Otwarty dostęp

The Effects of Nutrient Concentration, Addition of Thickeners, and Agitation Speed on Liquid Fermentation of Steinernema feltiae


Zacytuj

Abu Hatab, M., and Gaugler, R. 1999. Lipids of in vivo and in vitro cultured Heterorhabditis bacteriophora. Biological Control 15:113–118.10.1006/bcon.1999.0701Search in Google Scholar

Akhurst, R. J. 1980. Morphological and functional dimorphism in Xenorhabdus spp, bacteria symbiotically associated with insect pathogenic nematodes Neoaplectana and Heterorhabditis. Journal of General Microbiology 121:303–309.Search in Google Scholar

Buecher, E. J., Hansen, E. L., and Yarwood, E. A. 1970. Growth of nematodes in defined medium containing hemin and supplemented with commercially available proteins. Nematologica 16:403–409.10.1163/187529270X00108Search in Google Scholar

Burman, M., and Pye, A. E. 1980. Neoplectana carpocapsae: respiration of infective juveniles. Nematologica 26:214–219.10.1163/187529280X00107Search in Google Scholar

Chavarría-Hernández, N., Pérez-Pérez, N. C., Chavarría-Hernández,J. C., Barahona-Pérez, L. F., and Rodríguez-Hernéndez, A. I. 2014. Specific oxygen uptake of the entomopathogenic nematode, Steinernema carpocapsae CABA01, in submerged culture. Biocontrol Science and Technology 24(7):723–733.10.1080/09583157.2014.890697Search in Google Scholar

Chavarría-Hernández, N. C., and Torre, M. 2001. Population growth kinetics of the nematode, Steinernema feltiae, in submerged monoxenic culture. Biotechnology Letters 23:311-315.10.1023/A:1005694709366Search in Google Scholar

Cho, C. H., Whang, K. S., Gaugler, R., and Yoo, S. K. 2011. Submerged monoxenic culture medium development for Heterorhabditis bacteriophora and its symbiotic bacterium Photorhabdus luminescens: Protein sources. Journal of Microbiology and Biotechnology 21(8): 869–873.10.4014/jmb.1010.1005521876379Search in Google Scholar

Cochran, W. G., and Cox, G. M. 1957. Experimental designs, 2nd ed. New York: John Wiley and Sons, 611 pp.Search in Google Scholar

Ehlers, R. U. 2001. Mass production of entomopathogenic nematodes for plant protection Applied Microbiology and Biotechnology. 56:623–633.Search in Google Scholar

Ehlers, R. U., Niemann, I., Hollmer, S., Strauch, O., Jende, D., Shanmugasundaram, M., Mehta, U. K., Easwaramoorthy, S. K., and Burnell, A. 2000. Mass production potential of the bacto-helminthic biocontrol complex Heterorhabditis indica-Photorhabdus luminescens. Biocontrol Science and Technology 10:607–616.10.1080/095831500750016406Search in Google Scholar

Ehlers, R. U., and Shapiro-Ilan, D. I. 2005. Mass production. Pp. 65– 78 in P. S. Grewal, R. U. Ehlers, and D. I. Shapiro-Ilan, eds. Nematodes as biocontrol agents. Cambridge: CABI Publishing.10.1079/9780851990170.0065Search in Google Scholar

Fiddy, C., and Trinci, P.J. 1975. Kinetics and morphology of glucose-limited cultures of moulds grown in a chemostat and on solid media. Archives of Microbiology 103:191–197.10.1007/BF00436349168829Search in Google Scholar

Friedman, M. J. 1990. Commercial production and development. Pp. 153–172 in R. Gaugler and H. K. Kaya, eds. Entomopathogenic nematodes in biological control. Boca Raton, FL: CRC.Search in Google Scholar

Gaugler, R. 1997. Alternative paradigms for commercializing biopesticides. Phytoparasitica 25:179–182.10.1007/BF02981730Search in Google Scholar

Gaugler, R., and Han, R. 2002. Production technology. Pp. 289–310 in E. Gaugler, ed. Entomopathogenic nematology. New York: CABI Publishing.10.1079/9780851995670.0289Search in Google Scholar

Gbewonyo, R., Rohrer, S., and Buckland, B. 1997. Bioreactor cultivation of the nematode Caenorhabditis elegans: Large scale production of biologically active drug receptors for pharmaceutical research. Biotechnology and Genetic Engineering Reviews 14:37–49.10.1080/02648725.1997.106479389188149Search in Google Scholar

Giese, H., Azizan, A., Kümmel, A., Liao, A., Peter, C. P., Fonseca,J. A., Hermann, R., Duarte, T. M., and Büches, J. 2013. Liquid films on shake flask walls explain increasing maximum oxygen transfer capacities with elevating viscosity. Biotechnology and Bioengineering 111:295–308.10.1002/bit.2501523904288Search in Google Scholar

Gil, G. H., Choo, H. Y., and Gaugler, R. 2002. Enhancement of entomopathogenic nematode production in vitro liquid culture of Heterorhabditis bacteriophora by fed-batch culture with glucose supplementation. Applied Microbiology and Biotechnology 58:751–755.10.1007/s00253-002-0956-112021794Search in Google Scholar

Han, R. C. 1996. The effect of inoculum size on yield of Steinernema carpocapsae and Heterorhabditis bacteriophora in liquid culture. Nem-atologica 42:546–553.10.1163/004625996X00045Search in Google Scholar

Hankinson, O. 1974. Mutants of the pentose phosphate pathway in Aspergillus nidulans. Journal of Bacteriology 117:1121–1130.10.1128/jb.117.3.1121-1130.19742465924591946Search in Google Scholar

Hassane, S. O. S., Farah, A., Satrani, B., Ghanmi, M., Chahmi, N., Chahmi, N., Soidrow, S. H., and Chaouch, A. 2012. Chemical composition and antimicrobial activity of comorian Ocimum canum essential oil harvested in the region of Maweni Dimani-Grande Comoros. Pp. 443–452 in M. G. Bhowon, S. Jhaumeer-Laulloo, H. L. K. Wah, and P. Ramasami, eds. Chemistry for sustainable development. London: Springer.10.1007/978-90-481-8650-1_29Search in Google Scholar

Hieb, W. F., and Rothstein, M. 1968. Sterol requirements for reproduction of a free-living nematode. Science 160:778–779.10.1126/science.160.3829.7784869093Search in Google Scholar

Hieb, W. F., Stokstad, E. L. R., and Rothstein, M. 1970. Heme requirement for reproduction of a free-living nematode. Science 168:143–144.10.1126/science.168.3927.1435417058Search in Google Scholar

Hirao, A., and Ehlers, R. U. 2009. Influence of inoculum density on population dynamics and dauer juvenile yields in liquid culture of biocontrol nematodes Steinernema carpocapsae and S. feltiae (Nematoda: Rhabditida). Applied Microbiology and Biotechnology 85:507–515.Search in Google Scholar

Jeffke, T., Jende, D., Matje, C., Ehlers, R. U., and Berthe-Corti, L. 2000. Growth of Photorhabdus luminescens in batch and glucose fed batch culture. Applied Microbiology and Biotechnology 54:326–330.10.1007/s00253000039911030567Search in Google Scholar

Jess, S., Schweizzer, H., and Kilpatrick, M. 2005. Mushroom Applications. Pp. 191–213 in P. S. Grewal, R. U. Ehlers, and D. I. Shapiro-Ilan, eds. Nematodes as biocontrol agents. Oxfordshire: CABI Publishing.10.1079/9780851990170.0191Search in Google Scholar

Kaya, H., and Stock, S. P. 1997. Techniques in insect nematology. Pp. 281–324 in L. A. Lacey, ed. Manual of techniques in insect pathology. CA: Academic Press.10.1016/B978-012432555-5/50016-6Search in Google Scholar

Kim, T. W., Kim, T. H., Yasunaga-Aoki, C., and Yu, Y. M. 2014. Mass production of entomopathogenic nematode, Heterorhabditits megidis by using micorosparger of gandong strain. Journal of the Faculty of Agriculture, Kyushu University 59(2):283–288.10.5109/1467630Search in Google Scholar

Lacey, L. A., Grzywacz, D., Shapiro-Ilan, D. I., Frutos, R., Brownbridge, M., and Goettel, M. S. 2015. Insect pathogens as biological control agents: Back to the future. Journal of Invertebrate Pathology 132:1–41.10.1016/j.jip.2015.07.009Search in Google Scholar

Leite, L. G., Alves, S. B., Batista Filho, A., and Roberts, D. W. 2003. Effect of salts, vitamins, sugars and nitrogen sources on the growth of three genera of Entomophthorales: Batkoa, Furia, and Neozygites. My-cological Research 107:1–7.10.1017/S0953756203007974Search in Google Scholar

Lewis, E. E., and Clarke, D. J. 2012. Nematode parasites and en-tomopathogens. Pp. 395–424 in F. E. Vega and H. K. Kaya, eds. Insect pathology. San Diego, CA: Academic Press.10.1016/B978-0-12-384984-7.00011-7Search in Google Scholar

Lunau, S., Stoessel, S., Schmidt-Peisker, A. J., and Ehlers, R. U. 1993. Establishment of monoxenic inocula for scaling up in vitro cultures of the entomopathogenic nematodes Steinernema spp. and Heterorhabditis spp. Nematologica 39:385–399.10.1163/187529293X00330Search in Google Scholar

Mascarin, G. M., Jackson, M. A., Kobori, N. N., Behle, R. W., Dunlap, C. A., and Delalibera Júnior, I. 2015. Glucose concentration alters dissolved oxygen levels in liquid cultures of Beauveria bassiana and affects formation and bioefficacy of blastospores. Applied Microbiology and Biotechnology 99:6653–6665.10.1007/s00253-015-6620-3Search in Google Scholar

Neves, J. M., Teixeira, J. A., Simoes, N., and Mota, M. 2001. Effect of air-flow rate on yield of Steinernema carpocapsae Az in liquid culture in an external loop airlift bioreactor. Biotechnology Bioengineering 73:369–373.10.1002/1097-0290(20010205)72:3<369::AID-BIT15>3.0.CO;2-FSearch in Google Scholar

Payton, M., Mccullough, W., and Roberts, C. F. 1976. Agar as a carbon source and its effect on the utilization of other carbon sources by acetate non-utilizing (acu) mutants of Aspergillus nidulans. Journal of General Microbiology 94:228–233.10.1099/00221287-94-1-228Search in Google Scholar

Ryan, F. J. 1950. Selected methods of Neurospora genetics. Methods in Medical Research 3:52–53.Search in Google Scholar

Shapiro-Ilan, D., and Gaugler, R. 2002. Production technology for entomopathogenic nematodes and their bacterial symbionts. Journal of Industrial Microbiology and Biotechnology 28:137–146.10.1038/sj.jim.700023012074087Search in Google Scholar

Shapiro-Ilan, D., Han, R., and Dolinksi, C. 2012. Entomopathogenic nematode production and application technology. Journal of Nematology 44(2):206–217.Search in Google Scholar

Shapiro-Ilan, D., Han, R., and Qiu, X. 2014. Production of en-tomopathogenic nematodes. Pp. 321–355 in J. A. Morales-Ramos, M. G. Rojas, and D. I. Shapiro-Ilan, eds. Mass production of beneficial organisms. Oxford: Elsevier.10.1016/B978-0-12-391453-8.00010-8Search in Google Scholar

Southwood, T. R. E. 1978. Ecological methods, 2nd ed. New York: Chapman and Hall, 524 pp.10.1007/978-94-015-7291-0Search in Google Scholar

Stock, P. 2015. Diversity, Biology and evolutionary relationships. Pp. 3–27 in R. Campos-Herrera, ed. Nematode pathogenesis of insects and other pests. New York: Springer.10.1007/978-3-319-18266-7_1Search in Google Scholar

Stock, S. P., and Goodrich-Blaiir, H. 2012. Nematode parasites, pathogens and associates of insects and invertebrates of economic importance. Pp. 373–426 in L. Lacey, ed. Manual of techniques in invertebrate pathology. New York: Academic Press.10.1016/B978-0-12-386899-2.00012-9Search in Google Scholar

Strauch, O., and Ehlers, R. 1998. Food signal production of Pho-torhabdus luminescens inducing the recovery of entomopathogenic nematodes Heterorhabditis spp. in liquid culture. Applied Microbiology and Biotechnology 50:369–374.10.1007/s002530051306Search in Google Scholar

Strauch, O., and Ehlers, R. U. 2000. Influence of the aeration rate on the yield of the biocontrol nematode Heterorhabditis megidis in liquid culture. Applied Microbiology and Biotechnology 54:9–13.10.1007/s00253000035210951998Search in Google Scholar

Tomalak, M., Piggott, S., and Jagdale, G. B. 2005. Glasshouse Application. Pp. 147–166 in P. S. Grewal, R. U. Ehlers, and D. I. Shapiro-Ilan, eds. Nematodes as biocontrol agents. Oxfordshire: CABI Publishing.10.1079/9780851990170.0147Search in Google Scholar

Vanfleteren, J. R. 1974. Nematode growth factor. Nature 248: 255–257.10.1038/248255a04819421Search in Google Scholar

Yoo, S. K., Brown, I., Cohen, N., and Gaugler, R. 2001. Medium concentration influencing growth of the entomopathogenic nematode Heterorhabditis bacteriophora and its symbiotic bacterium Photo-rhabdus luminescens. Journal of Microbiology and Biotechnology 11:644–648.Search in Google Scholar

Yoo, S., Brown, I., and Gaugler, R. 2000. Liquid media development for Heterorhabditis bacteriophora: Lipid source and concentration. Applied Microbiology and Biotechnology 54:759–763.10.1007/s00253000047811152066Search in Google Scholar

eISSN:
2640-396X
Język:
Angielski
Częstotliwość wydawania:
Volume Open
Dziedziny czasopisma:
Life Sciences, other