Literature DB >> 26566045

Genomic analyses of thermotolerant microorganisms used for high-temperature fermentations.

Kazunobu Matsushita1,2, Yoshinao Azuma3, Tomoyuki Kosaka1,2, Toshiharu Yakushi1,2, Hisashi Hoshida4,2, Rinji Akada4,2, Mamoru Yamada1,2.   

Abstract

Environmental adaptation is considered as one of the most challenging subjects in biology to understand evolutionary or ecological diversification processes and in biotechnology to obtain useful microbial strains. Temperature is one of the important environmental stresses; however, microbial adaptation to higher temperatures has not been studied extensively. For industrial purposes, the use of thermally adapted strains is important, not only to reduce the cooling expenses of the fermentation system, but also to protect fermentation production from accidental failure of thermal management. Recent progress in next-generation sequencing provides a powerful tool to track the genomic changes of the adapted strains and allows us to compare genomic DNA sequences of conventional strains with those of their closely related thermotolerant strains. In this article, we have attempted to summarize our recent approaches to produce thermotolerant strains by thermal adaptation and comparative genomic analyses of Acetobacter pasteurianus for high-temperature acetic acid fermentations, and Zymomonas mobilis and Kluyveromyces marxianus for high-temperature ethanol fermentations. Genomic analysis of the adapted strains has found a large number of mutations and/or disruptions in highly diversified genes, which could be categorized into groups related to cell surface functions, ion or amino acid transporters, and some transcriptional factors. Furthermore, several phenotypic and genetic analyses revealed that the thermal adaptation could lead to decreased ROS generation in cells that produce higher ROS levels at higher temperatures. Thus, it is suggested that the thermally adapted cells could become robust and resistant to many stressors, and thus could be useful for high-temperature fermentations.

Entities:  

Keywords:  acetic acid fermentation; adaptive evolution; comparative genome analysis; ethanol fermentation; thermotolerance

Mesh:

Substances:

Year:  2015        PMID: 26566045     DOI: 10.1080/09168451.2015.1104235

Source DB:  PubMed          Journal:  Biosci Biotechnol Biochem        ISSN: 0916-8451            Impact factor:   2.043


  15 in total

1.  Compost Samples from Different Temperature Zones as a Model to Study Co-occurrence of Thermophilic and Psychrophilic Bacterial Population: a Metagenomics Approach.

Authors:  Jithin S Sunny; Anuradha Natarajan; Khairun Nisha; Lilly M Saleena
Journal:  Curr Microbiol       Date:  2021-03-31       Impact factor: 2.188

2.  Genetic improvement of xylose metabolism by enhancing the expression of pentose phosphate pathway genes in Saccharomyces cerevisiae IR-2 for high-temperature ethanol production.

Authors:  Yosuke Kobayashi; Takehiko Sahara; Toshihiro Suzuki; Saori Kamachi; Akinori Matsushika; Tamotsu Hoshino; Satoru Ohgiya; Yoichi Kamagata; Kazuhiro E Fujimori
Journal:  J Ind Microbiol Biotechnol       Date:  2017-02-08       Impact factor: 3.346

3.  Simple sequence repeat insertion induced stability and potential 'gain of function' in the proteins of extremophilic bacteria.

Authors:  Sahil Mahfooz; Gauri Shankar; Jitendra Narayan; Pallavi Singh; Yusuf Akhter
Journal:  Extremophiles       Date:  2022-05-05       Impact factor: 2.395

4.  Improved high-temperature ethanol production from sweet sorghum juice using Zymomonas mobilis overexpressing groESL genes.

Authors:  Anchittha Kaewchana; Atiya Techaparin; Nongluck Boonchot; Pornthap Thanonkeo; Preekamol Klanrit
Journal:  Appl Microbiol Biotechnol       Date:  2021-11-17       Impact factor: 4.813

5.  A Single-Nucleotide Insertion in a Drug Transporter Gene Induces a Thermotolerance Phenotype in Gluconobacter frateurii by Increasing the NADPH/NADP+ Ratio via Metabolic Change.

Authors:  Nami Matsumoto; Hiromi Hattori; Minenosuke Matsutani; Chihiro Matayoshi; Hirohide Toyama; Naoya Kataoka; Toshiharu Yakushi; Kazunobu Matsushita
Journal:  Appl Environ Microbiol       Date:  2018-05-01       Impact factor: 4.792

6.  Reconstruction and analysis of a Kluyveromyces marxianus genome-scale metabolic model.

Authors:  Simonas Marcišauskas; Boyang Ji; Jens Nielsen
Journal:  BMC Bioinformatics       Date:  2019-11-06       Impact factor: 3.169

7.  Genetic contribution to high temperature tolerance in Cryptococcus neoformans.

Authors:  Piotr R Stempinski; Jessica M Zielinski; Nadir H Dbouk; Elizabeth S Huey; Ellen C McCormack; Alexander M Rubin; Srikripa Chandrasekaran; Lukasz Kozubowski
Journal:  Genetics       Date:  2021-03-03       Impact factor: 4.562

8.  Augmented peroxisomal ROS buffering capacity renders oxidative and thermal stress cross-tolerance in yeast.

Authors:  Nai-Xin Lin; Rui-Zhen He; Yan Xu; Xiao-Wei Yu
Journal:  Microb Cell Fact       Date:  2021-07-12       Impact factor: 5.328

9.  Enhancement of Thermal Resistance by Metal Ions in Thermotolerant Zymomonas mobilis TISTR 548.

Authors:  Tomoyuki Kosaka; Aya Nishioka; Tomoko Sakurada; Kento Miura; Sakunda Anggarini; Mamoru Yamada
Journal:  Front Microbiol       Date:  2020-03-31       Impact factor: 5.640

10.  Identification and Characterization of Non-Saccharomyces Species Isolated from Port Wine Spontaneous Fermentations.

Authors:  Denisa Mateus; Susana Sousa; Cláudia Coimbra; Frank S Rogerson; João Simões
Journal:  Foods       Date:  2020-01-23
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