Compost as an untapped niche for thermotolerant yeasts capable of high-temperature ethanol production.

India bioethanol compost inhibitor tolerance thermotolerant yeasts

Journal

Letters in applied microbiology
ISSN: 1472-765X
Titre abrégé: Lett Appl Microbiol
Pays: England
ID NLM: 8510094

Informations de publication

Date de publication:
Jan 2022
Historique:
revised: 28 09 2021
received: 16 04 2021
accepted: 11 10 2021
pubmed: 30 10 2021
medline: 30 12 2021
entrez: 29 10 2021
Statut: ppublish

Résumé

Efficient bioethanol production from lignocellulosic biomass requires thermotolerant yeasts capable of utilizing multiple sugars, tolerating inhibitors and fermenting at high temperatures. In this study, 98 thermotolerant yeasts were isolated from nine compost samples. We selected 37 yeasts that belonged to 11 species; 31 grew at 45°C; 6 strains grew at 47°C, while 9 yeasts could utilize multiple sugars. Many yeast isolates showed high ethanol production in the range of 12-24 g l

Identifiants

pubmed: 34714552
doi: 10.1111/lam.13593
doi:

Substances chimiques

Ethanol 3K9958V90M

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

109-121

Informations de copyright

© 2021 The Society for Applied Microbiology.

Références

Aamir, S., Sutar, S., Singh, S.K. and Baghela, A. (2015) A rapid and efficient method of fungal genomic DNA extraction, suitable for PCR based molecular methods. Plant Pathol Quar 5, 74-81.
Abdel-Banat, B.M., Hoshida, H., Ano, A., Nonklang, S. and Akada, R. (2010) High-temperature fermentation: how can processes for ethanol production at high temperatures become superior to the traditional process using mesophilic yeast? Appl Microbiol Biotechnol 85, 861-867.
Abdel-Fattah, W.R., Fadil, M., Nigam, P. and Banat, I.M. (2000) Isolation of thermotolerant ethanologenic yeasts and use of selected strains in industrial scale fermentation in an Egyptian distillery. Biotechnol Bioeng 68, 531-535.
Amin, F.R., Khalid, H., Zhang, H., Rahman, S., Zhang, R., Liu, G. and Chen, C. (2017) Pretreatment methods of lignocellulosic biomass for anaerobic digestion. AMB Express 7, 1-12.
Arora, R., Behera, S., Sharma, N.K. and Kumar, S. (2015) A new search for thermotolerant yeasts, its characterization and optimization using response surface methodology for ethanol production. Front Microbiol 6, https://doi.org/10.3389/fmicb.2015.00889
Arthur, H. and Watson, K. (1976) Thermal adaptation in yeast: growth temperatures, membrane lipid, and cytochrome composition of psychrophilic, mesophilic, and thermophilic yeasts. J Bacteriol 128, 56-68.
Auesukaree, C., Koedrith, P., Saenpayavai, P., Asvarak, T., Benjaphokee, S., Sugiyama, M., Kaneko, Y., Harashima, S. et al. (2012) Characterization and gene expression profiles of thermotolerant Saccharomyces cerevisiae isolates from Thai fruits. J Biosci Bioeng 114, 144-149.
Avchar, R., Lanjekar, V. and Baghela, A. (2021) Bioprospecting thermotolerant yeasts from distillery effluent and molasses for high-temperature ethanol production. J Appl Microbiol https://doi.org/10.1111/jam.15288
Banat, I.M., Nigam, P. and Marchant, R. (1992) Isolation of thermotolerant, fermentative yeasts growing at 52°C and producing ethanol at 45°C and 50°C. World J Microbiol Biotechnol 8, 259-263.
Buddiwong, S., Thanonkeo, S., Phetsom, J., Jaisil, P. and Thanonkeo, P. (2014) Screening of thermotolerant yeast isolated from sugarcane plantations in Northeastern part of Thailand. KKU Res J 19, 217-223.
Cabañas, K.T., Peña-Moreno, I.C., Parente, D.C., García, A.B., Gutiérrez, R.G. and de Morais Jr, M.A. (2019) Selection of Saccharomyces cerevisiae isolates for ethanol production in the presence of inhibitors. 3 Biotech 9, 6.
Castro, R.C.A. and Roberto, I.C. (2014) Selection of a thermotolerant Kluyveromyces marxianus strain with potential application for cellulosic ethanol production by simultaneous saccharification and fermentation. Appl Biochem Biotechnol 172, 1553-1564.
Cho, K.M., Kwon, E.J., Kim, S.K., Kambiranda, D.M., Math, R.K., Lee, Y.H., Kim, J., Yun, H.D., et al. (2009) Fungal diversity in composting process of pig manure and mushroom cultural waste based on partial sequence of large subunit rRNA. J Microbiol Biotechnol 19(8), 743-748.
Choi, M.H. and Park, Y.H. (1998) The influence of yeast on thermophilic composting of food waste. Lett Appl Microbiol 6, 175-178.
Choudhary, J., Singh, S. and Nain, L. (2017) Bioprospecting thermotolerant ethanologenic yeasts for simultaneous saccharification and fermentation from diverse environments. J Biosci Bioeng 21, 82-92.
Chowdhary, A., Stielow, J.B., Upadhyaya, G., Singh, P.K., Singh, A. and Meis, J.F. (2020) Candida blankii: an emerging yeast in an outbreak of fungaemia in neonates in Delhi, India. Clin Microbiol Infect 26, 648.e5.
Costa, D.A., De Souza, C.J.A., Costa, P.S., Rodrigues, M.Q., dos Santos, A.F., Lopes, M.R., Genier, H.L., Silveira, W.B. et al. (2014) Physiological characterization of thermotolerant yeast for cellulosic ethanol production. Appl Microbiol Biotechnol 98, 3829-3840.
Dandi, N.D., Dandi, B.N. and Chaudhari, A.B. (2013) Bioprospecting of thermo- and osmo-tolerant fungi from mango pulp-peel compost for bioethanol production. Antonie Van Leeuwenhoek 103, 723-736.
Dehghani, R., Asadi, M.A., Charkhloo, E., Gholamreza, M., Mohmoud, S., Gholam Abbas, M. and Mohammad, P. (2012) Identification of fungal communities in producing compost by windrow method. J Environ Protect 3, 61-67.
Goshima, T., Tsuji, M., Inoue, H., Yano, S., Hoshino, T. and Matsushika, A. (2013) Bioethanol production from lignocellulosic biomass by a novel Kluyveromyces marxianus strain. Biosci Biotechnol Biochem 77, 1505-1510.
Hasunuma, T. and Kondo, A. (2012) Development of yeast cell factories for consolidated bioprocessing of lignocellulose to bioethanol through cell surface engineering. Biotechnol Adv 30, 1207-1218.
Kim, H.S., Kim, N.R. and Choi, W. (2011) Total fatty acid content of the plasma membrane of Saccharomyces cerevisiae is more responsible for ethanol tolerance than the degree of unsaturation. Biotechnol Lett 33, 509-515.
Koutinas, M., Patsalou, M., Stavrinou, S. and Vyrides, I. (2016) High-temperature alcoholic fermentation of orange peel by the newly isolated thermotolerant Pichia kudriavzevii KVMP10. Lett Appl Microbiol 62, 75-83.
Kumar, S., Singh, S.P., Mishra, I.M. and Adhikari, D.K. (2009) Ethanol and xylitol production from glucose and xylose at high temperature by Kluyveromyces sp. IIPE453. J Ind Microbiol Biotechnol 36, 1483.
Kurtzman, C.P., Fell, J.W., Boekhout, T. and Robert, V. (2011) Chapter 7 Methods for isolation, phenotypic characterization and maintenance of yeasts. In The Yeasts: A Taxonomic Study, 5th edn, ed. Kurtzman, C.P., Fell, J.W. and Boekhout, T. pp. 87-110. Amsterdam, Netherlands: Elsevier.
Kurtzman, C.P. and Robnett, C.J. (1998) Identification and phylogeny of ascomycetous yeasts from analysis of nuclear large subunit (26S) ribosomal DNA partial sequences. Antonie Van Leeuwenhoek 73, 331-371.
Kwon, Y.J., Ma, A.Z., Li, Q., Wang, F., Zhuang, G.Q. and Liu, C.Z. (2011) Effect of lignocellulosic inhibitory compounds on growth and ethanol fermentation of newly- isolated thermotolerant Issatchenkia orientalis. Bioresour Technol 102, 8099-8104.
Limtong, S., Stringiew, C. and Yongmanitchai, W. (2007) Production of fuel ethanol at high temperature from sugarcane juice by a newly isolated Kluyveromyces marxianus. Bioresour Technol 98, 3367-3374.
Metsalu, T. and Vilo, J. (2015) ClustVis: a web tool for visualizing clustering of multivariate data using principal component analysis and heatmap. Nucleic Acids Res 43, W566-W570.
Nandal, P., Sharma, S. and Arora, A. (2020) Bioprospecting non-conventional yeasts for ethanol production from rice straw hydrolysate and their inhibitor tolerance. Renewable Energy 47, 1694-1703.
Narra, M., James, J.P. and Balasubramanian, V. (2015) Simultaneous saccharification and fermentation of delignified lignocellulosic biomass at high solid loadings by a newly isolated thermotolerant Kluyveromyces sp. for ethanol production. Bioresour Technol 179, 331-338.
Nguyen, L.T., Schmidt, H.A., Von Haeseler, A. and Minh, B.Q. (2015) IQ-TREE: A fast and effective stochastic algorithm for estimating maximum-likelihood phylogenies. Mol Biol Evol 32, 268-274.
Nuanpeng, S., Thanonkeo, S., Yamada, M. and Thanonkeo, P. (2016) Ethanol production from sweet sorghum juice at high temperatures using a newly isolated thermotolerant yeast Saccharomyces cerevisiae DBKKU Y-53. Energies N9, 253.
Pandey, A.K., Kumar, M., Kumari, S., Kumari, P., Yusuf, F., Jakeer, S., Naz, S., Chandna, P. et al. (2019) Evaluation of divergent yeast genera for fermentation-associated stresses and identification of a robust sugarcane distillery waste isolate Saccharomyces cerevisiae NGY10 for lignocellulosic ethanol production in SHF and SSF. Biotechnol Biofuels 12, 40.
Phong, H.X., Klanrit, P., Dung, N.T.P., Yamada, M. and Thanonkeo, P. (2019) Isolation and characterization of thermotolerant yeasts for the production of second-generation bioethanol. Ann Microbiol 69, 765-776.
Ramírez-Castrillón, M., Mendes, S.D.C., Inostroza-Ponta, M. and Valente, P. (2014) (GTG)5 MSP-PCR fingerprinting as a technique for discrimination of wine associated yeasts? PLoS One 9, e105870.
Sathesh-Prabu, C. and Murugesan, A.G. (2011) Potential utilization of sorghum field waste for fuel ethanol production employing Pachysolen tannophilus and Saccharomyces cerevisiae. Bioresour Technol 102, 2788-2792.
Sharma, S., Nandal, P. and Arora, A. (2019) Ethanol production from NaOH pretreated rice straw: a cost effective option to manage rice crop residue. Waste Biomass Valorization 10, 3427-3434.
Sridhar, M., Kiran Sree, N. and Venkateswar, R.L. (2002) Effect of UV radiation on thermotolerance, ethanol tolerance and osmotolerance of Saccharomyces cerevisiae VS1 and VS3 strains. Bioresour Technol 83, 199-202.
Tchobanoglous, G. and Kreith, F. (2002) Handbook of Solid Waste Management, 2nd edn. New York, NY: McGraw-Hill Education.
Tiwari, S., Avchar, R., Arora, R., Lanjekar, V., Dhakephalkar, P.K., Dagar, S.S. and Baghela, A. (2020) Xylanolytic and ethanologenic potential of gut associated yeasts from different species of termites from India. Mycobiology 48, 501-511.
Tolieng, V., Kunthiphun, S. and Savarajara, A. (2018) Diversity of yeasts and their ethanol production at high temperature. J Appl Pharm Sci 8, 136-142.
Yan, J., Wei, Z., Wang, Q., He, M., Li, S. and Irbis, C. (2015) Bioethanol production from sodium hydroxide/hydrogen peroxide-pretreated water hyacinth via simultaneous saccharification and fermentation with a newly isolated thermotolerant Kluyveromyces marxianus strain. Bioresour Technol 193, 103-109.

Auteurs

R Avchar (R)

Biodiversity and Palaeobiology Group, National Fungal Culture Collection of India (NFCCI), MACS-Agharkar Research Institute, Pune, India.
Savitribai Phule Pune University, Ganeshkhind, Pune, India.

V Lanjekar (V)

Bioenergy Group, MACS-Agharkar Research Institute, Pune, India.

P K Dhakephalkar (PK)

Bioenergy Group, MACS-Agharkar Research Institute, Pune, India.

S S Dagar (SS)

Bioenergy Group, MACS-Agharkar Research Institute, Pune, India.

A Baghela (A)

Biodiversity and Palaeobiology Group, National Fungal Culture Collection of India (NFCCI), MACS-Agharkar Research Institute, Pune, India.
Savitribai Phule Pune University, Ganeshkhind, Pune, India.

Articles similaires

Genome, Viral Ralstonia Composting Solanum lycopersicum Bacteriophages
Calcium Carbonate Sand Powders Construction Materials Materials Testing
Animals Rumen Methane Fermentation Cannabis

Classifications MeSH