Effect of gamma irradiation on the viability and cellulase production of some filamentous fungi

Tran Bang Diep, Nguyen Thi Thom, Hoang Dang Sang, Tran Xuan An, Nguyen Van Binh, Tran Minh Quynh
Author affiliations

Authors

  • Tran Bang Diep Hanoi Irradiation Centre- Vietnam Atomic Energy Isntitute
  • Nguyen Thi Thom
  • Hoang Dang Sang
  • Tran Xuan An
  • Nguyen Van Binh
  • Tran Minh Quynh

DOI:

https://doi.org/10.15625/1811-4989/18/2/15280

Keywords:

Aspergillus, Cellulase, Gamma irradiation, Mutant, Trichoderma, Spore

Abstract

The motivation of our research is to examine the mutagenic effect of gamma irradiation on cellulase secretion of some filamentous fungi. The spore suspensions of Aspergillus sp. TTG and Trichoderma sp. VTCC were irradiated at dose ranging 0-2500 Gy under gamma Cobalt-60 source at Ha Noi Irradiation Center. The result showed that the survival rate of fungi decreases with the increasing dose. The radiation dose required to kill 90% of the total number of fungal spores (D10) of these strains was about 400 Gy. The viability of Aspergillus sp. TTG and Trichoderma sp. VTCC at 500 Gy were 0.46 % and 0.78%, respectively, while the number of survival spore decreased by 6.5-7.5 Log unit at the dose of 2500 Gy. By screening in PDA medium with the addition of CMC (carboxymethyl cellulose) and Congo red as an indicator of cellulose degradation, hundreds of colonies with higher hydrolysis capacity’s value (HC) compared to the initial strain were observed after irradiation. The colonies expressed the highest cellulose hydrolysis capacity with maximum HC value were obtained at dose range of 700-1500 Gy. It is important to notice the 5 potential mutants including 3 mutants of Aspergillus (TTG-700, TTG-1000 and TTG-1200) and 2 mutants of Trichoderma (VTCC-1000, VTCC-1500) demonstrated the higher CMCase secretion (1.78 – 2.48 times) compared to the wild types. After 5 generations, the enzyme productions of the mutants were fairly stable and there were no differences in growth rates and morphology of each generation. The result of this study is an evidence for using gamma irradiation to improve cellulase production in filamentous fungi.

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References

Baharvad A, Shahbazi S, Afsharmanesh H, Ebrahimi MA, Askari H (2014) Investigation of gamma irradiation on morphological characteristics and antagonist potential of Trichoderma viride against M.phaseolina. International Journal of Farming and Allied Science: 1157-1164.

Blank G and Corrigan D (1995) Comparision of resistance of fungal spore to gamma and electron beam radiation. Int. J. Food Microbiol 26: 269-277.

Darabzadeh N, Hamidi-Esfahani Z, Hejazi P (2018) Improvement of cellulase production and its characteristics by inducing mutation on Trichoderma reesei 2414 under solid state fermentation on rice by-products. Applied Food Biotechnology 5 (1): 11-18.

Gardner KH and Blackwell J (1974) The structure of native cellulose. Biopolymers 13: 1975-2001.

Gupta P, Samant K, Sahu A (2012) Isolation of cellulose- degrading bacteria and determination of their cellulolytic potential. International Journal of Microbiology 6: 1-5.

Henrissat B (1994) Cellulases and their interaction with cellulose. Cellulose 1: 169–196.

Hoe PCK, Rahim KA, Saud HM (2016) A review on microbial mutagenesis through gamma irradiation for agricultural applications. Jurnal Sains Nuklear Malaysia 28(2): 20-29.

Jarvis M (2003) Cellulose stacks up. Natur, 426(6967): 611–612.

Laura T, Florina LZ, Mioara A, Mihaela E, Mihai C, Alexandru A, Mihalis C, Ovidui I, Rodica IS (2014) Radioresistance of biodegradation fungi and its importance in establishing the decontamination dose. ICAMS 2014-5th International Conference on Advanced Materials and Systems.

Masao T, Noboru K, Isao K (1987) Effects of gamma-ray irradiation on cellulase secretion of Trichoderma reesei. Ferment. Technol 65 (6): 703-705.

Miklaszewska B, Macko D, Kłosowski G, Mikulski D (2016) Application of semi-quantitative and quantitative methods for the selection of cellulolytic filamentous fungi isolated from pulp mill materials. BioTechnologia 97 (3): 169-178.

Mostafa AA (2014) Effect of gamma irradiation on Aspergillus niger DNA and production of cellulase enzymes. J. American. Sci 10(5):152-160.

Ottenheim C, Werner KA, Zimmermann W, Wu JC (2015) Improved endoxylanase production and colony morphology of Aspergillus niger DSM 26641 by γ-ray induced mutagenesis. Biochemical Engineering Journal 94: 9-14.

Saleh YG, Mayo MS, Ahearn DG (1988). Resistance of some common fungito gamma irradiation. Applied and Environmental Microbiology 54(8): 2134-2135.

Shahbazi S, Ispareh K, Karimi M, Askari H, Ebrahimi M A (2014) Gamma and UV radiation induced mutagenesis in Trichoderma reesei to enhance cellulases enzyme activity. International Journal of Farming and Allied Sciences 3(5): 543-554.

Vu VH, Pham TA, Kim (2009) Fungal strain improvement for cellulase production using repeated and sequential mutagenesis. Mycobiology 37(4): 267-271.

Wang FXJ, Chen S, Qiu W, Yu Z, Zhao H, Xing X, Li H (2011) Strain improvement for enhanced production of cellulase in Trichoderma viride. Applied Biochemistry and Microbiology 47 (1): 53-58.

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Published

03-11-2020

How to Cite

Diep, T. B., Thi Thom, N., Dang Sang, H., Xuan An, T., Van Binh, N., & Minh Quynh, T. (2020). Effect of gamma irradiation on the viability and cellulase production of some filamentous fungi. Vietnam Journal of Biotechnology, 18(2), 341–348. https://doi.org/10.15625/1811-4989/18/2/15280

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