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In vivo complementation analysis of nitrate reductase-deficient mutants in Chlamydomonas reinhardtii

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Summary

In vivo complementation between different wild and mutant strains defective for nitrate assimilation has been performed by isolating diploid strains from the appropriate crosses. Twenty-two diploids homozygous or heterozygous with respect to nitrate reduction and able to grow on nitrate medium were obtained and their diploid character demonstrated from analyses of mating type, cell volume, nuclear size and progeny of crosses with haploid wild-type. All diploids were assayed for overall- and terminal-nitrate reductase (NR) activity and for the occurrence of the NR-diaphorase subunit. Data on NR activities in heterozygotes carrying mutation(s) in structural gene(s) (nit-1 or nit-1a, nit-1b) agree with the heteromultimeric nature of the enzyme complex previously described (Franco et al. (1984) EMBO J 3: 1403–1407), and indicate that subunits are exchangeable to form hybrid enzymes. In addition, in vitro complementation tests with mutant nit-1 of C. reinhardtii indicate that this mutant has defective NR-diaphorase subunits but intact terminal subunits. Super-repression caused by the mutant allele nit-2 is suppressed by the wild allele in heterozygotes, which suggests a positive control by the nit-2 product on structural gene(s) transcription. Mutant alleles of genes for the biosynthesis of molybdenum-containing cofactor, either nit-4 or nit-5 and nit-6, were recessive in diploids carrying them. The mutant allele of nit-3, from strain 307, was codominant in all heterozygotes suggesting that nit-3 codes for a protein whose activity is limiting for the molybdenum-cofactor biosynthetic pathway.

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Abbreviations

NR:

nitrate reductase

MNNG:

N-methyl-N+-Nitro-N-nitrosoguanidine

MoCo:

molybdenum-containing cofactor

WT:

wild-type

DAPI:

4′,6-diamidino-2-phenylindol

References

  • Arnon DI (1949) Plant Physiol 24:1–15

    Google Scholar 

  • Barea JL, Cárdenas J (1975) Arch Microbiol 105:21–25

    Google Scholar 

  • Bradford MM (1976) Anal Biochem 72:248–256

    Google Scholar 

  • Cove DJ (1979) Biol Rev 54:291–327

    Google Scholar 

  • Crick FHC, Orgel LE (1964) J Mol Biol 8:161–165

    Google Scholar 

  • Ebersold WT (1967) Science 157:447–449

    Google Scholar 

  • Fernández E, Cárdenas J (1981a) Biochim Biophys Acta 657:1–12

    Google Scholar 

  • Fernández E, Cárdenas J (1981b) Planta 153:254–257

    Google Scholar 

  • Fernández E, Cárdenas J (1982a) Biochim Biophys Acta 681:530–537

    Google Scholar 

  • Fernández E, Cárdenas J (1982b) Mol Gen Genet 186:164–169

    Google Scholar 

  • Fernández E, Cárdenas J (1983a) Biochim Biophys Acta 745:12–19

    Google Scholar 

  • Fernández E, Cárdenas J (1983b) Z Naturforsch 38:439–445

    Google Scholar 

  • Fernández E, Matagne RF (1984) Curr Genet 8:635–640

    Google Scholar 

  • Franco AR, Cárdenas J, Fernández E (1984a) EMBO J 3:1403–1407

    Google Scholar 

  • Franco AR, Cárdenas J, Fernández E (1984b) FEBS Lett 176:453–456

    Google Scholar 

  • Gilham NW (1965) Genetics 52:529–537

    Google Scholar 

  • Gorman DS, Levine RP (1965) Proc Natl Acad Sci USA 54:1665–1669

    Google Scholar 

  • Guerrero MG, Vega JM, Losada M (1981) Ann Rev Plant Physiol 32:169–204

    Google Scholar 

  • Hewitt EJ, Notton BA (1980) Nitrate reductase systems in eukaryotic and prokaryotic organisms. In: Coughlan MP (ed) Molybdenum and molybdenum-containing enzymes. Pergamon Press, Oxford, pp 273–325

    Google Scholar 

  • Levine RP, Ebersold WT (1960) Annu Rev Microbiol 14:197–216

    Google Scholar 

  • Loppes R (1966) Z Vererbungsl 98:193–202

    Google Scholar 

  • Loppes R (1970) Experientia 26:660–661

    Google Scholar 

  • Loppes R, Matagne RF (1972) Genetica 43:422–430

    Google Scholar 

  • Loppes R, Matagne RF (1975) Principles of genetic regulation in lower and higher plants. In: Ledoux L (ed) Genetic manipulations with plant material. Plenum Press, New York, pp 89–105 (Nato Advanced Study Institutes Ser)

    Google Scholar 

  • Loppes R, Matagne RF, Strijkert PJ (1972) Heredity 28:239–251

    Google Scholar 

  • Matagne RF (1976) Mol Gen Genet 146:209–214

    Google Scholar 

  • Matagne RF, Hermesse MP (1981) Genetics 99:371–381

    Google Scholar 

  • Matagne RF, Loppes R (1975) Interallelic complementation in the study of gene action. In: Ledoux L (ed) Genetic manipulations with plant material. Plenum Press, New York, pp 77–88 (Nato Advanced Study Institutes Ser)

    Google Scholar 

  • Marzluf GA (1981) Microbiol Rev 45:437–461

    Google Scholar 

  • Mendel RR, Müller AJ (1979) Mol Gen Genet 177:145–153

    Google Scholar 

  • Nichols GL, Syrett PJ (1978) J Gen Microbiol 108:71–77

    Google Scholar 

  • Nichols GL, Shehata SAM, Syrett PJ (1978) J Gen Microbiol 108:79–88

    Google Scholar 

  • Pineda M, Fernández E, Cárdenas J (1984) Physiol Plant 62:453–457

    Google Scholar 

  • Sosa FM, Ortega T, Barea JL (1978) Plant Sci Lett 11:51–58

    Google Scholar 

  • Thacker A, Syrett PJ (1972) New Phytol 71:435–441

    Google Scholar 

  • Zabin I, Villarejo MR (1975) Annu Rev Biochem 44:295–313

    Google Scholar 

Download references

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Fernández, E., Matagne, R.F. In vivo complementation analysis of nitrate reductase-deficient mutants in Chlamydomonas reinhardtii . Curr Genet 10, 397–403 (1986). https://doi.org/10.1007/BF00418413

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  • DOI: https://doi.org/10.1007/BF00418413

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