferase. , 1997, RNA.
[22] J. Bachellerie,et al. Biosynthesis and utilization of extensively undermethylated poly(A)+ RNA in CHO cells during a cycloleucine treatment. , 1978, Nucleic acids research.
[23] S. Kane,et al. Inhibition of methylation at two internal N6-methyladenosine sites caused by GAC to GAU mutations. , 1987, The Journal of biological chemistry.
[24] B. Moss,et al. 5'-Terminal and internal methylated nucleotide sequences in HeLa cell mRNA. , 1976, Biochemistry.
[25] B. Maden. The numerous modified nucleotides in eukaryotic ribosomal RNA. , 1990, Progress in nucleic acid research and molecular biology.
[26] F. Rottman,et al. Characterization and partial purification of mRNA N6-adenosine methyltransferase from HeLa cell nuclei. Internal mRNA methylation requires a multisubunit complex. , 1994, The Journal of biological chemistry.
[27] M A Walsh,et al. Structure of RsrI methyltransferase, a member of the N6-adenine beta class of DNA methyltransferases. , 2000, Nucleic acids research.
[28] M. Weiner,et al. Site-directed mutagenesis of double-stranded DNA by the polymerase chain reaction. , 1994, Gene.
[29] C. Stoltzfus,et al. Accumulation of Spliced Avian Retrovirus mRNA Is Inhibited in S-Adenosylmethionine-Depleted Chicken Embryo Fibroblasts , 1982, Journal of virology.
[30] J. Vandenhaute,et al. The 18S rRNA dimethylase Dim1p is required for pre-ribosomal RNA processing in yeast. , 1995, Genes & development.
[31] A. Janulaitis,et al. Sequence motifs characteristic of DNA[cytosine-N4]methyltransferases: similarity to adenine and cytosine-C5 DNA-methylases. , 1989, Nucleic acids research.
[32] F. Rottman,et al. N6-methyladenosine residues in an intron-specific region of prolactin pre-mRNA , 1990, Molecular and cellular biology.
[33] S. Camper,et al. Effect of undermethylation on mRNA cytoplasmic appearance and half-life , 1984, Molecular and cellular biology.
[34] G. Roeder,et al. Splicing of the Meiosis-Specific HOP2Transcript Utilizes a Unique 5′ Splice Site , 1999, Molecular and Cellular Biology.
[35] E. W. Jones. Tackling the protease problem in Saccharomyces cerevisiae. , 1991, Methods in enzymology.
[36] D. Dryden,et al. A mutational analysis of the two motifs common to adenine methyltransferases. , 1994, The EMBO journal.
[37] L Grate,et al. Test of intron predictions reveals novel splice sites, alternatively spliced mRNAs and new introns in meiotically regulated genes of yeast. , 2000, Nucleic acids research.
[38] M. Tuck,et al. Inhibition of 6-methyladenine formation decreases the translation efficiency of dihydrofolate reductase transcripts. , 1999, The international journal of biochemistry & cell biology.
[39] Robert P. Perry,et al. The methylated constituents of L cell messenger RNA: Evidence for an unusual cluster at the 5′ terminus , 1975, Cell.
[40] A. Mitchell,et al. Molecular characterization of the yeast meiotic regulatory gene RIM1. , 1993, Nucleic acids research.
[41] R. Sikorski,et al. A system of shuttle vectors and yeast host strains designed for efficient manipulation of DNA in Saccharomyces cerevisiae. , 1989, Genetics.
[42] A. Jeltsch,et al. Functional Roles of Conserved Amino Acid Residues in DNA Methyltransferases Investigated by Site-directed Mutagenesis of theEcoRV Adenine-N 6-methyltransferase* , 1998, The Journal of Biological Chemistry.
[43] R. Levis,et al. 5'-terminal structures of poly(A)+ cytoplasmic messenger RNA and of poly(A)+ and poly(A)- heterogeneous nuclear RNA of cells of the dipteran Drosophila melanogaster. , 1978, Journal of molecular biology.
[44] D. Rao,et al. Functional analysis of conserved motifs in EcoP15I DNA methyltransferase. , 1996, Journal of molecular biology.
[45] R. Blumenthal,et al. Structure of pvu II DNA-(cytosine N4) methyltransferase, an example of domain permutation and protein fold assignment. , 1997, Nucleic acids research.
[46] C. Dieckmann,et al. Regulation of poly(A) site choice of several yeast mRNAs. , 1998, Nucleic acids research.
[47] A. Willems,et al. Studies on the transformation of intact yeast cells by the LiAc/SS‐DNA/PEG procedure , 1995, Yeast.
[48] J. Wölcke,et al. Functional roles of the conserved aromatic amino acid residues at position 108 (motif IV) and position 196 (motif VIII) in base flipping and catalysis by the N6-adenine DNA methyltransferase from Thermus aquaticus. , 1999, Biochemistry.
[49] M. Clancy,et al. IME4, a gene that mediates MAT and nutritional control of meiosis in Saccharomyces cerevisiae , 1992, Molecular and cellular biology.
[50] G. Krauss,et al. Identification of the Binding Site for the Extrahelical Target Base in N 6-Adenine DNA Methyltransferases by Photo-cross-linking with Duplex Oligodeoxyribonucleotides Containing 5-Iodouracil at the Target Position* , 1999, The Journal of Biological Chemistry.
[51] W. Saenger,et al. Universal catalytic domain structure of AdoMet-dependent methyltransferases. , 1995, Journal of molecular biology.
[52] D. Williamson,et al. The use of fluorescent DNA-binding agent for detecting and separating yeast mitochondrial DNA. , 1975, Methods in cell biology.
[53] A. Shatkin,et al. Sequences containing methylated nucleotides at the 5' termini of messenger RNAs: possible implications for processing. , 1974, Cell.
[54] R. Desrosiers,et al. Characterization of Novikoff hepatoma mRNA methylation and heterogeneity in the methylated 5' terminus. , 1975, Biochemistry.
[55] D. Botstein,et al. The transcriptional program of sporulation in budding yeast. , 1998, Science.