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Review Article

Challenges and opportunities of the bio-pesticides production by solid-state fermentation: filamentous fungi as a model

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Pages 326-333 | Received 26 May 2013, Accepted 08 Oct 2013, Published online: 04 Feb 2014

References

  • Akello J, Dubois T, Coyne D, Kyamanywa S. (2009). The effects of Beauveria bassiana dose and exposure duration on colonization and growth of tissue cultured banana (Musa sp.) plants. Biol Control, 49, 6–10
  • Albano-Mora SS, Leal-Bevilaqua CM, Carneiro-Feijo FM, et al. (2009). Evaluation of the fungus Beauveria bassiana Deuteromycotina: Hyphomycetes), a potential biological control agent of Lutzomyia longipalpis (Diptera, Psychodidae). Biol Control, 50, 329–35
  • Ash GJ. (2010). The science, art and business of successful bioherbicides. Biol Control, 52, 230–40
  • Babu RM, Sajeena A, Seetharaman K. (2004). Solid substrate for production of Alternaria alternata conidia: a potential mycoherbicide for the control of Eichhornia crassipes (water hyacinth). Weed Res, 44, 298–304
  • Brand D. (2006). Utilization of solid state fermentation for the production of fungal biological control agents: case study on Paecilomyces lilacinus against root-knot nematodes. Thèse Doctorat de l’Université de Provence, Marseille, France. 188 p
  • Brooks A, Wall R. (2005). Horizontal transmission of fungal infection by Metarhizium anisopliae in parasitic Psoroptes mites (Acari: Psoroptidae). Biol Control, 34, 58–65
  • Castrillo LA, Griggs MH, Ranger CM, et al. (2011). Virulence of commercial strains of Beauveria bassiana and Metarhizium brunneum (Ascomycota: Hypocreales) against adult Xylosandrus germanus (Coleoptera: Curculionidae) and impact on brood. Biol Control, 58, 121–6
  • Chen LH, Cui YQ, Yang XM, et al. (2012). Antifungal compound from Trichoderma harzianum SQR-T037 effectively controls Fusarium wilt of cucumber in continuously cropped soil. Australasian Plant Path, 41, 239–45
  • Chen X, Li Y, Du G, Chen J. (2005). Application of response surface methodology in media optimization for spore production of Coniothyrium minitans in solid-state fermentation. World J Microb Biot, 21, 593–9
  • Chien YH, Suey-Sheng K, Tung-Sheng, T. 2001. A method of solid state fermentation for Nomuraea fungal spores demanding high nutrients. US Patent 76167801
  • Chowda-Reddy RV, Kirankumar M, Seal SE, et al. (2012). Efficacy of tomato leaf curl Bangalore virus by an indigenous and an exotic population. J Integ Agric, 11, 235–48
  • Chundakkadu K. (2005). Solid state fermentation. An overview. Crit Rev Biotechnol, 25, 1–30
  • Cole RJ, Dorner JW. (2001). Biological control formulations containing spores of nontoxigenic strains of fungi for toxin control of food crops. US Patent 26842784
  • Dalla-Santa HS, Sousa NJ, Brand D, et al. (2004). Conidia production of Beauveria sp. by solid-state fermentation for biocontrol of Ilex paraguariensis Caterpillars. Folia Microbiol, 49, 418–22
  • De Marco JL, Valadares-Inglis MC, Felix CR. (2002). Production of hydrolytic enzymes by Trichoderma isolates with antagonistic activity against Crinipellis perniciosa, the causal agent of witches broom cocoa. Brazilian J Microbiol, 34, 33–8
  • De Paz-Hernández L. (2002). Procedure for elaborating a bio-fungicide employing a mixture of spores of the Trichoderma spp. PA 00003304 (MX)
  • De Souza JT, Bailey BA, Pomella AWV, et al. (2008). Colonization of cacao seedlings by Trichoderma stromaticum, a mycoparasite of the witches’ broom pathogen, and its influence on plant growth and resistance. Biol Control, 46, 36–45
  • Dorta B, Ertola RJ, Arcas JA. (1996). Characterization of growth and sporulation of Metarhizium anisopliae in solid-substrate fermentation. Enzyme Microb Technol, 19, 434–9
  • Dorta B, Arcas JA. (1998). Sporulation of Metarhizium anisopliae in solid-state fermentation with forced aeration. Enzyme Microb Technol, 23, 501–5
  • Dubey SC, Suresh M, Singh B. (2007). Evaluation of Trichoderma species against Fusarium oxysporum f. sp. ciceris for integrated management of chickpea wilt. Biol Control, 40, 118–27
  • Elad Y, Chet I, Henis Y. (1981). Biological control of Rhizoctonia solani in strawberry fields by Trichoderma harzianum. Plant Soil, 60, 245–54
  • Gervais P, Molin P. (2003). The role of water in solid-state fermentation. Biochem Eng J, 13, 85–101
  • Godoy MG, Machado OLT, Roussos S, Freire DMG. (2012). Degradation of phorbol esters of Jatropha curcas cake by solid-state fermentation and simultaneous lipase production. New Biotechnol, 29, 23–26
  • Gowthaman MK, Krishna C, Moo-Young M. (2001). Fungal solid state fermentation: An overview. Appl Mycol Biotechnol, 1, 305–52
  • Guijarro B, Melgarejo P, Torres R, et al. (2007). Effects of different biological formulations of Penicillium frequentans on brown rot of peaches. Biol Control, 42, 86–96
  • Hanrong W, Shuijiang R, Lianping W. (2004). Trichoderma fungus biological control granular bacterial agent and its preparing method. 1554242 (CHI)
  • Hassouni H. (2007). Physiologie de la sporulation des champignons filamenteux pour la production de spores et d’enzymes en fermentation en milieu solide. Thèse Doctorat, Institut Agronomique et Vétérinaire, Maroc. 165 p
  • Hintz W. (2010). Method for preparing sprayable formulation of mycelium based biological control agents produced by solid state fermentation. US Patent 10/286884
  • Holker U, Lenz J. (2005). Solid-state fermentation—are there any biotechnological advantages? Curr Opin Microbiol, 8, 301–6
  • Huang XQ, Chen LH, Ran W, et al. (2011). Trichoderma sp. strain SQR-T37 and its bio-organic fertilizer could control Rhizoctonia solani damping-off disease in cucumber seedlings mainly by the mycoparasitism. Appl Microbiol Biotechnol, 91, 741–55
  • Jackson MA, Dunlap CA, Jaronski ST. (2010). Ecological considerations in producing and formulating fungal entomopathogens for use in insect biocontrol. Biol Control, 55, 129–45
  • Jensen B, Knudsen IMB, Jensen DF. (2002). Survival of conidia of Clonostachys rosea on stored barley seeds and their biocontrol efficacy against seed-borne Bipolaris sorokiniana. Biocontrol Sci Technol, 12, 427–41
  • Jin X, Custis D. (2011). Microencapsulating aerial conidia of Trichoderma harzianum through spray drying at elevated temperatures. Biol Control, 56, 202–8
  • Jin X, Streett DA, Dunlap CA, Lyn ME. (2008). Application of hydrophilic–lipophilic balance (HLB) number to optimize a compatible non-ionic surfactant for dried aerial conidia of Beauveria bassiana. Biol Control, 46, 226–33
  • Kerry BR. (1987). Biological control. In: Principles and Practice of Nematode Control in Crops. Sydney: Academic Press, 233–63
  • Kohl JA. (2013). Micro-organisms controlling plant pathogens. US Patent WO2009/078710
  • Krishna C. (1999). Production of bacterial cellulases by solid state bioprocessing of banana wastes. Bioresource Tech, 69, 231–9
  • Lambert PW, Meers, JL. (1983). The production of industrial enzymes. Phil Trans R Soc Lond B, 300, 263–82
  • Li GQ, Huang HC, Kokko EG, Acharya SN. (2002). Ultrastructural study of mycoparasitism of Gliocladium roseum on Botrytis cinerea. Bot Bull Acad Sin, 43, 211–8
  • Ooijkaas LP, Weber FJ, Buitelaar R, et al. (2000). Defined media and inert supports: Their potential as solid state fermentation production systems. Trends Biotechnol, 18, 356–60
  • Ooijkaas LP, Wilkinson EC, Tramper J, Buitelaar RM. (1999). Media optimization for spore production of Coniothyrium minitans using statistically based experimental designs. Biotechnol Bioeng, 64, 92–100
  • Pandey A, Soccol CR, Larroche C. (2008). Current developments in solid state fermentation. Springer, New York: Springer , 1: 146–68
  • Pascual S, Melgarejo P, Magan N. (1999). Production of the fungal biocontrol agent Epicoccum nigrum by solid substrate fermentation: effect of water activity on accumulation of compatible solutes. Mycopathologia, 146, 83–9
  • Raimbault M, Alazan D. (1980). Culture method to study fungal growth in solid state fermentation. Eur J Appl Microbiol Biotechnol, 9, 199–209
  • Raimbault M, Roussos S, Oriol E, et al. (1995). Culture procedure of microorganisms on solid media constituted for absorbent solid support, compressible and non-fermentable. France Patent 178723
  • Raimbault M. (1998). General and microbiological aspects of solid substrate fermentation. Elect J Biotech, 1, 1–15
  • Roussos S, Ismaili-Alaoui M, Hassouni H. (2009). Method to spore production and metabolites of fungal microorganisms and uses. 291195 B (MX)
  • Roussos S, Olmos A, Raimbault M, et al. (1991). Strategies for large scale inoculum development for solid state fermentation system: conidiospores of Trichoderma harzianum. Biotechnol Tech, 5, 415–20
  • Roussos S. (1985). Croissance de Trichoderma harzianum par fermentation en milieu solide: Physiologie, sporulation et production de cellulases. Thèse Doctorat d’Etat, Université de Provence, Marseille, France
  • Ruano-Rosa D, López-Herrera CJ. (2009). Evaluation of Trichoderma spp. as biocontrol agents against avocado white root rot. Biol Control, 51, 66–71
  • Shi WB, Feng MG. (2006). Field efficacy of application of Beauveria bassiana formulation and low rate pyridaben for sustainable control of citrus red mite Panonychus citri (Acari: Tetranychidae) in orchards. Biol Control, 39, 210–7
  • Shi WB, Feng MG. (2004). Lethal effect of Beauveria bassiana, Metarhizium anisopliae, and Paecilomyces fumosoroseus on the eggs of Tetranychus cinnabarinus (Acari: tetranychidae) with a description of a mite egg bioassay system. Biol Control, 30, 165–73
  • Shih IL, Kuo CY, Hsieh FC, et al. (2008). Use of surface response methodology to optimize culture conditions for iturin A production by Bacillus subtilis in solid-state fermentation. J Chin Inst Chem Eng, 39, 635–43
  • Suryanarayan S, Mazumdar K. (2003). Solid state fermentation. US Patent 22713428
  • Ugine TA. (2011). The effect of temperature and exposure to Beauveria bassiana on tarnished plant bug Lygus lineolaris (Heteroptera: Miridae) population dynamics, and the broader implications of treating insects with entomopathogenic fungi over a range of temperatures. Biol Control, 59, 373–83
  • Valero JR, Mohammedi S, Payne NJ, Tyagi RD. (1999). Microbial control of defoliating forest insects. Recent Res Dev Microbiol, 3, 455–64
  • van Breukelen FR, Haemers S, Wijffels RH, Rinzema A. (2011). Bioreactor and substrate selection for solid-state cultivation of the malaria mosquito control agent Metarhizium anisopliae. Process Biochem, 46, 751–7
  • van der Valk H. (2007). Desert locust technical series. Review of the efficacy of Metarhizium anisopliae var. acridum against the desert locust. Rome: Plant Prod Prot Division. 81 pp
  • van Toora RF, Foster SP, Anstead JA, et al. (2008). Insecticide resistance and genetic composition of Myzus persicae (Hemiptera: Aphididae) on field potatoes in New Zealand. Crop Prot, 27, 236–47
  • Verma M, Brar SK, Tyagi RD, et al. (2007). Antagonistic fungi, Trichoderma spp.: panoply of biological control. Bioch Eng J, 37, 1-20
  • Viccini G, Mannich M, Fontana-Capalbo DM, et al. (2007). Spore production in solid-state fermentation of rice by Clonostachys rosea, a biopesticide for gray mold of strawberries. Process Biochem, 42, 275-8
  • Whipps JM, Davies KG. (2000). Success in biological control of plant pathogens and nematodes by microorganisms. In: Gurr G, Wratten SD, eds. Measures of success in biological control. Dordrecht: Kluver Academic Publishers, 231–69
  • Whipps JM, Lumsden RD. (2001). Commercial use of fungi as plant disease biological control agents: status and prospects. In: Fungal Biocontrol Agents: Progress, Problems and Potential. Wallingford: CABI Publishing, 9–22
  • Xu X, Shi Y, Zhu Y. (2008). Verticillium lecanii spore production in solid-state fermentation using inert carrier. J Biotechnol, 136, 460–95
  • Yang L, Li GQ, Long YQ, et al. (2010). Effects of soil temperature and moisture on survival of Coniothyrium minitans. Biol Control, 55, 27–33
  • Zhihui B, Bo1 J, Yuejie L, et al. (2008). Utilization of winery wastes for Trichoderma viride biocontrol agent production by solid state fermentation. J Environ Sci, 20, 353–8
  • Zhuang L, Zhoua S, Wanga Y, et al. (2011). Cost-effective production of Bacillus thuringiensis biopesticides by solid-state fermentation using wastewater sludge: Effects of heavy metals. Bioresource Technol, 102, 4820–6

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