References
1. Abbott, 1925. Method of the effectiveness of an insecticide. J.Econ Entomol.
18:265-267.
2. Aboussaid, H., Vidal-Quist, J. C., Oufdou, K., El Messoussi, S., Castañera, P.,
Gonzalez-Cabrera, J. (2011): Occurrence, characterization and insecticidal
activity of Bacillus thuringiensis strains isolated from argan fields in Morocco.
Environmental Technology 32(12): 1383-1391.
3. Ahmad, N., Wang, M., Shu, S. 2015. Effect of commercial Bacillus thuringiensis
toxins on Tyrophagus putrescentiae (Schrank) fed on wolfberry (Lycium
barabarum L.). International Journal of Acarology, 42(1): 5-156.
4. Ainsworth, G.C., 2008. Ainsworth & Bisby’s Dictionary of the Fungi, CABI.
5. Alahyane, H., El alaoui, A., Abousaid, H., Aimrane, A., Atibi, Y., Oufdou, K., El
messoussi, S. (2019). Biological activity of some native bacillus thuringiensis
berliner strans against Eutetranychus orientalis klein (Acari: Tetranychidae).
Applied ecology and environmental research 17(12): 1967-1977.
6. Alazawy, A.N., Sultan, A.A. and Galel, I.S. 2016. The Effect of pathogenic
Bacteria Bacillus thuringiensis on some biological parameters for Dacus ciliates
(Diptera: Tephritidae). Diyala Journal for pure Sciences,12(4): 2222-8373.
7. Al-azzazy, M. M., Alsohim, A.S. and yoder, C. E. 2020. Biological effects of
three bacterial species on Tetranychus urticae (Acari: Tetranychidae) infesting
eggplant under laboratory and greenhouse conditions. Acarologia 60(30):587-
594.
8. Al-Dababseh, B., Meihiar, M., Al-Zyoud, F., and Ghabeish, I. 2014.
Pathogenicity Bacillus thuringiensis (Berliner) (Bt) as a bio insecticide against
the cereal leaf miner Syringopais temperatella Led. (Lep. Scythrididae).
(Submitted).
9. Alper, M., Gunes, H., Civelek, H.S., Dursun, O., and Eskin, A. 2013. Toxis
effects of some native Bacillus thuringiensis Berliner (Bacillales: Bacillaceae)
isolates against Tetranychus urticae Koch (Acarina: Tetranychidae), Ceroplastes
rusci L. (Homoptera: Coccidae) and Ceratitis capitata (Wiedemann) (Diptera:
Tephritidae). Turkiye Entomoloji Bultenin, 3 (2): 75–87.
10. Alsohim, A.S., Fouly, A.F. 2015. Biological effects of two bacterial isolates and
mutants of pseudomonas fluorescens on date palm red spider mite Oligonychus
afrasiaticus (Acari: Tetranychidae). Egypt. J. Biol. Pest. Co., 25: 513-518.
11. Ammouneh, H., Harba, M., Idris, E., and Makee, H. 2011. Isolations and
characterization of native Bacillus thuringiensis isolates from Syrian soil and
testing of their insecticidal activities against some insect pests. Turk. J. Agric.
Forest., 35, 421-431.
12. Araújo, J.P. and Hughes, D.P., 2014. Diversity of entomopathogens Fungi: Which
groups conquered the insect body? bioRxiv, p.003756.28.
13. Ayala, J. and Méliton, E., 2002. Aspect of The Biology of Entomogenous fungi
And Their Associations with Arthropods. Tje University of British Columbia.
148pp.30.14. Azize, E.M., D. Aulfat and T. Yaseen. 2021. Biological Control of Insect pests
by Bacterial Species present in the Environment. Journal of Agricultural,
Environmental and Veterinary Sciences,5 (2): 28-47.
15. Barron, G.L. (1972). The Genere of Hypohomycetes from Soil. Robert E. Krieger
publishing Company, USA, 364.
16. Bextine, B.R. and H.G. Thorvilson. 2002. Filed Applications of Bait- formulated
Beauveria bassiana Alginata Pellets for Biological control of the red Imported
Fier ant (Hymenoptera: Formicidae). Environ. Entomol. 31(4): 746-752.
17. Bing, L.A. and Lewis, L.C., 1991. Suppression of Ostrinia nubilalis (Hübner)
(Lepidoptera: Pyralidae) by Endophytic Beauveria bassiana (Balsamo)
Vuillemin. Environmental Entomology, 20(4):1207–1211.
18. Botton, B; Berton, A; Fevre, M; Gauthier, S; Guy, ph; Larpent, j.p; Reymond, p;
Sanglier, j.j; Vayssier, y; Veau, p. (1990). M0isissures utiles et nuisibles
importance industrielle edition, masson, paris, pp289.
19. Broderick N. A., K. F. Raffa and J. Handelsman. 2006. Midgut bacteria required
for Bacillus thuringiensis insecticidal activity. PNAS 103(41): 15196-15199.
20. Candas, M., O. Loseva, B. Oppert, P. Kosaraju and L.A. Jr. Bulla, 2003. Insect
resistance to Bacillus thuringiensis: alterations in the Indian meal moth larval gut
proteome. Molec. Cell. Proteomics, 2: 19-28.
21. Castillo, M. A., Moya, P, and E. Primo-Yufera. 2000. Susceptibility of Ceratitis
capitata Wiedemann (Diptera: Tephritidae) to entomopathogenic fungi and their
extract. Biological Control, 19: 274-282.
22. Cheung, P.Y.K. and Grula, E.A., 1982. In vivo events associated with
entomopathology of Beauveria bassiana for the corn earworm (Heliothis zea).
Journal of Invertebrate Pathology, 39(3):303–313.
23. De la rosa. W., Alatorre. R. Trujillo. J. Barrera. J. F. (1997): Virulence of
Beauvirea bassiana (Deuteromycetes) strains against the coffee borer
(Coleoptera: Scolytidae). -J Econ Entomol 90: 1534-1538.
24. Debach, P., and Rosen, D., 1991. Biological control by natural enemies.
Cambridge University Press, Cambridge, UK, pp 440.
25. Edgington, S., Moore, D., Kutuk, H., Satar, H., and M. El Bouhsini. 2006.
Progress in the development of a mycoinsecticide for biological control of Sunn
pest. Pages 237-243.
26. Eilenberg, J., Hajek, A. and C. Lomer. 2011. Suggestions for unifying the
terminology in biological control. Biocontrol, 46:387-400.
27. Ekesi, S. 2001. Pathogenicity and antifeedant activity of entomopathogenic
hyphomycets to the cowpea leaf beetle, Ootheca mutabilis Shalberg. Insect
Science and its Application, 21: 55-66.
28. Evans, H.C. (1982). Entomogenous fungi in tropical forest ecosystem an
appraisal. Eco Entomol.
29. Flexner, J.F., Westigard, P.H. and Croft, B.A. (1988). Field reversion if
organotion resistance in the two spotted spider mite (Acari: Tetranychidae)
following relation of selection pressure. J. of Econo Entomo 81 (6): 1516-1520.30. Gatarayiha, M.C. 2009. Biological control of the two spotted spider mites
Tetranychus urticae Koch (Acari: Tetranychidae).ph.D. Thesis, Universityof
KwaZulu- Natal,Pietrmaritzburg, 198 pp.
31. Geroh, M., R. Gulati and K. Tehri. 2014. Beauveria bassiana (Balsamo)
vuillemin (strain ITCC-4668) as acaricide against Tetranychus urticae Koch
(Acari: Tetranychidae). India Journal of Agricultural Research, 48: 384-388.
32. Gottwald, R.R. and Tedders, W.L. (1984). Colonization. Transmission and
longevity of Beauveria bassiana and Metrhizium anisoplae on pecan weevil
larvae in the soil. Environ Entomol. 13: 557 -560
33. Hajek, A.E. and Leger, R.J., 1994. Interactions between fungal pathogens and
insect hosts. Annual Review of Entomology, 39(1):293–322.
34. Hall, I.M., Hunter, D.K. and Arakawa, K.Y. The effect of the B-exotoxin fraction
of Bacillus thuringiensis on the citrus red mite. (1971). Journal of invertebrate
pathology 18(3): 359-362.
35. Halouane, F. et al., 2013. Study of the effect of Beauveria bassiana (Vuil,) on the
biochemistry and structure of the cuticle of Schistocerca gregaria (Forskal).
Annals of Biological Research, 4(12):68–74.
36. Helle, W.; and Sabelis, M. W. Spider mites: their biology, natural enemies and
control. World Crop pests, Elsevie, 1985, Vol. 1A, 75-90.
37. Hofmann, C., H. Vanderbruggen, H. Hofte, J. Van Rie, S. Jansens and H. Van
Mellaert. 1988. Specificity of Bacillus thuringiensis &-endotoxins is correlated
with the presence of high-affinity sites in the brush border membrane of target
insect midgets. Proc. Natl .Acad. Sci. 85: 7844-7848.
38. Humber, R.A. (1997). Fungi: identification. Pages153-185. In: Manual of
Techniques in Insect Pathology. L.A. Lacey (ed.). Academic press. New York,
pp.409.
39. Hung, Z,. Guan. C., and Guan, X. 2004. Cloning, characterization and expression
of a new cry 1 Ab gene from Bacillus thuringiensis WB9. Biotech. Lett., 26,
1557-1561.ize reaps savings to non-Bt maize growers. Science, 330, 222-225.
40. Jeppson, L.R., Keifer, H.H. and Baker, E.W., 1975. Mites Injurious to Economic
Plants. University of California press, Berkeley, 614 pp.
41. Jones, K., 2009. Rhizobium for peas and beans. The American Community
Gardening Association, 36-58.
42. Kango, N. 2010. Textbook of Microbiology. I. K. International Publishing House
Pvt. Ltd., India.
43. Kell, D.B., Kaprelyants AS, Weichart DH, Harwood CR, Barer MR. Viability
and activity in readily culturable bacteria: a review and discussion of the practical
issues. Antonie van Leeuwenhoek. 1998 Feb 1;73(2):169-87.
44. Kiellkiewicz, M. and Van de Vrie, M., 1983. Histological studies on strawberry
leaves damaged by the two-spotted spider mite (Tetranychus urticae): some
aspects of plant self defence Medelingen van de Faculteit Land bouw wetens
chappen. Rijks Universiteit Gent, 48(2): 235-245.
45. Kim, S.I., Roh, J.Y., Kim, D.H., Lee, H.S. and Ahn, Y.J. (2003), Insecticidal
activities of aromatic plant extracts and essential oils against Sitophilus oryzae
and Callosobruchus chinensis. J. Stored Prod. Res., 39, 293-30346. Kraaijeveld, A. R. and H. C. J. Godfray. 2008. Selection for resistance to a fungal
pathogen in Drosphila melanogaster. Heredity, 100: 400-406.
47. Krantz, J., schmutterer, H., Koch, W. (1978). Diseases,pests and weeds in
Tropical crops.paul parey,Berlin,Germany.
48. Lacey, L. A., Frutos, R., H. K. Kaya and Vail, P. 2001. Insect pathogens as
biological control agents: Do they have a future? Biol. Cont, 21, 230-248.
49. Lacey, L.A. 2012. Manual of techniques in invertebrate pathology. Second
edition. Elsevier Ltd, USA. 513 pp.
50. Lacey, L.A., 1997. Manual of Techniques in Invertebrate Pathology Second
Edition. Academic Press, USA...
51. Lord, J.C., 2001. Desiccant Dusts Synergize the Effect of Beauveria bassiana
(Hyphomycetes: Moniliales) on Stored-Grain Beetles. Journal of Economic
Entomology, 94(2):367–372.
52. Martin P and Travers R. 1989. Worldwide abundance and distribution of Bacillus
thuringiensis isolates. Appl Environ Microbiol., 55: 2437-2442.
53. Marvier, M., C. McCreedy, J. Regetz and P. Kareiva, 2007. Meta-analysis of
effects of Bt cotton and maize on nontarget invertebrates. Science, 316: 1475-
1477.
54. Matlob, A.N., I.S. Mohammad and K.S. Abdul. 1989. The Vegetable production
part II. The Second Revised edition.pp: 377.
55. McCoy, C.W., Samson, R.A. and Boucias, D.G., 1988. Entomogenous fungi. In:
Handbook of Natural Pesticides. Part A, CRC Press,Boca Raton. pp. 151–236.
56. Mondal, M.& Ara, N.2006: Biology and fecundity of the two- spotted spider mite
Tetranychus urticae Koch (Acari: Tetranychidae) under laboratory condi on
.j.lifeErthSci.,1(2):43-47.
57. Monteiro V.B.; M.G.C.Gondim; J.E.M.Olivera; H.A.A. Siqueira; and J.M. Sousa
(2015). Monitoring Tetranychus urticae Koch (Acari: Tetranychidae) resistance
to Abamectin in vineyards in vineyards in the Lower Middle Sao Francisco
Valley .Crop Protection . 69:90-96.
58. Mustafa, U. and Kaur, G., 2009. Effects of carbon and nitrogen sources and ratio
on the germination, growth and sporulation characteristics of Metarhizium
anisopliae and Beauveria bassiana isolates. African Journal of Agricultural
Research: 922–930.
59. Neethu, K.B., Priji, P., Unni, K.N., Sajith, S.,Sreedevi, S., Ramani, N., Anitha,
K., Rosana, B., Girish, M.B. and Benjamin, S. 2015. New Bacillus thuringiensis
strain isolated from the gut of Malabari goat is effective against Tetranychus
macfarlanei. Jornal of applied entomology, 140(3): 187-198.
60. Negash, R., M. Dawd and F. Azerefegne. 2014. Pathogenecity of Beauveria
bassiana and Metarhizium anisopliae, to the two spotted spider mites,
Tetranychus urticae, (Acari: Tetranychidae) at different temperatures and under
greenhouse conditions. Ethiopian Journal of Agricultural Sciences. 24: 51-58.
61. Nester, E. Thomashow, L. S., M, Metez. And Gordan, M., 2002. 100 years of
Bacillus thuringiensis: A critical scientific assessment. American Academy of
Microbiology, Washington, D.C.62. Numa, S.; Rodriguez, L.; Rodriguez, D.; and Coy-barrera, E.Susceptibility of
Tetranychus urticae Koch to an ethanol extract of Cnidoscolus aconitifolius
leaves under laboratory condition. Springer Plus, 2015, VOI.4. 1-10.
63. Ortucu, S. and N. Albayrak Iskender. 2017. Determination of control potentials
and enzyme activation of Beauveria bassiana (Bals.) Vuil. Isolates against
Tetranychus urticae Koch (Acari: Tetranychidae). Trakya University Journal of
Nature Sciences, 18: 33-38.
64. Ownley, B.H., Gwinn, K.D. and Vega, F.E., 2010. Endophytic fungal
entomopathogens with activity against plant pathogens: ecology and evolution.
BioControl, 55(1):113–128.
65. Poinar, G.O. Jr and G.O. Thomas. (1984). Laboratory guide to insect pathogens
and parasites. Plennum Press, New York.pp392.
66. Prasad, A., Syed, N. and Purohit, S., 2010. Beauveria bassiana (Balsamo)
vuillemin: A successful biopesticide against key pest Helicoverpa armigera
(Hubner). International Journal of Pharma and Bio Sciences,1(2).
67. Rehner, S.A; Minnis, A.M; Sung, Gi-ho; Luangsa-Ard, J.J; Devotto, L. and
Humber, R.A. (2011). Phylogeny and systematics of the anamorphic,
entomopathogenic genus Beauveria. Mycologia, The mycological society of
America, Lawrence, 103(5), 1055-1073.
68. Roberts, D.W. and Hajek, A.E., 1992. Entomopathogenic Fungi as
Bioinsecticides. In: Leatham, G.F., (ed.) Frontiers in Industrial Mycology.
Springer US: 144–159.
69. Roberts, D.W., 1981. Toxins of entomopathogenic fungi. In: Microbial Control
of Pests. Academic Press, London: 441–464.
70. Roberts. D.W. Leger. R. J. (2004): Metarhiium spp. cosmopoltion insectpathogenic
fungi: mycological aspects. – Advances in Applied Microbiology 54:
1-70.
71. Robinson W.H. (1996). Urban entomology insect and mite pestsin the human
environment.First edition chapman and Hall. London: 430 pp.
72. Roh, J.Y., Y.C. Jae, S.L. Ming, R.J. Byung and H.E. Yeon, 2007. Bacillus
thuringiensis as a specific, safe and effective tool for insect pest control. J.
Microbiol. Biotechnol., 17: 547-559.
73. Royalty, R. N., Hall, F. R., Taylor, R. A. J. (1990): Effects of thuringiensin on
Tetranychus urticae (Acari: Tetranychidae) mortality, fecundity, and feeding. –
Journal of Economic Entomology 83: 792-798.
74. Sakr, I.A. (1988). Stadien bezogene prufungen von exogen applizierten
xenobiotika u. Antibiotika auf akarizide Eigenschaften und Diskussion des
Wirkprinzips (Modell Komobination) Tetranychus urticae Koch Phaseolus
vulgaris in: Dissertation (A) Leipzig.PP125.
75. Sances, F.V.; Wyman, J.A. and Ting, I.P., 1979. Morphological responses of
strawberry leaves to infestations of two- spotted spider mite. Journal of Economic
Entomology, 72(5): 710-713.
76. Sanchis, V. and D. Bourguet, 2008. Bacillus thuringiensis: applications in
agriculture and insect resistance management, a review. Agronomy for Sustain.
Develop., 28: 11-20.77. Schnepf, E., Crickmore, N., Van Rie, J., Lereclus, D. (1998): Bacillus
thuringiensis and its pesticidal crystal proteins. – Microbiology and Molecular
Biology Reviews 62(3): 775-806.
78. Shannag, H.K., Capinera, J.L. and Freihat, N.M. (2013), Use of neem-based
insecticides against southern armyworm Spodoptera eridania (Stoll) (Lep.,
Noctuidae). Trend. Ent., 9, 45-53.
79. SIB, 2017, Taxonomía Cordycipitaceae [Online]. Available at:
https://www.sib.gov.ar/taxonomia/familia/Cordycipitaceae.
80. Smith, K.E., R. Wall, and M.P. French, 2000. The use of entomopathogenic fungi
for the control of parasitic mites Psoroptes spp.Vet. Parasitolo.92 (2) :97-105.
81. Smith, R.J., Pekul,S.and Grula,E.A. (1981). Requirement for Seguential
enzymatic activities for peretration at the integument of the corn earworm
(Heliothes zea).J.invert. path. 38:335-344.
82. Sosa-Gomez, D. R. and F. Moscardi. 1998. Laboratory and field studies on the
infection on stink bugs. Nezara viridula, Piezodorus guildinii and Euschistus
heros (Hemiptera: Pentatomidae) with Metarhizium anisopliae and Beauveria
bassiana. Journal of Invertebrate Pathology, 71: 115-10.
83. St- Leger, R.j., Cooper, R.M. aneharnley, A.K. (1986). Cuticle degredation
enzymes of entomopathogenes. J. inver. Path.47: 167-177.
84. Tanda,Y., Kaya, H.K. 1993. Insect pathology. Academic press, San Diego,
Publisher.pp.666. Availabl from: https://www.elsevier.com/books/insectpathology/
tanada/978-0-08-092625-4.
85. Townsend, T.R., Glare and B.E. Willoughby. 1995. The fungi Beauveria spp.
cause epizootics in grass grub population in Waikato. The New Zealand Plant
protection Society incorporated.
86. Travers, R., Martin, P., and Reichelderfer C.1987. Selective process for efficient
isolation of soils Bacillus spp. Appl Environ Microbiol., 53: 1263-1262.
87. Ullah sheaf, M., Lim, U.T. 2015. Laboratory bioassay of Beauveria bassiana
against Tetranychus urticae (Acari: Tetranychidae) on leaf discs and potted bean
plants. Experimental and Applied Acarology, 65: 307-3018.
88. Vafaei, F.; K.H.I. Nejad: T.P.Chaichi; and M.vlizadeh (2006) .The study of
laboratory biology of two-spotted spider mite (etranychus urticae Koch) on five
bean cultivars of two species. J. Sci. and Technol. Agric. And Technol. Agric.and
Nature.Resource.10(3):483-491.
89. Von Arx, j.A. (1981). The Genera of fungi Sporulating in pure culture. 3rd.ed.,
Germany, pp424.
90. Younga, J.M. ChilcottbC. N,. Broadwellb A, Wigleyb P. J &. Lecadetc M. M,
(1998): Identification of serovars of Bacillus thuringiensis Berliner 1915 in New
Zealand, Volume 26, Issue 1.
91. Zenkova, A.A., Grizanova, E.V., Andreeva, I.V., Gerne, D.Y., Shatalova, E.I.,
Cvetcova, V.P. and Dubovskiy, I.M. (2020). Effect of fungus lecanicillium
lecanii and bacteria Bacillus thuringiensi Sstreptomyces avermitilis on twospotted
spider mite Tetranychus urticae (Acari: Tetranychidae) and predatory
mite phytoseiulus persimilis (Acari: phytoseiidae). Journalof plant prptection
Resersh.Vol.60, No.4:415-419.92. Zhang, Z.Q. 2003. Mites of greenhouses. Identification. biology and control.
CBAI, UK, 244pp.