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Research Articles

Characterization of Chitinolytic and Antifungal Activities in Marine-Derived Trichoderma bissettii Strains

, , , , & ORCID Icon
Pages 244-253 | Received 23 Feb 2021, Accepted 20 Jul 2022, Published online: 24 Aug 2022

References

  • Park MS, Bae KS, Yu SH. Two new species of Trichoderma associated with green mold of oyster mushroom cultivation in Korea. Mycobiology. 2006;34(3):111–113.
  • Guzman-Guzman P, Porras-Troncoso MD, Olmedo-Monfil V, et al. Trichoderma species: versatile plant symbionts. Phytopathology. 2019;109(1):6–16.
  • Druzhinina IS, Kopchinskiy AG, Kubicek CP. The first 100 Trichoderma species characterized by molecular data. Mycoscience. 2006;47(2):55–64.
  • Nicoletti R, Vinale F. Bioactive compounds from marine-derived Aspergillus, Penicillium, Talaromyces and Trichoderma species. Mar Drugs. 2018;16(11):408.
  • Su D, Ding L, He S. Marine-derived Trichoderma species as a promising source of bioactive secondary metabolites. Mini Rev Med Chem. 2018;18(20):1702–1713.
  • Saba H, Vibhash D, Manisha M, et al. Trichoderma – a promising plant growth stimulator and biocontrol agent. Mycosphere. 2012;3(4):524–531.
  • Kubicek CP, Mach RL, Peterbauer CK, et al. Trichoderma: from genes to biocontrol. J Plant Pathol. 2001;83:11–23.
  • Rathore AS, Gupta RD. Chitinases from bacteria to human: properties, applications, and future perspectives. Enzyme Res. 2015;2015:791907.
  • Hamid R, Khan MA, Ahmad M, et al. Chitinases: an update. J Pharm Bioallied Sci. 2013;5(1):21–29.
  • Gooday GW, Zhu WY, O'Donnell RW. What are the roles of chitinases in the growing fungus? FEMS Microbiol Lett. 1992;100(1–3):387–391.
  • Okongo RN, Puri AK, Wang Z, et al. Comparative biocontrol ability of chitinases from bacteria and recombinant chitinases from the thermophilic fungus Thermomyces lanuginosus. J Biosci Bioeng. 2019;127(6):663–671.
  • Benhabiles M, Salah R, Lounici H, et al. Antibacterial activity of chitin, chitosan, and its oligomers prepared from shrimp shell waste. Food Hydrocoll. 2012;29(1):48–56.
  • Pan XQ, Shih CC, Harday J. Chitinase induces lysis of MCF-7 cells in culture and of human breast cancer xenograft B11-2 in SCID mice. Anticancer Res. 2005;25(5):3167–3172.
  • Tokoro A, Kobayashi M, Tatewaki N, et al. Protective effect of N-acetyl chitohexaose on Listeria monocytogenes infection in mice. Microbiol Immunol. 1989;33(4):357–367.
  • Tsukada K, Matsumoto T, Aizawa K, et al. Antimetastatic and growth-inhibitory effects of N-acetylchitohexaose in mice bearing Lewis lung carcinoma. Jpn J Cancer Res. 1990;81(3):259–265.
  • Baek JM, Howell DR, Kenerley CM. The role of an extracellular chitinase from Trichoderma virens Gv29-8 in the biocontrol of Rhizoctonia solani. Curr Genet. 1999;35(1):41–50.
  • Baldoni DB, Antoniolli ZI, Mazutti MA, et al. Chitinase production by Trichoderma koningiopsis UFSMQ40 using solid state fermentation. Braz J Microbiol. 2020;51(4):1897–1908.
  • de la Cruz J, Hidalgo-Gallego A, Lora JM, et al. Isolation and characterization of three chitinases from Trichoderma harzianum. Eur J Biochem. 1992;206(3):859–867.
  • Klemsdal SS, Clarke JL, Hoell IA, et al. Molecular cloning, characterization, and expression studies of a novel chitinase gene (ech30) from the mycoparasite Trichoderma atroviride strain P1. FEMS Microbiol Lett. 2006;256(2):282–289.
  • Kovacs K, Szakacs G, Pusztahelyi T, et al. Production of chitinolytic enzymes with Trichoderma longibrachiatum IMI 92027 in solid substrate fermentation. Appl Biochem Biotechnol. 2004;118(1–3):189–204.
  • Loc NH, Huy ND, Quang HT, et al. Characterisation and antifungal activity of extracellular chitinase from a biocontrol fungus, Trichoderma asperellum PQ34. Mycology. 2020;11(1):38–48.
  • Omumasaba CA, Yoshida N, Ogawa K. Purification and characterization of a chitinase from Trichoderma viride. J Gen Appl Microbiol. 2001;47(2):53–61.
  • Abu-Tahon MA, Isaac GS. Anticancer and antifungal efficiencies of purified chitinase produced from Trichoderma viride under submerged fermentation. J Gen Appl Microbiol. 2020;66(1):32–40.
  • Gal-Hemed I, Atanasova L, Komon-Zelazowska M, et al. Marine isolates of Trichoderma spp. as potential halotolerant agents of biological control for arid-zone agriculture. Appl Environ Microbiol. 2011;77(15):5100–5109.
  • Pasqualetti M, Barghini P, Giovannini V, et al. High production of chitinolytic activity in halophilic conditions by a new marine strain of Clonostachys rosea. Molecules. 2019;24(10):1880.
  • Riddell RW. Permanent stained mycological preparations obtained by slide culture. Mycologia. 1950;42(2):265–270.
  • Gardes M, Bruns TD. ITS primers with enhanced specificity for basidiomycetes–application to the identification of mycorrhizae and rusts. Mol Ecol. 1993;2(2):113–118.
  • Carbone I, Kohn LM. A method for designing primer sets for speciation studies in filamentous ascomycetes. Mycologia. 1999;91(3):553–556.
  • Jaklitsch WM, Komon M, Kubicek CP, et al. Hypocrea voglmayrii sp. nov. from the Austrian alps represents a new phylogenetic clade in Hypocrea/Trichoderma. Mycologia. 2005;97(6):1365–1378.
  • Sandoval-Denis M, Sutton DA, Cano-Lira JF, et al. Phylogeny of the clinically relevant species of the emerging fungus Trichoderma and their antifungal susceptibilities. J Clin Microbiol. 2014;52(6):2112–2125.
  • Tamura K, Peterson D, Peterson N, et al. MEGA5: molecular evolutionary genetics analysis using maximum likelihood, evolutionary distance, and maximum parsimony methods. Mol Biol Evol. 2011;28(10):2731–2739.
  • Chung D, Baek K, Bae SS, et al. Identification and characterization of a marine-derived chitinolytic fungus, Acremonium sp. YS2-2. J Microbiol. 2019;57(5):372–380.
  • Miller GL. Use of dinitrosalicylic acid reagent for determination of reducing sugar. Anal Chem. 1959;31(3):426–428.
  • Kwon YM, Choi HS, Lim JY, et al. Characterization of amylolytic activity by a marine-derived yeast Sporidiobolus pararoseus PH-Gra1. Mycobiology. 2020;48(3):195–203.
  • Garrigues S, et al. Three antifungal proteins prom Penicillium expansum: different patterns of production and antifungal activity. Front Microbiol. 2018;9:2370.
  • Jaklitsch WM, Voglmayr H. Biodiversity of Trichoderma (Hypocreaceae) in Southern Europe and macaronesia. Stud Mycol. 2015;80:1–87.
  • Elmonem MA, van den Heuvel LP, Levtchenko EN. Immunomodulatory effects of chitotriosidase enzyme. Enzyme Res. 2016;2016:2682680.
  • Kim K, Heo YM, Jang S, et al. Diversity of Trichoderma spp. in marine environments and their biological potential for sustainable industrial applications. Sustainability. 2020;12(10):4327.
  • Hong J-H, Jang S, Heo YM, et al. Investigation of marine-derived fungal diversity and their exploitable biological activities. Mar Drugs. 2015;13(7):4137–4155.
  • Stracquadanio C, Quiles JM, Meca G, et al. Antifungal activity of bioactive metabolites produced by Trichoderma asperellum and Trichoderma atroviride in liquid medium. JOF. 2020;6(4):263.
  • Sadykova VS, Kurakov AV, Kuvarina AE, et al. Antimicrobial activity of fungi strains of Trichoderma from Middle siberia. Appl Biochem Microbiol. 2015;51(3):355–361.
  • Leelavathi MS, Vani L, Reena P. Antimicrobial activity of Trichoderma harzianum against bacteria and fungi. Int J Curr Microbiol App Sci. 2014;3:96–103.
  • Guo RF, Shi BS, Li DC, et al. Purification and characterization of a novel thermostable chitinase from Thermomyces lanuginosus SY2 and cloning of its encoding gene. Agric Sci China. 2008;7(12):1458–1465.
  • van Munster JM, van der Kaaij RM, Dijkhuizen L, et al. Biochemical characterization of Aspergillus niger CfcI, a glycoside hydrolase family 18 chitinase that releases monomers during substrate hydrolysis. Microbiology. 2012;158(8):2168–2179.
  • Velmurugan N, Kalpana D, Han JH, et al. A novel low temperature chitinase from the marine fungus Plectosphaerella sp. strain MF-1. Botanica Marina. 2011;54(1):75–81.
  • Yang S, Fu X, Yan Q, et al. Biochemical characterization of a novel acidic exochitinase from Rhizomucor miehei with antifungal activity. J Agric Food Chem. 2016;64(2):461–469.
  • Yu G, Xie LQ, Li JT, et al. Isolation, partial characterization, and cloning of an extracellular chitinase from the entomopathogenic fungus Verticillium lecanii. Genet Mol Res. 2015;14(1):2275–2289.
  • Deane EE, Whipps JM, Lynch JM, et al. The purification and characterization of a Trichoderma harzianum exochitinase. Biochim Biophys Acta. 1998;1383(1):101–110.
  • Kumar DP, Singh RK, Anupama PD, et al. Studies on exo-chitinase production from Trichoderma asperellum UTP-16 and its characterization. Ind J Microbiol. 2012;52(3):388–395.
  • Sahai AS, Manocha MS. Chitinases of fungi and plants: their involvement in morphogenesis and host-parasite interaction. FEMS Microbiol Rev. 1993;11(4):317–338.
  • Hartl L, Zach S, Seidl-Seiboth V. Fungal chitinases: diversity, mechanistic properties and biotechnological potential. Appl Microbiol Biotechnol. 2012;93(2):533–543.
  • Sood M, Kapoor D, Kumar V, et al. Trichoderma: the “secrets” of a multitalented biocontrol agent. Plants. 2020;9(6):762.