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References


Alali S, Mereghetti V, Faoro F, Bocchi S, Al Azmeh F, Montagna M (2019)Thermotolerant isolates of Beauveria bassiana as potential control agent of insect pest in subtropical climates. PLoS ONE14(2): e0211457https://doi.org/10.1371/journal.pone.0211457.

Arner ES, Holmgren A (2000) Physiological functions of thioredoxin and thioredoxin reductase. European Journal of Biochemistry267: 6102–6109.

Alavo TB (2015) The insect pathogenic fungus Verticillium lecanii (Zimm.) Viegas and its use for pests control: A Review. Journal of Experimental Biology and Agricultural Sciences 3(4): 337-345.

Bhadauria BP, Singh PK, Shailesh P, Zaidi NW, Singh US (2013) Characterization and biocontrol potential of entomopathogenic fungus, Beauveria bassiana isolates against Spilarctiaobliqua. Journal of Environmental Biology 34(5): 917-21.

Beys da silva W, Santi L, Schrank A, Vainstein MH (2010) Metarhizium anisopliae lipolytic activity plays a pivotal role in Rhipi cephalus (Boophilus) microplus infection. Fungal Biology 114:10-15.

Carolino AT, Gomes SA, Teodoro TBP, Mattoso TC, Samuels RI (2019) Aedesaegypti pupae are highly susceptible to infection by Metarhizium anisopliae blastospores. Journal of Pure and Applied Microbiology 13(3): 1629-1634. https://doi.org/10.22207/JPAM.13.3.36.

Castellanos-Moguel J, Gonzalez-Barajas M, Mier T, Reyes Montes MR, Aranda E, Toriello C (2007) Virulence testing and extracellular subtilisin-like (Pr1) and trypsin-like (Pr2) activity during propagule production of Paecilomyces fumosoroseus isolates from whiteflies (Homoptera: Aeyrodidae). Revista Iberoamericana de Micología 24: 62-68.

Chantasingh D, Kitikhun S, Keyhani NO, Thoetkiattikul KBH, Pootanakit K, Eurwilaichitr L (2013) Identification of catalase as an early up-regulated gene in Beauveria bassiana and its role in entomopathogenic fungal virulence. Biological Control 67: 85-93.

Cho EM, Boucias D, Keyhani NO (2006) EST analysis of cDNA libraries from the entomopathogenic fungus Beauveria (Cordyceps) bassiana. II. Fungal cells sporulating on chitin and producing oosporein. Microbiology152: 2855-64.

Culotta VC, Yang M, O'Halloran TV (2006) Activation of superoxide dismutases: putting the metal to the pedal. Biochimica et Biophysica Acta (BBA) - Molecular Cell Research1763: 747–758.

Dhar P, Kaur G (2010) Production of cuticle degrading proteases by Beauveriabassianaand their induction in different media. African Journal of Biochemistry Research 4(3): 65-72.

Dhawan M, Joshi N (2017) Enzymatic comparison and mortality of Beauveria bassiana against cabbage caterpillar Pieris brassicae LINN.  Brazilian Journal of Microbiology 48 (3): 522–529.

Dhawan M, Kaur S, Chopra H, Kalra G, Kaur S, Sharma M, Khosla R (2018) Evaluation of cost-effective methodology for the isolation of bacillus thuringiensis and its toxin production. Research Journal of Life Sciences, Bioinformatics, Pharmaceutical and Chemical Sciences 4(3): 464-478. https://doi.org/10.26479/2018.0403.41

Dias B, Neves P, Furlaneto-Maia L, Furlaneto MC (2008) Cuticle-degrading proteases produced by the entomopathogenic fungus Beauveria bassiana in the presence of coffee berry borer cuticle. Brazilian Journal of Microbiology 39: 301–306.

Fan J, Xie Y, Xue J, Liu R (2013) The effect of Beauveria brongniartii and its secondary metabolites on the detoxification enzymes of the pine caterpillar, Dendrolimus tabulaeformis. Journal of Insect Science 13: 44.

Fan YH, Fang WG, Guo SJ, Pei XQ, Zhang YJ, Xiao YH, Li DM, Jin K, Bidochka MJ, Pei Y (2007) Increased insect virulence in Beauveria bassiana strains overexpressing an engineered chitinase. Applied and Environmental Microbiology 73: 295–302.

Fan YH, X Pei, S Guo, Zhang YJ, Luo Z, Liao X, Pei Y (2010) Increased virulence using engineered protease-chitin binding domain hybrid expressed in the entomopathogenic fungus Beauveria bassiana. Microbial Pathogenesis 49: 376-380.

Fang W, Feng J, Fan Y, Zhang Y, Bidochka MJ, St. Leger RJ, Pei Y (2009) Expressing a fusion protein with protease and chitinase activities increases the virulence of the insect pathogen Beauveria bassiana. Journal of Invertebrate Pathology 102: 155-159.

Fang WG, Leng B, Xiao YH, Jin K, Ma JC, Fan YH, Feng J, Yang XY, Zhang YJ, Pei Y (2005) Cloning of Beauveria bassiana chitinase gene Bbchit1 and its application to improve fungal strain virulence. Applied and Environmental Microbiology 71: 363–370.

Firouzbakht H, Zibaee A, Hoda H, Sohani MM (2015) Virulence Determination of Beauveria bassiana Isolates on a Predatory Hemipteran, Andrallus spinidens Fabricius (Hemiptera: Pentatomidae). Acta Phytopathologica et Entomologica Hungarica 50(1): 115–125.

Gibson DM, Donzelli BG, Krasnoff SB, Keyhani NO (2014) Discovering the secondary metabolite potential encoded within entomopathogenic fungi. Natural Product Reports 31: 1287-1305.

Glare TR, Reay SD, Nelson TL, Moore R (2008) Beauveria caledonica is a naturally occurring pathogen of forest beetles. Mycological Research 112(3): 352-360.

Gupta R, Kumari A, Syal P, Singh Y (2015) Molecular and functional diversity of yeast and fungal lipases: their role in biotechnology and cellular physiology. Progress in Lipid Research 57: 40-54.

Hamid R, Khan MA, Ahmad M, Ahmad MM, Abdin MZ, Musarrat J, Javed S (2013) Chitinases: An update. Journal of Pharmacy &BioAllied Sciences 5(1): 21–29. https://doi.org/10.4103/0975-7406.106559.

Hernandez CEM, Guerrero IEP, Hernandez GAG, Solis ES, Guzman JCT (2010) Catalase overexpression reduces the germination time and increases the pathogenicity of the fungus Metarhizium ansiopliae. Applied Microbiology and Biotechnology 87: 1033–1044.

Joshi N, Shera PS, Sangha KS, Sharma S (2019) Bioformulations for management of pod borer, Helicoverpa armigera (Hübner) in Mungbean (Vigna radiata L.). Journal of Biological Control 33(1): 76-79.

Joshi L, St. Leger RJ, Bidochka MJ (1995) Cloning of a cuticle-degrading protease from the entomopathogenic fungus, Beauveria bassiana. FEMS Microbiology Letters 125: 211–217.

Kaur A, Joshi N (2014) Conidial production of Beauveria bassiana on agricultural products and effect of storage temperature on its formulations. African Journal of Microbiology 8(34): 3164-3170.

Kaur N, Dhawan M, Sharma I, Pati PK (2016) Interdependency of Reactive Oxygen Species generating and scavenging system in salt sensitive and salt tolerant cultivars of rice. BMC Plant Biology 16: 131 https://doi.org/10.1186/s12870-016-0824-2.

Kaur S, Kumar A, Joshi N (2017) Bioefficacy of Bacillus thuringiensis against cabbage butterfly, Pieris brassicae. Journal of Entomology and Zoology Studies 5(5): 1057-1061.

Khan S, Guo L, Shi H, Mijit M, Qiu D (2012) Bioassay and enzymatic comparison of six entomopathogenic fungal isolates for virulence or toxicity against green peach aphids Myzus persicae. African Journal of Biotechnology 11(77): 14193-203.

Kim JS, Roh JY, Choi JY, Wang Y, Shim HJ, Je YH (2010) Correlation of the aphicidal activity of BeauveriabassianaSFB- 205 supernatant with enzymes. Fungal Biology 114: 120–128.

Kwok LY, Schlüter D, Clayton C, Soldati D (2004) The antioxidant system in Toxoplasma gondii and the role of cytosolic catalase in defense against oxidative injury. Molecular Microbiology 51: 47–61.

Keyhani NO (2017) Lipid biology in fungal stress and virulence: Entomopathogenic fungi. Fungal Biology 122(6): 420-429.

Li DC (2006) Review of fungal chitinases. Mycopatholgia161: 345-360.

Li F, Shi HQ, Ying SH, Feng MG (2015) Distinct contributions of one Fe- and two Cu/Zn-cofactored superoxide dismutases to antioxidation, UV tolerance and virulence of Beauveria bassiana. Fungal Genetics and Biology 81: 160-71. 

Litwin A, Nowak M, Rozalska S(2020) Entomopathogenic fungi: unconventional applications. Reviews in Environmental Science and Biotechnology19: 23–42.

Liu Q, Ying SH, Li JG, Tian CG, Feng MG (2013) Insight into the transcriptional regulation of Msn2 required for conidiation, multi-stress responses and virulence of two entomopathogenic fungi. Fungal Genetics and Biology 54: 42–51.

Liu SQ, Meng ZH, Yang JK, Fu YK, Zhang KQ (2007) Characterizing structural features of cuticle-degrading proteases form fungi by molecular modelling. BMC Structural Biology 7(33) https://dx.doi.org/10.1186%2F1472-6807-7-33.

Mahmood DF, Abderrazak A, El Hadri K, Simmet T, Rouis M (2013) The thioredoxin system as a therapeutic target in human health and disease. Antioxidant Redox Signal 19:1266–1303 (2013).

Mancillas-Paredes JS, Hernandez-Sanchez H,  Jaramillo-Flores ME,  Garcia-Gutierrez C (2019) Proteases and Chitinases Induced in Beauveria bassiana during Infection by Zabrotes subfasciatus. Southwestern Entomologist 44(1): 125-137.

Matias-Montesinos R, Gonzales-Viniegra G, Rosas-Alatorre R, Loera O (2011) Relationship between virulence and enzymatic profile in the cuticle of Tenebrio molitor by 2-deoxy-D-glucose-resistant mutants of Beauveria bassiana (Bals.) Vuill. World Journal of Microbiology and Biotechnology 27: 2095-2102.

Meenu, Dhawan M, Joshi N (2020) Toxicity, biodegradation and bioremediation of triazophos (TAP): AMini-Review. Research Journal of Pharmaceutical, Biological and Chemical Sciences11(5):109-116.

Mustacich D, Powis G (2000) Thioredoxin reductase. Biochemical Journal 346: 1–8.

Oerke EC, Dehne HW (2004) Safeguarding production – losses in major crops and the role of crop protection. Crop Protection 23: 275–285.

Oliveira CM, Auad AM, Mendes SM, Frizzas MR (2014) Crop losses and the economic impact of insect pests on Brazilian agriculture. Crop Protection 56: 50–54.

Ortiz-Urquiza A, Keyhani NO, Quesada-Moraga E (2013) Culture conditions affect virulence and production of insect toxic proteins in the entomopathogenic fungus Metarhizium anisopliae. Biocontrol Science and Technology 23: 1199-1212.

Ortiz-Urquiza A, Keyhani NO (2014) Stress response signalling and virulence: insights from entomopathogenic fungi. Current Genetics 61(3): 239-49.

Oyeleye A, Normi YM (2018). Chitinase: diversity, limitations, and trends in engineering for suitable applications. Bioscience reports 38(4): BSR2018032300. https://doi.org/10.1042/BSR20180323.

Pedrini N, Ortiz-Urquiza A, Huarte-Bonnet C, Zhang S, Keyhani NO (2013) Targeting of insect epicuticular lipids by the entomopathogenic fungus Beauveria bassiana: hydrocarbon oxidation within the context of a host-pathogen interaction. Frontiers in Microbiology 4(24)  https://doi.org/10.3389/fmicb.2013.00024.

Pedrini N, Ortiz-Urquiza A, Huarte-Bonnet C, Fan Y, Juarez MP, Keyhani NO (2015) Tenebrionid secretions and a fungal benzoquinone oxidoreductase form competing components of an arms race between a host and pathogen. Proceedings ofthe National Academy of Sciences of the United States of America 112 (28): 3651-3660.

Pedrini N, Juarez MP, Crespo R, de Alaniz MJT (2006) Clues on the role of Beauveriabassiana catalases in alkane degradation events. Mycologia 98: 528-534.

Pelizza SA, Eliades SA, Scorsetti AC, Cabello MN (2012) Entomopathogenic fungi from Argentina for the control of Schistocerca cancellata (Orthoptera: Acrididae) nymphs: fungal pathogenicity and enzyme activity. Biocontrol Science and Technology 22: 1119–1129.

Perinotto WMS, Golo PS, Rodrigues CJBC, Sa FA, Santi L, da Silva WOB, Junges A, Vainstein MH, Schrank A, Salles CMC, Bittencourt VREP (2014) Enzymatic activities and effects of mycovirus infection on the virulence of Metarhizium anisopliae in Rhipicephalus microplus. Veterinary Parasitology 203: 189-96.

Pinnamaneni R, Kalidas P, Sambasiva, Rao KRS (2010) Cloning and Expression of Bbchit1 gene of Beauveriabassiana. The Open Entomology Journal 4:30-35.

Sanchez-Perez L, Rodriguez-Navarro S, Marin-Cruz VH, Ramos Lopez MA, Ramos AP, Barranco-Florido JE (2016) Assessment of Beauveria bassiana and Their Enzymatic Extracts against Metamasius spinolae and Cyclocephala lunulata in Laboratory. Advances in Enzyme Research 4: 98-112.

Santi L, Coutinho-Rodrigues CJB, Berger M, Klein LAS, De Souza EM, Rosa RL, Guimarães JA, Yates JR, Perinotto WMS, Bittencourt VREP, Beys-da-Silva WO (2018) Secretomic analysis of Beauveria bassiana related to cattle tick, Rhipicephalus microplus, infection. Folia Microbiology 64: 361–372.

Santi L, Beys da Silva WO, Berger M, Guimaraes JA, Schrank A, Vainstein MH (2010) Conidial surface proteins of Metarhizium anisopliae: source of activities related with toxic effects, host penetration and pathogenesis. Toxicon55: 874–880.

Sharma J, Singh A, Kumar R, Mittal A (2006) Partial purification of an alkaline protease from a new strain of Aspergillus oryzae AWT 20 and its enhanced stabilization in entrapped Ca-alginate beads. The Internet Journal of Microbiology 2:1-14.

Sharma T, Joshi N, Kalia A (2017) Scanning electron microscopic studies of Beauveria bassiana against Lipaphis erysimi Kalt. Journal of Applied and Natural Science 9(1): 461-465.

Singh B, Kaur N, Kumar P, Hallan V, Pati PK (2020) Reactive oxygen species generating and scavenging systems play critical role in conferring leaf spot disease resistance in Withania somnifera (L.) Dunal. Industrial Crops and Products 157:112889.

Singh H, Joshi N (2020) Management of the aphid, Myzus persicae (Sulzer) and the whitefly, Bemisia tabaci (Gennadius), using biorational on capsicum under protected cultivation in India. Egyptian Journal of Biological Pest Control 30, 67 https://doi.org/10.1186/s41938-020-00266-5.

Song TT, Ying SH, Feng MG (2012) High resistance of Isaria fumosorosea to carbendazim arises from the overexpression of an ABC transporter (ifT1) rather than tubulin mutation. Journal of Applied Microbiology 112: 175–184.

St. Leger RJ, Frank DC, Roberts DW, Staples RC (1992) Molecular cloning and regulatory analysis of the cuticle-degrading protease structural gene from the entomopathogenic fungus Metarhizium anisopliae. European Journal of Biochemistry 204: 991-1001.

St. Leger RJ, Joshi L, Bidochka M, Rizzo MJ, Roberts DW (1996) Biochemical characterization and ultrastructural localization of two extracellular trypsins produced by Metarhizium anisopliae in infected insect cuticles. Applied and Environmental Microbiology 62: 1257–64.

St. Leger RJ, Bidochka MJ, Roberts DW (1994) Isoforms of the cuticle-degrading Pr1 proteinase and production of a metalloproteinase by Metarhizium anisopliae. Archives of Biochemistry and Biophysics313: 1-7.

Thakur R, Rajak RC, Sandhu SS (2005) Biochemical and molecular characteristics of indigenous strains of the entomopathogenic fungus Beauveri abassiana of central India. Biocontrol Science and Technology 15(7): 733-44.

Thungrabeab M, Tongma S (2007) Effect of Entomopathogenic Fungi, Beauveria bassiana (Balsamo) and Metarhizium anisopliae (Metsch) on non-target insects. Current Applied Science and Technology7: 8-12.

Tong SM, Feng MG (2019) Insights into regulatory roles of MAPK-cascaded pathways in multiple stress responses and life cycles of insect and nematode mycopathogens. Applied Microbiology and Biotechnology 103: 577– 587.

Tong, SM, Feng MG (2020) Phenotypic and molecular insights into heat tolerance of formulated cells as active ingredients of fungal insecticides. Applied Microbiology and Biotechnology 104: 5711–5724.

Urlacher VB, Lutz-Wahl S, Schmid RD (2004) Microbial P450 enzymes in biotechnology. Applied Microbiology and Biotechnology 64: 317-325.

Vincent F, Wegst G (2004) Design and Mechanical Property of Insect Cuticle. Arthropod Structure and Development 33:187-199.

Wang C, Hu G, St. Leger RJ (2005) Differential gene expression by Metarhizium anisopliae growing in root exudate and host (Mandu casexta) cuticle or hemolymph reveals mechanisms of physiological adaptation. Fungal Genetics and Biology 42(8): 704-18.

Wang J, Chen J, Hu Y, Ying SH, Feng MG (2020) Roles of six Hsp70 genes in virulence, cell wall integrity, antioxidant activity and multiple stress tolerance of Beauveria bassiana. Fungal Genetics and Biology144: 103437.

Wang ZL, Zhang LB, Ying SH, Feng MG (2013) Catalases play differentiated roles in the adaptation of a fungal entomopathogen to environmental stresses. Environmental Microbiology15: 409-418.

Xia L, Zeng Z, Ding X, Huang F (2009) The expression of a recombinant Cry1Ac gene with subtilisin-like protease CDEP2 gene in acrystalliferous Bacillus thuringiensis by Red/ET homologous recombination. Current Microbiology 59: 386-392.

Xie XQ, Li F, Ying SH, Feng MG (2012) Additive contributions of two manganese-cored superoxide dismutases (MnSODs) to antioxidation, UV tolerance and virulence of Beauveria bassiana. PLoS One7https://doi.org/10.1371/journal.pone.0030298.

Xie XQ, Wang J, Huang BF, Ying SH, Feng MG (2010) A new manganese superoxide dismutase identified from Beauveria bassiana enhances virulence and stress tolerance when overexpressed in the fungal pathogen. Applied Microbiology and Biotechnology 86: 1543-1553.

Yao SL, Ying SH, Feng MG, Hatting JL (2010) In vitro and in vivo responses of fungal biocontrol agents to the gradient doses of UV-B and UV-A irradiation. Biocontrol 55: 413–422.

Yuan Y, Huang W, Chena K, Ling E (2020) Beauveria bassiana ribotoxin inhibits insect immunity responses to facilitate infection via host translational blockage. Developmental and Comparative Immunology106: 10360 https://doi.org/10.1016/j.dci.2019.103605.

Ying SH, Feng MG (2019) Insight into vital role of autophagy in sustaining biological control potential of fungal pathogens against pest insects and nematodes. Virulence 10: 429–437.

Zhang LB, Tang L, Ying SH, Feng MG (2016a) Distinct roles of two cytoplasmic thioredoxin reductases (Trr1/2) in the redox system involving cysteine synthesis and host infection of Beauveria bassiana. Applied Microbiology and Biotechnology100: 10363–10374.

Zhang LB, Tang L, Ying SH, Feng MG (2016b) Regulative roles of glutathione reductase and four glutaredoxins in glutathione redox, antioxidant activity, and iron homeostasis of Beauveria bassiana. Applied Microbiology and Biotechnology 100: 5907–591.

Zhang LB, MG Feng (2018) Antioxidant enzymes and their contributions to biological control potential of fungal insect pathogens. Applied Microbiology and Biotechnology 102: 4995–5004.

Zhang LB, Tang L, Ying SH, Feng MG (2015) Subcellular localization of six thioredoxins and their antioxidant activity and contributions to biological control potential in Beauveria bassiana. Fungal Genetics and Biology 76: 1–9.

Zhang S, Widemann E, Bernard G, Lesot A, Pinot F, Pedrini N, Keyhani NO (2012) CYP52X1, representing new cytochrome P450 subfamily, displays fatty acid hydroxylase activity and contributes to virulence and growth on insect cuticular substrates in entomopathogenic fungus Beauveria bassiana. The Journal of Biological Chemistry 287: 13477-13486.

 

Zhang YJ, Feng MG, Fan YH, Luo ZB, Yang XY, Wu D (2008) A cuticle-degrading protease (CDEP-1) of Beauveria bassiana enhances virulence. Biocontrol Science and Technology18: 551-563.

Zhou Q, Ying S, Chen A,  Li W, Wang J (2018) In vivo transcriptomic analysis of Beauveria bassiana reveals differences in infection strategies in Galleria mellonella and Plutella xylostella. Pest Management Science 75(5): 1443-1452.

Zibaee A, Bandani AR, Talaei-Hassanlouei R, Malagoli D (2011) Cellular immune reactions of the sunn pest, Eurygaster integriceps, to the entomopathogenic fungus, Beauveria bassiana and its secondary metabolites. Journal of insect science(Online)11(1):138. https://doi.org/10.1673/031.011.13801.

Zimmermannn G (2007) Review on the safety of the entomopathogenic fungi Beauveria bassiana and Beauveria brongiartii. Biocontrol Sc

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