Literature DB >> 25776894

Improving high carbon dioxide tolerance and carbon dioxide fixation capability of Chlorella sp. by adaptive laboratory evolution.

Dengjin Li1, Liang Wang2, Quanyu Zhao3, Wei Wei4, Yuhan Sun4.   

Abstract

CO2 capture by microalgae is a promising method to reduce greenhouse gas emissions. It is critical to construct a highly efficient way to obtain a microalgal strain tolerant to high CO2 concentrations with high CO2 fixation capability. In this study, two evolved Chlorella sp. strains, AE10 and AE20 were obtained after 31 cycles of adaptive laboratory evolution (ALE) under 10% and 20% CO2, respectively. Both of them grew rapidly in 30% CO2 and the maximal biomass concentration of AE10 was 3.68±0.08g/L, which was 1.22 and 2.94 times to those of AE20 and original strain, respectively. The chlorophyll contents of AE10 and AE20 were significantly higher than those of the original one under 1-30% CO2. The influences of ALE process on biochemical compositions of Chlorella cells were also investigated. This study proved that ALE was an effective approach to improve high CO2 tolerance of Chlorella sp.
Copyright © 2015 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Adaptive laboratory evolution; CO(2) fixation; Chlorella sp.; High CO(2) concentration tolerance

Mesh:

Substances:

Year:  2015        PMID: 25776894     DOI: 10.1016/j.biortech.2015.03.011

Source DB:  PubMed          Journal:  Bioresour Technol        ISSN: 0960-8524            Impact factor:   9.642


  9 in total

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Journal:  Environ Sci Pollut Res Int       Date:  2018-10-23       Impact factor: 4.223

2.  Growth Performance and Antioxidative Response of Chlorella pyrenoidesa, Dunaliella salina, and Anabaena cylindrica to Four Kinds of Ionic Liquids.

Authors:  Yali Zhu; Xueqing Zhong; Yujiao Wang; Quanyu Zhao; He Huang
Journal:  Appl Biochem Biotechnol       Date:  2021-02-02       Impact factor: 2.926

3.  Enhancing PUFA-rich polar lipids in Tisochrysis lutea using adaptive laboratory evolution (ALE) with oscillating thermal stress.

Authors:  Manon Gachelin; Marc Boutoute; Gregory Carrier; Amélie Talec; Eric Pruvost; Freddy Guihéneuf; Olivier Bernard; Antoine Sciandra
Journal:  Appl Microbiol Biotechnol       Date:  2020-11-17       Impact factor: 4.813

Review 4.  Algal Cell Factories: Approaches, Applications, and Potentials.

Authors:  Weiqi Fu; Amphun Chaiboonchoe; Basel Khraiwesh; David R Nelson; Dina Al-Khairy; Alexandra Mystikou; Amnah Alzahmi; Kourosh Salehi-Ashtiani
Journal:  Mar Drugs       Date:  2016-12-13       Impact factor: 5.118

Review 5.  Microalgal hydrogen production: prospects of an essential technology for a clean and sustainable energy economy.

Authors:  Vinzenz Bayro-Kaiser; Nathan Nelson
Journal:  Photosynth Res       Date:  2017-02-26       Impact factor: 3.573

6.  Improving carbohydrate and starch accumulation in Chlorella sp. AE10 by a novel two-stage process with cell dilution.

Authors:  Dujia Cheng; Dengjin Li; Yizhong Yuan; Lin Zhou; Xuyang Li; Tong Wu; Liang Wang; Quanyu Zhao; Wei Wei; Yuhan Sun
Journal:  Biotechnol Biofuels       Date:  2017-03-24       Impact factor: 6.040

7.  Effects of Different pH Control Strategies on Microalgae Cultivation and Nutrient Removal from Anaerobic Digestion Effluent.

Authors:  Hyeonjung Yu; Jaai Kim; Chaeyoung Rhee; Juhee Shin; Seung Gu Shin; Changsoo Lee
Journal:  Microorganisms       Date:  2022-02-03

Review 8.  Microalgae for the production of lipid and carotenoids: a review with focus on stress regulation and adaptation.

Authors:  Xiao-Man Sun; Lu-Jing Ren; Quan-Yu Zhao; Xiao-Jun Ji; He Huang
Journal:  Biotechnol Biofuels       Date:  2018-10-04       Impact factor: 6.040

Review 9.  Application of Microalgal Stress Responses in Industrial Microalgal Production Systems.

Authors:  Jia Wang; Yuxin Wang; Yijian Wu; Yuwei Fan; Changliang Zhu; Xiaodan Fu; Yawen Chu; Feng Chen; Han Sun; Haijin Mou
Journal:  Mar Drugs       Date:  2021-12-26       Impact factor: 5.118

  9 in total

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