Effects of various inhibitory substances and immobilization on ethanol production efficiency of a thermotolerant Pichia kudriavzevii

Abstract Background Although bioethanol production has been gaining worldwide attention as an alternative to fossil fuel, ethanol productivities and yields are still limited due to the susceptibility of fermentation microorganisms to various stress and inhibitory substances. There is therefore an un...

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Main Authors: Ifeanyi A. Ndubuisi, Qijian Qin, Guiyan Liao, Bin Wang, Anene N. Moneke, James C. Ogbonna, Cheng Jin, Wenxia Fang
Format: Article
Language:English
Published: BMC 2020-05-01
Series:Biotechnology for Biofuels
Subjects:
Online Access:http://link.springer.com/article/10.1186/s13068-020-01729-5
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spelling doaj-00ffe041d26f4db78fda4cf43ecbd1752020-11-25T02:33:17ZengBMCBiotechnology for Biofuels1754-68342020-05-0113111210.1186/s13068-020-01729-5Effects of various inhibitory substances and immobilization on ethanol production efficiency of a thermotolerant Pichia kudriavzeviiIfeanyi A. Ndubuisi0Qijian Qin1Guiyan Liao2Bin Wang3Anene N. Moneke4James C. Ogbonna5Cheng Jin6Wenxia Fang7National Engineering Research Center for Non-Food Biorefinery, Guangxi Academy of SciencesNational Engineering Research Center for Non-Food Biorefinery, Guangxi Academy of SciencesState Key Laboratory of Non-Food Biomass and Enzyme Technology, Guangxi Academy of SciencesState Key Laboratory of Non-Food Biomass and Enzyme Technology, Guangxi Academy of SciencesDepartment of Microbiology, University of NigeriaDepartment of Microbiology, University of NigeriaNational Engineering Research Center for Non-Food Biorefinery, Guangxi Academy of SciencesNational Engineering Research Center for Non-Food Biorefinery, Guangxi Academy of SciencesAbstract Background Although bioethanol production has been gaining worldwide attention as an alternative to fossil fuel, ethanol productivities and yields are still limited due to the susceptibility of fermentation microorganisms to various stress and inhibitory substances. There is therefore an unmet need to search for multi-stress-tolerant organisms to improve ethanol productivity and reduce production cost, particularly when lignocellulosic hydrolysates are used as the feedstock. Results Here, we have characterized a previously isolated Pichia kudriavzevii LC375240 strain which is thermotolerant to high temperatures of 37 °C and 42 °C. More excitingly, growth and ethanol productivity of this strain exhibit strong tolerance to multiple stresses such as acetic acid, furfural, formic acid, H2O2 and high concentration of ethanol at 42 °C. In addition, simple immobilization of LC375240 on corncobs resulted to a more stable and higher efficient ethanol production for successive four cycles of repeated batch fermentation at 42 °C. Conclusion The feature of being thermotolerant and multi-stress-tolerant is unique to P. kudriavzevii LC375240 and makes it a good candidate for second-generation bioethanol fermentation as well as for investigating the molecular basis underlying the robust stress tolerance. Immobilization of P. kudriavzevii LC375240 on corncobs is another option for cheap and high ethanol productivity.http://link.springer.com/article/10.1186/s13068-020-01729-5Bioethanol productionPichia kudriavzeviiThermotolerantImmobilizationMulti-stress toleranceBatch fermentation
collection DOAJ
language English
format Article
sources DOAJ
author Ifeanyi A. Ndubuisi
Qijian Qin
Guiyan Liao
Bin Wang
Anene N. Moneke
James C. Ogbonna
Cheng Jin
Wenxia Fang
spellingShingle Ifeanyi A. Ndubuisi
Qijian Qin
Guiyan Liao
Bin Wang
Anene N. Moneke
James C. Ogbonna
Cheng Jin
Wenxia Fang
Effects of various inhibitory substances and immobilization on ethanol production efficiency of a thermotolerant Pichia kudriavzevii
Biotechnology for Biofuels
Bioethanol production
Pichia kudriavzevii
Thermotolerant
Immobilization
Multi-stress tolerance
Batch fermentation
author_facet Ifeanyi A. Ndubuisi
Qijian Qin
Guiyan Liao
Bin Wang
Anene N. Moneke
James C. Ogbonna
Cheng Jin
Wenxia Fang
author_sort Ifeanyi A. Ndubuisi
title Effects of various inhibitory substances and immobilization on ethanol production efficiency of a thermotolerant Pichia kudriavzevii
title_short Effects of various inhibitory substances and immobilization on ethanol production efficiency of a thermotolerant Pichia kudriavzevii
title_full Effects of various inhibitory substances and immobilization on ethanol production efficiency of a thermotolerant Pichia kudriavzevii
title_fullStr Effects of various inhibitory substances and immobilization on ethanol production efficiency of a thermotolerant Pichia kudriavzevii
title_full_unstemmed Effects of various inhibitory substances and immobilization on ethanol production efficiency of a thermotolerant Pichia kudriavzevii
title_sort effects of various inhibitory substances and immobilization on ethanol production efficiency of a thermotolerant pichia kudriavzevii
publisher BMC
series Biotechnology for Biofuels
issn 1754-6834
publishDate 2020-05-01
description Abstract Background Although bioethanol production has been gaining worldwide attention as an alternative to fossil fuel, ethanol productivities and yields are still limited due to the susceptibility of fermentation microorganisms to various stress and inhibitory substances. There is therefore an unmet need to search for multi-stress-tolerant organisms to improve ethanol productivity and reduce production cost, particularly when lignocellulosic hydrolysates are used as the feedstock. Results Here, we have characterized a previously isolated Pichia kudriavzevii LC375240 strain which is thermotolerant to high temperatures of 37 °C and 42 °C. More excitingly, growth and ethanol productivity of this strain exhibit strong tolerance to multiple stresses such as acetic acid, furfural, formic acid, H2O2 and high concentration of ethanol at 42 °C. In addition, simple immobilization of LC375240 on corncobs resulted to a more stable and higher efficient ethanol production for successive four cycles of repeated batch fermentation at 42 °C. Conclusion The feature of being thermotolerant and multi-stress-tolerant is unique to P. kudriavzevii LC375240 and makes it a good candidate for second-generation bioethanol fermentation as well as for investigating the molecular basis underlying the robust stress tolerance. Immobilization of P. kudriavzevii LC375240 on corncobs is another option for cheap and high ethanol productivity.
topic Bioethanol production
Pichia kudriavzevii
Thermotolerant
Immobilization
Multi-stress tolerance
Batch fermentation
url http://link.springer.com/article/10.1186/s13068-020-01729-5
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