Role of lignocellulolytic thermophilic fungus Thermoascus aurantiacus MTCC 375 in paddy straw digestibility and its implication in biogas production

Academic Journals - Tập 8 Số 17 - Trang 1798-1802
Gupta Phutela Urmila1, Rouf Ahmad Dar2
1School of Energy Studies for Agriculture, College of Agricultural Engineering and Technology, Punjab Agricultural University, Ludhiana-141004, Punjab, India.
2Department of Microbiology, College of Basic Sciences and Humanities, Punjab Agricultural University, Ludhiana-141004, Punjab, India.

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Tài liệu tham khảo

Anonymous (2012). Ministry of Agriculture, Government of India. View

AOAC (2000). Association of Official Analytical Chemists, Official Methods of Analysis, 17th Edition, Maryland, USA. Google Scholar

Dar RA, Phutela UG (2013). Production of lignolytic enzymes from Thermoascus aurantiacus MTCC 375 for enhancing biogas production from paddy straw. M.Sc. Thesis. Punjab Agricultural University, Ludhiana. Google Scholar

Davies DR, Theodorou MK, Lawrence MIG, Trinci APJ (1993). Distribution of anaerobic fungi in the digestive tract of cattle and their survival in faeces. J. Gen. Microbiol. 139:1395-1400.

Hendricks ATWM, Zeeman G (2009). Pretreatments to enhance the digestibility of lignocellulosic biomass. Bioresour. Technol. 100:10-18.

Huang HL, Zeng GM, Tang L, Yu HY, Xi XM, Chen ZM, Huang GH (2007). Effect of biodelignification of rice straw on humification and humus quality by Phanerochaete chrysosporium and Streptomyces badius. Int. Biodeterior. Biodegrad. 61:331-36.

Jalc D, Nerud F, Siroka P (1998). The effectiveness of biological treatment of wheat straw by white rot fungus. Folia Microbiol. 43:687-89.

Jenkins BM, Bhatnagar AP (2003). Electric potential from paddy straw in Punjab and optimal size of power generation station. Bioresour. Technol. 37:35-41.

Keller FA, Hamilton JE, Nguyen QA (2003). Microbial pretreatment of biomass potential for reducing severity of thermo-chemical biomass pretreatment. Appl. Biochem. Biotechnol. 105:27-41.

Paszczynski A, Huynhv B, Crawford R (1988). Enzymatic activities of an extracellular, manganese-dependent peroxidase from Phanerochaete chrysosporium. FEMS Microbiol. Lett. 29:37-41

Regalado V, Rodriguez F, Carnicero A, Fuente G, Falcon MA (1997). Lignin degradation and modification by soil inhabiting fungus Fusarium proliferatum. Appl. Environ. Microbiol. 63:3716-3718.

Sahni N (2010). Pretreatment of paddy straw by lignocelluloytic fungi for enhancing biogas production. M.Sc. Thesis. Punjab Agricultural University, Ludhiana. Google Scholar

Saratale GD, Chen SD, Lo YC, Saratale RG, Chang JS (2008). Outlook of biohydrogen production from lignocellulosic feedstock using dark fermentation-a review. J. Sci. Ind. Res. 67:962-979. View

Shi J, Shivappa RRS, Chinn M, Howell N (2009). Effect of microbial pretreatment on enzymatic hydrolysis and fermentation of cotton stalks for ethanol production. Biomass Bioenergy 33:88-96.

Shandilya JR, Munjal RL (1983). Some experiments with casing layer. Tai-wan-Yang-ku: Taiw Mush 7(1):32-38. Google Scholar

Sinegani AAS, Emtiazi G, Hajrasuliha S, Shariatmadari H (2005). Biodegradation of some agricultural residues by fungi in agitated submerged cultures. Afr. J. Biotechnol. 10:1058-1061. Academic Journals

Tien M, Kirk TK (1988) Lignin peroxidase of Phanerochaete chrysosporium. Methods Enzymol. 161:238-49.

Wiidyastuti Y, Terada F, Kajikawa H, Abe A (1987). Digestion of rice straw cell wall constituents in various rumen conditions. Jpn. Agric. Res. Quart. 21:59-64. Google Scholar

Zafar SI, Kausar TK, Shah FH (1980). Biodegradation of cellulose component of rice straw by Pleurotus sajor caju. Folia Microbiol. 26:394-97.