Transcriptome and key genes expression related to carbon fixation pathways in Chlorella PY-ZU1 cells and their growth under high concentrations of CO2

Abstract Background The biomass yield of Chlorella PY-ZU1 drastically increased when cultivated under high CO2 condition compared with that cultivated under air condition. However, less attention has been given to the microalgae photosynthetic mechanisms response to different CO2 concentrations. The...

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Main Authors: Yun Huang, Jun Cheng, Hongxiang Lu, Yong He, Junhu Zhou, Kefa Cen
Format: Article
Language:English
Published: BMC 2017-07-01
Series:Biotechnology for Biofuels
Subjects:
Online Access:http://link.springer.com/article/10.1186/s13068-017-0868-z
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spelling doaj-25862657224b404cbd1cefbccbe206782020-11-25T00:53:41ZengBMCBiotechnology for Biofuels1754-68342017-07-0110111010.1186/s13068-017-0868-zTranscriptome and key genes expression related to carbon fixation pathways in Chlorella PY-ZU1 cells and their growth under high concentrations of CO2Yun Huang0Jun Cheng1Hongxiang Lu2Yong He3Junhu Zhou4Kefa Cen5State Key Laboratory of Clean Energy Utilization, Zhejiang UniversityState Key Laboratory of Clean Energy Utilization, Zhejiang UniversityState Key Laboratory of Clean Energy Utilization, Zhejiang UniversityState Key Laboratory of Clean Energy Utilization, Zhejiang UniversityState Key Laboratory of Clean Energy Utilization, Zhejiang UniversityState Key Laboratory of Clean Energy Utilization, Zhejiang UniversityAbstract Background The biomass yield of Chlorella PY-ZU1 drastically increased when cultivated under high CO2 condition compared with that cultivated under air condition. However, less attention has been given to the microalgae photosynthetic mechanisms response to different CO2 concentrations. The genetic reasons for the higher growth rate, CO2 fixation rate, and photosynthetic efficiency of microalgal cells under higher CO2 concentration have not been clearly defined yet. Results In this study, the Illumina sequencing and de novo transcriptome assembly of Chlorella PY-ZU1 cells cultivated under 15% CO2 were performed and compared with those of cells grown under air. It was found that carbonic anhydrase (CAs, enzyme for interconversion of bicarbonate to CO2) dramatically decreased to near 0 in 15% CO2-grown cells, which indicated that CO2 molecules directly permeated into cells under high CO2 stress without CO2-concentrating mechanism. Extrapolating from the growth conditions and quantitative Real-Time PCR of CCM-related genes, the K m (CO2) (the minimum intracellular CO2 concentration that rubisco required) of Chlorella PY-ZU1 might be in the range of 80–192 μM. More adenosine triphosphates was saved for carbon fixation-related pathways. The transcript abundance of rubisco (the most important enzyme of CO2 fixation reaction) was 16.3 times higher in 15% CO2-grown cells than that under air. Besides, the transcript abundances of most key genes involved in carbon fixation pathways were also enhanced in 15% CO2-grown cells. Conclusions Carbon fixation and nitrogen metabolism are the two most important metabolisms in the photosynthetic cells. These genes related to the two most metabolisms with significantly differential expressions were beneficial for microalgal growth (2.85 g L−1) under 15% CO2 concentration. Considering the micro and macro growth phenomena of Chlorella PY-ZU1 under different concentrations of CO2 (0.04–60%), CO2 transport pathways responses to different CO2 (0.04–60%) concentrations was reconstructed.http://link.springer.com/article/10.1186/s13068-017-0868-zCO2 fixation pathwayGenes transcript sequences15% CO2 concentrationCarbonic anhydraseRubisco
collection DOAJ
language English
format Article
sources DOAJ
author Yun Huang
Jun Cheng
Hongxiang Lu
Yong He
Junhu Zhou
Kefa Cen
spellingShingle Yun Huang
Jun Cheng
Hongxiang Lu
Yong He
Junhu Zhou
Kefa Cen
Transcriptome and key genes expression related to carbon fixation pathways in Chlorella PY-ZU1 cells and their growth under high concentrations of CO2
Biotechnology for Biofuels
CO2 fixation pathway
Genes transcript sequences
15% CO2 concentration
Carbonic anhydrase
Rubisco
author_facet Yun Huang
Jun Cheng
Hongxiang Lu
Yong He
Junhu Zhou
Kefa Cen
author_sort Yun Huang
title Transcriptome and key genes expression related to carbon fixation pathways in Chlorella PY-ZU1 cells and their growth under high concentrations of CO2
title_short Transcriptome and key genes expression related to carbon fixation pathways in Chlorella PY-ZU1 cells and their growth under high concentrations of CO2
title_full Transcriptome and key genes expression related to carbon fixation pathways in Chlorella PY-ZU1 cells and their growth under high concentrations of CO2
title_fullStr Transcriptome and key genes expression related to carbon fixation pathways in Chlorella PY-ZU1 cells and their growth under high concentrations of CO2
title_full_unstemmed Transcriptome and key genes expression related to carbon fixation pathways in Chlorella PY-ZU1 cells and their growth under high concentrations of CO2
title_sort transcriptome and key genes expression related to carbon fixation pathways in chlorella py-zu1 cells and their growth under high concentrations of co2
publisher BMC
series Biotechnology for Biofuels
issn 1754-6834
publishDate 2017-07-01
description Abstract Background The biomass yield of Chlorella PY-ZU1 drastically increased when cultivated under high CO2 condition compared with that cultivated under air condition. However, less attention has been given to the microalgae photosynthetic mechanisms response to different CO2 concentrations. The genetic reasons for the higher growth rate, CO2 fixation rate, and photosynthetic efficiency of microalgal cells under higher CO2 concentration have not been clearly defined yet. Results In this study, the Illumina sequencing and de novo transcriptome assembly of Chlorella PY-ZU1 cells cultivated under 15% CO2 were performed and compared with those of cells grown under air. It was found that carbonic anhydrase (CAs, enzyme for interconversion of bicarbonate to CO2) dramatically decreased to near 0 in 15% CO2-grown cells, which indicated that CO2 molecules directly permeated into cells under high CO2 stress without CO2-concentrating mechanism. Extrapolating from the growth conditions and quantitative Real-Time PCR of CCM-related genes, the K m (CO2) (the minimum intracellular CO2 concentration that rubisco required) of Chlorella PY-ZU1 might be in the range of 80–192 μM. More adenosine triphosphates was saved for carbon fixation-related pathways. The transcript abundance of rubisco (the most important enzyme of CO2 fixation reaction) was 16.3 times higher in 15% CO2-grown cells than that under air. Besides, the transcript abundances of most key genes involved in carbon fixation pathways were also enhanced in 15% CO2-grown cells. Conclusions Carbon fixation and nitrogen metabolism are the two most important metabolisms in the photosynthetic cells. These genes related to the two most metabolisms with significantly differential expressions were beneficial for microalgal growth (2.85 g L−1) under 15% CO2 concentration. Considering the micro and macro growth phenomena of Chlorella PY-ZU1 under different concentrations of CO2 (0.04–60%), CO2 transport pathways responses to different CO2 (0.04–60%) concentrations was reconstructed.
topic CO2 fixation pathway
Genes transcript sequences
15% CO2 concentration
Carbonic anhydrase
Rubisco
url http://link.springer.com/article/10.1186/s13068-017-0868-z
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