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Regulation of gene expression by pH of the growth medium in Aspergillus nidulans

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Summary

In the fungus Aspergillus nidulans the levels of a number of enzymes whose location is at least in part extracellular (e.g. acid phosphatase, alkaline phosphatase, phosphodiesterase) and of certain permeases (e.g. that for γ-amino-n-butyrate) are controlled by the pH of the growth medium. For example, at acidic pH, levels of acid phosphatase are high and those of alkaline phosphatase are low whereas at alkaline pH the reverse is true. Mutations in five genes, palA, B, C, E and F, mimic the effects of growth at acid pH whereas mutations in pacC mimic the effects of growth at alkaline pH. palA, B, C, E and F mutations result in an intracellular pH (pHin) which is more alkaline than that of the wild type whereas pacC mutations result in a pHin more acidic than that of the wild type. This indicates that these mutations exert their primary effects on the regulation of gene expression by pH rather than on the pH homeostatic mechanism but that the expression of at least some component(s) of the pH homeostatic mechanism is subject to the pH regulatory system. It is suggested that pacC might be a wide domain regulatory gene whose product acts positively in some cases (e.g. acid phosphatase) and negatively in others (e.g. alkaline phosphatase). The products of palA, B, C, E and F are proposed to be involved in a metabolic pathway leading to synthesis of an effector molecule able to prevent the (positive and negative) action of the pacC product.

These genes are, to our knowledge, the first examples of genes involved in the regulation of extracellular enzyme and permease synthesis by the pH of the growth medium to be described in any organism.

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References

  • Alderson T, Hartley MJ (1969) Specificity for spontaneous and induced forward mutation at several gene loci in Aspergillus nidulans. Mutat Res 8:255–264

    Google Scholar 

  • Arst HN Jr (1976) Integrator gene in Aspergillus nidulans. Nature 262:231–234

    Google Scholar 

  • Arst HN Jr, Bailey CR (1977) The regulation of carbon metabolism in Aspergillus nidulans. In: Smith JE, Pateman JA (eds) Genetics and physiology of Aspergillus. Academic Press, London, pp 131–146

    Google Scholar 

  • Arst HN Jr, Cove DJ (1969) Methylammonium resistance in Aspergillus nidulans. J Bacteriol 98:1284–1293

    Google Scholar 

  • Arst HN Jr, Cove DJ (1970) Molybdate metabolism in Aspergillus nidulans. II. Mutations affecting phosphatase activity or galactose utilization. Mol Gen Genet 108:146–153

    Google Scholar 

  • Arst HN Jr, Cove DJ (1973) Nitrogen metabolite repression in Aspergillus nidulans. Mol Gen Genet 126:111–141

    Google Scholar 

  • Arst HN Jr, Scazzocchio C (1985) Formal genetics and molecular biology of the control of gene expression in Aspergillus nidulans. In: Bennett JW, Lasure LL (eds) Gene manipulations in fungi. Academic Press, New York, pp 309–343

    Google Scholar 

  • Arst HN Jr, Penfold HA, Bailey CR (1978) Lactam utilisation in Aspergillus nidulans: evidence for a fourth gene under the control of the integrator gene intA. Mol Gen Genet 166:321–327

    Google Scholar 

  • Arst HN Jr, Bailey CR, Penfold HA (1980) A possible rôle for acid phosphatase in γ-amino-n-butyrate uptake in Aspergillus nidulans. Arch Microbiol 125:153–158

    Google Scholar 

  • Arst HN Jr, Tollervey DW, Sealy-Lewis HM (1982) A possible regulatory gene for the molybdenum-containing cofactor in Aspergillus nidulans. J Gen Microbiol 128:1083–1093

    Google Scholar 

  • Bailry CR, Arst HN Jr, Penfold HA (1980) A third gene affecting GABA transminase levels in Aspergillus nidulans. Genet Res 36:167–180

    Google Scholar 

  • Bailey CR, Penfold HA, Arst HN Jr (1979) Cis-dominant regulatory mutations affecting the expression of GABA permease in Aspergillus nidulans. Mol Gen Genet 169:79–83

    Google Scholar 

  • Brownlee AG, Arst HN Jr (1983) Nitrate uptake in Aspergillus nidulans and involvement of the third gene of the nitrate assimilation gene cluster. J Bacteriol 155:1138–1146

    Google Scholar 

  • Brownlee AG, Arst HN Jr (1984) Quench correction of incorporated carbon-14 in Aspergillus nidulans counted on filter discs. J Microbiol Methods 2:83–91

    Google Scholar 

  • Caddick MX, Arst HN Jr (1986) Structural genes for phosphatases in Aspergillus nidulans. Genet Res 47:83–91

    Google Scholar 

  • Caddick MX, Brownlee AG, Arst HN Jr (1986) Phosphatase regulation in Aspergillus nidulans: responses to nutritional starvation. Genet Res 47:93–102

    Google Scholar 

  • Clutterbuck AJ (1984) Loci and linkage map of the filamentous fungus Aspergillus nidulans (Eidam) Winter (n=8). Genetic Maps 3:265–273

    Google Scholar 

  • Cohen BL (1980) Transport and utilization of proteins by fungi. In: Payne JW (ed) Microorganisms and nitrogen sources. John Wiley & Sons Ltd, London, pp 411–430

    Google Scholar 

  • Cotton FA, Wilkinson G (1962) Advanced inorganic chemistry. A comprehensive text. Interscience Publishers, New York, pp 784–785

    Google Scholar 

  • Cove DJ (1966) The induction and repression of nitrate reductase in the fungus Aspergillus nidulans. Biochim Biophys Acta 113:51–56

    Google Scholar 

  • Cove DJ (1976) Chlorate toxicity in Aspergillus nidulans. Studies of mutants altered in nitrate assimilation. Mol Gen Genet 146:147–159

    Google Scholar 

  • Dorn G (1965a) Genetic analysis of the phosphatases in Aspergillus nidulans. Genet Res 6:13–26

    Google Scholar 

  • Dorn G (1965b) Phosphatase mutants in Aspergillus nidulans. Science 150:1183–1184

    Google Scholar 

  • Gander JE, Janovec S (1984) Regulation of metabolism in Penicillium charlesii by organic acids: role of L-tartaric acid. Curr Top Cell Reg 24:99–109

    Google Scholar 

  • Harsanyi Z, Dorn GL (1972) Purification and characterization of acid phosphatase V from Aspergillus nidulans. J Bacteriol 110:246–255

    Google Scholar 

  • Kobayashi H (1985) A proton-translocating ATPase regulates pH of the bacterial cytoplasm. J Biol Chem 260:72–76

    Google Scholar 

  • Kobayashi H, Suzuki T, Kinoshita N, Unemoto T (1984) Amplification of the Streptococcus faecalis proton-translocating AT-Pase by a decrease in cytoplasmic pH. J Bacteriol 158:1157–1160

    Google Scholar 

  • Lindberg RA, Rhodes WG, Eirich LD, Drucker H (1982) Extracellular acid proteases from Neurospora crassa. J Bacteriol 150:1103–1108

    Google Scholar 

  • Nahas E, Terenzi HF, Rossi A (1982) Effect of carbon source and pH on the production and secretion of acid phosphatase (EC 3.1.3.2) and alkaline phosphatase (EC 3.1.3.1) in Neurospora crassa. J Gen Microbiol 128:2017–2021

    Google Scholar 

  • Wiame J-M, Grenson M, Arst HN Jr (1985) Nitrogen catabolite repression in yeasts and filamentous fungi. Adv Microb Physiol 26:1–88

    Google Scholar 

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Communicated by W. Gajewski

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Caddick, M.X., Brownlee, A.G. & Arst, H.N. Regulation of gene expression by pH of the growth medium in Aspergillus nidulans . Molec Gen Genet 203, 346–353 (1986). https://doi.org/10.1007/BF00333978

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  • DOI: https://doi.org/10.1007/BF00333978

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