Phenotypic evaluation of natural and industrial Saccharomyces yeasts for different traits desirable in industrial bioethanol production

被引:0
|
作者
Vaskar Mukherjee
Jan Steensels
Bart Lievens
Ilse Van de Voorde
Alex Verplaetse
Guido Aerts
Kris A. Willems
Johan M. Thevelein
Kevin J. Verstrepen
Stefan Ruyters
机构
[1] KU Leuven,Laboratory for Process Microbial Ecology and Bioinspirational Management, Cluster for Bioengineering Technology (CBeT), Department of Microbial and Molecular Systems (M2S), Campus De Nayer
[2] KU Leuven,Laboratory for Genetics and Genomics & VIB Laboratory for Systems Biology, Centre of Microbial and Plant Genetics (CMPG), Department of Microbial and Molecular Systems (M2S)
[3] KU Leuven,Laboratory of Enzyme, Fermentation, and Brewing Technology, Cluster for Bioengineering Technology (CBeT), Department of Microbial and Molecular Systems (M2S), Campus KaHo Sint
[4] KU Leuven,Lieven
来源
关键词
Bioethanol; Fermentation; High-throughput; Phenotype; spp.; Stress tolerance;
D O I
暂无
中图分类号
学科分类号
摘要
Saccharomyces cerevisiae is the organism of choice for many food and beverage fermentations because it thrives in high-sugar and high-ethanol conditions. However, the conditions encountered in bioethanol fermentation pose specific challenges, including extremely high sugar and ethanol concentrations, high temperature, and the presence of specific toxic compounds. It is generally considered that exploring the natural biodiversity of Saccharomyces strains may be an interesting route to find superior bioethanol strains and may also improve our understanding of the challenges faced by yeast cells during bioethanol fermentation. In this study, we phenotypically evaluated a large collection of diverse Saccharomyces strains on six selective traits relevant for bioethanol production with increasing stress intensity. Our results demonstrate a remarkably large phenotypic diversity among different Saccharomyces species and among S. cerevisiae strains from different origins. Currently applied bioethanol strains showed a high tolerance to many of these relevant traits, but several other natural and industrial S. cerevisiae strains outcompeted the bioethanol strains for specific traits. These multitolerant strains performed well in fermentation experiments mimicking industrial bioethanol production. Together, our results illustrate the potential of phenotyping the natural biodiversity of yeasts to find superior industrial strains that may be used in bioethanol production or can be used as a basis for further strain improvement through genetic engineering, experimental evolution, or breeding. Additionally, our study provides a basis for new insights into the relationships between tolerance to different stressors.
引用
收藏
页码:9483 / 9498
页数:15
相关论文
共 50 条
  • [31] Bioethanol production from industrial algae waste
    Alfonsin, V.
    Maceiras, R.
    Gutierrez, C.
    WASTE MANAGEMENT, 2019, 87 : 791 - 797
  • [32] Industrial Relevance of Chromosomal Copy Number Variation in Saccharomyces Yeasts
    de Vries, Arthur R. Gorter
    Pronk, Jack T.
    Daran, Jean-Marc G.
    APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2017, 83 (11)
  • [33] Genotypic and phenotypic characterization of industrial autochthonous Saccharomyces cerevisiae for the selection of well- adapted bioethanol-producing strains
    Grellet, Maria Alejandra Canseco
    Dantur, Karina Ines
    Perera, Maria Francisca
    Ahmed, Pablo Miguel
    Castagnaro, Ana
    Arroyo-Lope, Francisco Noe
    Gallego, Joaquin Bautista
    Welin, Bjorn
    Ruiz, Roberto Marcelo
    FUNGAL BIOLOGY, 2022, 126 (10) : 658 - 673
  • [34] Bioethanol production performance of five recombinant strains of laboratory and industrial xylose-fermenting Saccharomyces cerevisiae
    Matsushika, Akinori
    Inoue, Hiroyuki
    Murakami, Katsuji
    Takimura, Osamu
    Sawayama, Shigeki
    BIORESOURCE TECHNOLOGY, 2009, 100 (08) : 2392 - 2398
  • [35] Effect of chemicals in inhibiting the growth of Saccharomyces cerevisiae and Lactobacillus fermentum from industrial fuel bioethanol production
    Oliva-Neto, P.
    De Lima, F.
    Santos, C.
    NEW BIOTECHNOLOGY, 2009, 25 : S195 - S195
  • [36] Evaluation of industrial Saccharomyces cerevisiae strains for ethanol production from biomass
    Kasavi, Ceyda
    Finore, Ilaria
    Lama, Licia
    Nicolaus, Barbara
    Oliver, Stephen G.
    Oner, Ebru Toksoy
    Kirdar, Betul
    BIOMASS & BIOENERGY, 2012, 45 : 230 - 238
  • [37] In situ microscopy: A perspective for industrial bioethanol production monitoring
    Belini, Valdinei Luis
    Wiedemann, Philipp
    Suhr, Hajo
    JOURNAL OF MICROBIOLOGICAL METHODS, 2013, 93 (03) : 224 - 232
  • [38] Novel thermotolerant yeast suitable for industrial bioethanol production
    Ndubuisi, Ifeanyi A.
    Amadi, Chioma O.
    Nwagu, Tochukwu N.
    Murata, Y.
    Ogbonna, James C.
    BIOFUELS-UK, 2024, 15 (05): : 545 - 554
  • [39] Bioconversion of industrial hemp biomass for bioethanol production: A review
    Zhao, Jikai
    Xu, Youjie
    Wang, Weiqun
    Griffin, Jason
    Roozeboom, Kriag
    Wang, Donghai
    FUEL, 2020, 281
  • [40] Industrial technologies for bioethanol production from lignocellulosic biomass
    Chen, Hongzhang
    Fu, Xiaoguo
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2016, 57 : 468 - 478