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Morphological and biochemical alterations of oomycete fish pathogen Saprolegnia parasitica as affected by salinity, ascorbic acid and their synergistic action

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Abstract

Vegetative growth of Saprolegnia parasitica decreased by increasing the concentration of NaCl and ascorbic acid. Under these conditions, the morphological features of the vegetative hyphae were distinguishable from those used as controls. NaCl and ascorbic acid in combination improved the tolerance of S. parasitica to high levels of salinity. Sporangial formation, release and proliferation were very sensitive to even lower levels of salinity. For instance, at 0.03 M NaCl sporangia formation was rarely observed. Ascorbic acid alone had a little effect on sporangial formation and release, but when combine with NaCl the developmental processes were improved. Reduction of numbers and plasmolysis of oogonia were found at various NaCl concentrations, whereas ascorbic acid stimulated the formation of these reproductive organs at low concentrations. The synergistic effect of NaCl and ascorbic acid improved and overcomed the symptoms of oogonial plasmolysis. Protease activity of S. parasitica was significantly reduced at all NaCl concentrations, whilst ascorbic acid significantly increased and inhibited it at low concentrations and at moderate and high concentrations, respectively. The combination of these compounds reduced protease activity at all tested concentrations with significant difference at the highest concentration. The total free amino-acids content of S. parasitica mycelia was significantly reduced at all the NaCl concentrations, whereas ascorbic acid significantly increased it at low but inhibited it at higher concentrations. The combination of NaCl and ascorbic acid significantly increased the accumulation of free amino-acids at low and moderate concentrations, but decreased them at high concentrations. Total protein content was reduced at all tested concentrations of NaCl and ascorbic acid had also similar effect. However, the combined effect of NaCl and ascorbic acid significantly enhanced and reduced total protein content at low and high concentrations, respectively. Treatments with NaCl induced proline accumulation in S. parasitica, which paralleled the salt concentration.

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References

  1. J Dieguez-Uribeondo L Cerenius K Soederhaell (1994) ArticleTitleSaprolegnia parasitica and its virulence on three different species of freshwater crayfish Aquaculture 120 219–228

    Google Scholar 

  2. MV Lopez-Doriga JL Martinez (1998) ArticleTitleUltrastructure of fish cells involved in cellular defense against Saprolegnia infections: Evidence of non-leucocytic nature Dis Aquat Organ 32 111–117

    Google Scholar 

  3. E Bangyeekhun SMA Quiniou JE Bly L Cerenius (2001) ArticleTitleCharacterisation of Saprolegnia sp. isolates from channel catfish Dis Aquat Organ 45 53–59

    Google Scholar 

  4. MM Hussein K Hatai T Namura (2001) ArticleTitleSaprolegniasis in salmonids and their eggs in Japan J Wildl Dis 37 204–207

    Google Scholar 

  5. TA Qureshi R Chauhan SA Mastan (2001) ArticleTitleHaematological investigations on fishes infested with fungal growth J Environ Biol 22 273–276

    Google Scholar 

  6. FT El-Hissy AH Moubasher MA El-Nagdy (1982) ArticleTitleSeasonal fluctuation of freshwater fungi in river Nile (Egypt) Zeit Allg Mikrobiol 22 521–527

    Google Scholar 

  7. FT El-Hissy SA El-Zayat MS Masoud (2000) ArticleTitleMonthly and vertical fluctuations of aquatic fungi at different depths in Aswan High Dam Lake, Egypt Fungal Diversity 5 165–173

    Google Scholar 

  8. FT El-Hissy AM Khallil (1989) ArticleTitleStudies on aquatic fungi in Delta region (Egypt) Zbl Mikrobiol 144 421–432

    Google Scholar 

  9. FT El-Hissy EH Ali A Abdel-Raheem (2004) ArticleTitleDiversity of zoosporic fungi recovered from the surface water bodies in four Egyptian lakes Ecohydrol Hydrobiol 4 77–84

    Google Scholar 

  10. JM Wethered DH Jenning (1985) ArticleTitleMajor solutes contributing to solute potential of Thraustochytrium aureum and T. roseum after growth in media of different salinities Trans Br Mycol Soc 85 439–446

    Google Scholar 

  11. EJ Luard (1982) ArticleTitleGrowth and accumulation of solutes by Phytophthora cinnamomi and other lower fungi in response to changes in external osmotic potential J Gen Microbiol 128 2583–2590

    Google Scholar 

  12. A Maggio S Miyazaki P Veronese T Fujita JI Ibeas B Damsz ML Narasimhan PM Hasegawa RJ Joly RA Bressan (2002) ArticleTitleDoes proline accumulation play an active role in stress-induced growth reduction? Plant J 31 699–712 Occurrence Handle10.1046/j.1365-313X.2002.01389.x Occurrence Handle1:CAS:528:DC%2BD38XotFyjsLY%3D Occurrence Handle12220262

    Article  CAS  PubMed  Google Scholar 

  13. AC Mergulhao HA Burity JN Tabosa MB Figueiredo ML Da Silva (2002) ArticleTitleSalt stress response and proline accumulation in Brachiaria humidicola plants with and without mycorrhizal inoculation Rev Argent Microbiol 34 77–82

    Google Scholar 

  14. K Killham MK Firestone (1984) ArticleTitleProline transport increases growth efficiency in salt-stressed Streptomyces griseus Appl Environ Microbiol 8 39–241

    Google Scholar 

  15. Coker WC. The Saprolegniaceae, with notes on water molds. Univ. Chapel Hill: North Carolina Press, 1923, 201 pp.

  16. RL Seymour (1970) ArticleTitleThe genus Saprolegnia Nova Hedwigia (Beih.) 19 1–124

    Google Scholar 

  17. LG Willoughby AD Pickering (1977) ArticleTitleViable Saprolegniaceae spores on epidermis of the salmonid fish Salmo trutta and Salvelinus alpinus Trans Br Mycol Soc 68 91–95

    Google Scholar 

  18. YP Lee T Takahashi (1966) ArticleTitleAn improved colorimetric determination of amino acids with the use of ninhydrin Analytical Biochem 14 71–77

    Google Scholar 

  19. OH Lowry NJ Rosebrough AL Farr RJ Randall (1951) ArticleTitleProtein measurement with the Folin phenol reagent J Biol Chem 193 265–275 Occurrence Handle1:CAS:528:DyaG38XhsVyrsw%3D%3D Occurrence Handle14907713

    CAS  PubMed  Google Scholar 

  20. LS Bates RP Waldren ID Tear (1973) ArticleTitleRapid determination of free proline for water stress studies Plant Soil 39 205–207 Occurrence Handle1:CAS:528:DyaE3sXlsVGitLk%3D

    CAS  Google Scholar 

  21. M Kunitz (1946/47) ArticleTitleCrystalline soybean trypsin inhibitor. II. General properties J Gen Physiol 30 291–310

    Google Scholar 

  22. Reese ET, Mandels M. Enzymatic hydrolysis of cellulose and its derivatives. In: Methods in carbohydrate chemistry. Vol. II. R. L. Whisler Academic Press, New York, 1963; 139–143

  23. R Mead RN Curnow (1983) Statistical Methods in Agriculture and Experimental Biology Chan pan and Hall London and New York 355

    Google Scholar 

  24. CG Elliott (1972) ArticleTitleCalcium chloride and growth and reproduction of Phytophthora cactorum Trans Br Mycol Soc 58 169–172

    Google Scholar 

  25. JM Duniway (1979) ArticleTitleWater relations of water molds Ann Rev Phytopathology 17 431–460

    Google Scholar 

  26. SN Smith E Ince RA Armstrong (1990) ArticleTitleEffect of osmotic and matrix potential on Saprolegnia diclina and S. ferax Mycol Res 94 71–77

    Google Scholar 

  27. LL Marking JJ Rach TM Schreier (1994) ArticleTitleEvaluation of antifungal agents for fish culture Prog Fish-Cul 56 225–231

    Google Scholar 

  28. Pickering AD. In: Mueller GJ, ed. Factors which Predispose Salmonid Fish to Saprolegniasis. Portland, Oregon: US Department of Energy, Bonneville Power Administration, 1994; 67–84.

  29. LG Willoughby (1994) Fungi and Fish Diseases Pisces Press Stirling 57

    Google Scholar 

  30. JK Singh SP Shahdeo BB Lal M Prasad (1980) ArticleTitleEffect of vitamins on growth and sporulation of Alternaria alternata (Fr.) Keissler Zbl Bakt II Abt 135 234–239

    Google Scholar 

  31. D Gindrat (1977) ArticleTitleEffects of elevated salt concentrations on growth, sporulation and pigmentation of Trichoderma spp Can J Microbiol 23 607–616

    Google Scholar 

  32. HH Mert M Dizbay (1977) ArticleTitleThe effect of osmotic pressure and salinity of the medium on the growth and sporulation of Aspergillus niger and Paecilomyces lilacinum species Mycopathologia 61 125–170

    Google Scholar 

  33. HH Mert S Ekmekci (1987) ArticleTitleThe effect of salinity and osmotic pressure of the medium on the growth, sporulation and changes in the total organic acid content of Aspergillus flavus and Penicillium chrysogenum Mycopathologia 100 85–90

    Google Scholar 

  34. HM Mehdy HH El-Sheikh MS Ahmed BM Refaat (1996) ArticleTitlePhysiological and biochemical changes induced by osmolality in halotolerant aspergilli Acta Microbiol Pol 45 55–65

    Google Scholar 

  35. AM Abou-Zeid (2000) ArticleTitleGrowth, zearalenone production and some metabolic activities of Fusarium moniliforme under salt stress Acta Microbiol Pol 49 225–235

    Google Scholar 

  36. M Prasad (1972) ArticleTitleComparative studies on the effect of vitamins on sporulation in Fusarium oxysporum Schlecht. Ex Fr. and Fusarium moniliforme v. subglutinans Wr. and Rg. Mycopathol Mycol Appl 46 367–372

    Google Scholar 

  37. M Prasad SK Chaudhary (1975) ArticleTitleInfluence of vitamins on growth and sporulation of Fusarium oxysporum f. udum Phytopathol Z 82 56–62

    Google Scholar 

  38. J Jiang DC Erwin (1990) ArticleTitleMorphology, plasmolysis, and tetrazolium bromide stain as criteria for determining viability of Phytophthora oospores Mycologia 82 107–113

    Google Scholar 

  39. CD Georgiou KP Petropoulou (2002) ArticleTitleThe role of ascorbic acid in the differentiation of sclerotia in Sclerotinia minor Mycopathologia 154 71–77

    Google Scholar 

  40. WJ Kaiser (1964) ArticleTitleInfluence of nutrition and environment on the growth and sporulation of the plant pathogen Verticillium albo-atrum Diss Abstr 24 3920–3921

    Google Scholar 

  41. JD Desai AJ Desai HC Patel (1983) ArticleTitleEffect of biotin on alkaloid production during submerged cultivation of Claviceps sp. strain SD-58 Appl Environ Microbiol 45 1694–1696

    Google Scholar 

  42. V Hardin T Hill (1999) ArticleTitleEffect of Papain on cellulose activity in Achlya ambisexualis J Tennessee Acad Sci 74 105–110

    Google Scholar 

  43. R Tunga R Banerjee BC Bhattacharyya (2001) ArticleTitleOptimization of some additives to improve protease production under SSF Indian J Exp Biol 39 1144–1148 Occurrence Handle1:CAS:528:DC%2BD3MXptVeqs78%3D Occurrence Handle11906108

    CAS  PubMed  Google Scholar 

  44. JD Desai (1979) ArticleTitleFactors affecting protein synthesis during biotin deficiency in Asperillus nidulans Folia Microbiol (Praha) 24 79–84

    Google Scholar 

  45. D Pejin R Razmovski (1996) ArticleTitleContinuous cultivation of Saccharomyces cerevisiae at different biotin concentrations in nutrient media J Appl Bacteriol 80 53–55

    Google Scholar 

Download references

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Ali, E.H. Morphological and biochemical alterations of oomycete fish pathogen Saprolegnia parasitica as affected by salinity, ascorbic acid and their synergistic action. Mycopathologia 159, 231–243 (2005). https://doi.org/10.1007/s11046-004-6670-z

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