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Analysis of conventional and in vitro generated mutants ofnmr, the negatively acting nitrogen regulatory gene ofNeurospora crassa

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Summary

Thenmr gene is the major negative regulatory gene in the nitrogen control circuit ofNeurospora crassa, which, together with positive regulatory genes, governs the expression of multiple unlinked structural genes of the circuit. Possible functional domains of the NMR protein were investigated by mutational analyses using three different approaches. First, the polymerase chain reaction was used to clone thenmr locus from two conventional mutants, V2M304 and MS5, and the mutant amino acid codons were identified. A single point mutation was shown to be responsible for the mutant phenotype in each of these strains. The V2M304 allele contains a nonsense codon, and in the MS5 allele an aspartate has been substituted for glycine at residue 386. Our second approach studied possible functionally important regions in thenmr gene by the use of site-directed mutagenesis. The region containing the naturally occurring substitution in MS5 appears to be essential for function whereas a region in the N-terminal part of the protein does not seem important for NMR function. Finally, over 50% of the protein coding region was randomly mutagenized and amino acid residues that are essential for function and others that are functionally unimportant were identified.

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References

  • Bahns M, Garrett RH (1980) Demonstration of de novo synthesis ofNeurospora crassa nitrate reductase during induction. J Biol Chem 255:690–693

    Google Scholar 

  • Birnboim HC, Doly J (1979) A rapid alkaline extraction procedure for screening recombinant plasmid DNA. Nucleic Acids Res 7:1513–1523

    Google Scholar 

  • Case ME (1983) Gene organization and regulation inNeurospora crassa. Evidence from the cloning and transformation of the qa gene cluster. In: Lurquin PF, Kleinhofs A (eds) Genetic engineering in eukaryotes. Plenum Publishing, New York, New York

    Google Scholar 

  • Davis RH, de Serres F (1970) Genetic and microbial research techniques forNeurospora crassa. Methods Enzymol 17A:79–143

    Google Scholar 

  • DeBusk RM, Ogilvie S (1984) Regulation of amino acid utilization inNeurospora crassa: effect ofnmr-1 andms5 mutations. J Bacteriol 160:656–661

    Google Scholar 

  • Dunn-Coleman NS, Garrett RH (1980) The role of glutamine synthetase and glutamine metabolism in nitrogen metabolite repression, a regulatory phenomenon in the lower eukaryoteNeurospora crassa. Mol Gen Genet 179:25–32

    Google Scholar 

  • Dunn-Coleman NS, Tomsett AB, Garrett RH (1981) The regulation of nitrate assimilation inNeurospora crassa: biochemical analysis ofnmr-1 mutants. Mol Gen Genet 182:234–239

    Google Scholar 

  • Fu YH, Marzluf GA (1987) Characterization ofnit-2, the major nitrogen regulatory gene ofNeurospora crassa. Mol Cell Biol 7:1691–1696

    Google Scholar 

  • Fu YH, Marzluf GA (1990)Nit-2, The major nitrogen regulatory gene ofNeurospora crassa, encodes a protein with a putative zinc finger DNA-binding domain. Mol Cell Biol 10:1056–1065

    Google Scholar 

  • Fu YH, Young JL, Marzluf GA (1988) Molecular cloning and characterization of a negative-acting nitrogen regulatory gene ofNeurospora crassa. Mol Gen Genet 214:74–79

    Google Scholar 

  • Grove G, Marzluf GA (1981) Identification of the product of the major regulatory gene of the nitrogen control circuit ofNeurospora crassa as a nuclear DNA binding protein. J Biol Chem 256:463–470

    Google Scholar 

  • Hall MN, Hereford L, Herskowitz I (1984) Targeting ofE. coli beta-galactosidase to the nucleus in yeast. Cell 36:1057–1065

    Google Scholar 

  • Johnson PF, McKnight SL (1989) Eukaryotic transcriptional regulatory proteins. Annu Rev Biochem 58:799–839

    Google Scholar 

  • Kalderon D, Roberts BL, Richardson WD, Smith AE (1984) A short amino acid sequence able to specify nuclear location. Cell 39:499–509

    Google Scholar 

  • Keegan L, Gill G, Ptashne M (1986) Separation of DNA binding from the transcription-activating function of a eukaryotic regulatory protein. Science 231:699–704

    Google Scholar 

  • Kim SY, Marzluf GA (1988) Transformation ofNeurospora crassa with thetrp-1 gene and the effect of host strain upon the fate of the transforming DNA. Curr Genet 13:65–70

    Google Scholar 

  • Kinsey JA, Rambosek JA (1984) Transformation ofNeurospora crassa with the clonedam (glutamate dehydroganase) gene. Mol Cell Biol 4:117–122

    Google Scholar 

  • Kunkel TA (1985) Rapid and efficient site-specific mutagenesis without phenotypic selection. Proc Natl Acad Sci USA 82:488–492

    Google Scholar 

  • Levine M, Manley JL (1989) Transcriptional repression of eukaryotic promoters. Cell 59:405–408

    Google Scholar 

  • Marzluf GA (1981) Regulation of nitrogen metabolism and gene expression in fungi. Microbiol Rev 45:437–461

    Google Scholar 

  • Marzluf GA, Fu YH (1989) Molecular analyses of the nitrogen and sulfur regulatory circuits ofNeurospora crassa. In: Herschberger CR, Queener SW, Hegeman G (eds) Genetics and molecular biology of industrial microorganisms. American Society for Microbiology, Washington, D.C. pp 479–487

    Google Scholar 

  • Metzenberg RL, Baisch TJ (1981) An easy method for preparing Neurospora DNA. Neurospora Newslett 28:20–21

    Google Scholar 

  • Moreland RB, Langevin GL, Singer RH, Garcea RL, Hereford LM (1987) Amino acid sequences that determine the nuclear localization of yeast historic 2B. Mol Cell Biol 7:4048–4057

    Google Scholar 

  • Nahm BN, Marzluf GA (1987) Induction and de novo synthesis of uricase, a nitrogen regulated enzyme inNeurospora crassa. J Bacteriol 169:1943–1948

    Google Scholar 

  • Nogi Y, Fukasawa T (1989) Functional domains of a negative regulatory protein, GAL80, ofSaccharomyces cerevisiae. Mol Cell Biol 9:3009–3017

    Google Scholar 

  • Orr-Weaver TL, Szostak JW, Rothstein RJ (1981) Yeast transformation: a model system for the study of recombination. Proc Natl Acad Sci USA 78:6354–6358

    Google Scholar 

  • Paietta JV, Marzluf GA (1985) Gene disruption by transformation inNeurospora crassa. Mol Cell Biol 5:1554–1559

    Google Scholar 

  • Pfeifer K, Kim KS, Kogan S, Guarente L (1989) Functional dissection and sequence of yeast HAP1 activator. Cell 56:291–301

    Google Scholar 

  • Picard D, Yamamoto KR (1987) Two signals mediate hormonedependent nuclear localization of the glucocorticoid receptor. EMBO J 6:3333–3340

    Google Scholar 

  • Pine R, Huang PC (1987) An improved method to obtain a large number of mutants in a defined region of DNA. Methods Enzymol 154:415–430

    Google Scholar 

  • Premakumar R, Sorger JG, Gooden D (1979) Nitrogen metabolic repression of nitrate reductase inNeurospora crassa. J Bacteriol 137:1119–1126

    Google Scholar 

  • Premakumar R, Sorger JG, Gooden D (1980) Physiological characterization of aNeurospora crassa mutant with impaired regulation of nitrate reductase. J Bacteriol 144:542–551

    Google Scholar 

  • Saiki RK, Gelfand DH, Stoffel S, Scharf SJ, Higuchi R, Horn TG, Mullis KB, Erlich HA (1988) Primer-directed enzymatic amplification of DNA with a thermostable DNA polymerase. Science 239:487–491

    Google Scholar 

  • Sanger F, Nicklen S, Coulson AR (1977) DNA sequencing with chain-terminating inhibitors. Proc Natl Acad Sci USA 74:5463–5467

    Google Scholar 

  • Stewart V, Vollmer SJ (1986) Molecular cloning ofnit-2, a regulatory gene required for nitrogen metabolite repression inNeurospora crassa. Gene 46:291–295

    Google Scholar 

  • Vieira J, Messing J (1987) Production of single-stranded plasmid DNA. Methods Enzymol 153:3–11

    Google Scholar 

  • Vinson CR, Sigler PB, McKnight SL (1989) Scissors-grip model for DNA recognition by a family of leucine zipper proteins. Science 246:911–916

    Google Scholar 

  • Vollmer SJ, Yanofsky C (1986) Efficient cloning of genes ofNeurospora crassa. Proc Natl Acad Sci USA 83:4869–4873

    Google Scholar 

  • Wernars KT, Goosen T, Wennekes BMJ, Sewart K, van den Hondel CAMJJ, van den Broek HWJ (1987) Cotransformation ofAspergillus nidulans: a tool for replacing fungal genes. Mol Genet Genet 209:71–77

    Google Scholar 

  • Yelton MM, Hamer JE, Timberlake WE (1984) Transformation ofAspergillus nidulans by using atrpC plasmid. Proc Natl Acad Sci USA 81:1470–1474

    Google Scholar 

  • Young JL, Jarai G, Fu YH, Marzluf GA (1990) Nucleotide sequence and analysis ofnmr, a negative-acting regulatory gene in the nitrogen circuit ofNeurospora crassa. Mol Gen Genet in press

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Communicated by W. Gajewski

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Jarai, G., Marzluf, G.A. Analysis of conventional and in vitro generated mutants ofnmr, the negatively acting nitrogen regulatory gene ofNeurospora crassa . Mol Gen Genet 222, 233–240 (1990). https://doi.org/10.1007/BF00633823

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