Literature DB >> 26486592

Genomic Foundation of Starch-to-Lipid Switch in Oleaginous Chlorella spp.

Jianhua Fan1, Kang Ning1, Xiaowei Zeng1, Yuanchan Luo1, Dongmei Wang1, Jianqiang Hu1, Jing Li1, Hui Xu1, Jianke Huang1, Minxi Wan1, Weiliang Wang1, Daojing Zhang1, Guomin Shen1, Conglin Run1, Junjie Liao1, Lei Fang1, Shi Huang1, Xiaoyan Jing1, Xiaoquan Su1, Anhui Wang1, Lili Bai1, Zanmin Hu1, Jian Xu2, Yuanguang Li2.   

Abstract

The ability to rapidly switch the intracellular energy storage form from starch to lipids is an advantageous trait for microalgae feedstock. To probe this mechanism, we sequenced the 56.8-Mbp genome of Chlorella pyrenoidosa FACHB-9, an industrial production strain for protein, starch, and lipids. The genome exhibits positive selection and gene family expansion in lipid and carbohydrate metabolism and genes related to cell cycle and stress response. Moreover, 10 lipid metabolism genes might be originated from bacteria via horizontal gene transfer. Transcriptomic dynamics tracked via messenger RNA sequencing over six time points during metabolic switch from starch-rich heterotrophy to lipid-rich photoautotrophy revealed that under heterotrophy, genes most strongly expressed were from the tricarboxylic acid cycle, respiratory chain, oxidative phosphorylation, gluconeogenesis, glyoxylate cycle, and amino acid metabolisms, whereas those most down-regulated were from fatty acid and oxidative pentose phosphate metabolism. The shift from heterotrophy into photoautotrophy highlights up-regulation of genes from carbon fixation, photosynthesis, fatty acid biosynthesis, the oxidative pentose phosphate pathway, and starch catabolism, which resulted in a marked redirection of metabolism, where the primary carbon source of glycine is no longer supplied to cell building blocks by the tricarboxylic acid cycle and gluconeogenesis, whereas carbon skeletons from photosynthesis and starch degradation may be directly channeled into fatty acid and protein biosynthesis. By establishing the first genetic transformation in industrial oleaginous C. pyrenoidosa, we further showed that overexpression of an NAD(H) kinase from Arabidopsis (Arabidopsis thaliana) increased cellular lipid content by 110.4%, yet without reducing growth rate. These findings provide a foundation for exploiting the metabolic switch in microalgae for improved photosynthetic production of food and fuels.
© 2015 American Society of Plant Biologists. All Rights Reserved.

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Year:  2015        PMID: 26486592      PMCID: PMC4677908          DOI: 10.1104/pp.15.01174

Source DB:  PubMed          Journal:  Plant Physiol        ISSN: 0032-0889            Impact factor:   8.340


  71 in total

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Review 2.  Heterotrophic cultures of microalgae: metabolism and potential products.

Authors:  Octavio Perez-Garcia; Froylan M E Escalante; Luz E de-Bashan; Yoav Bashan
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Review 3.  Perspectives on microalgal CO₂-emission mitigation systems--a review.

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4.  A matter of detail: assessing the true potential of microalgal biofuels.

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Journal:  Biotechnol Bioeng       Date:  2013-06-21       Impact factor: 4.530

5.  Altered lipid composition and enhanced nutritional value of Arabidopsis leaves following introduction of an algal diacylglycerol acyltransferase 2.

Authors:  Rachel Miller; Timothy P Durrett; Dylan K Kosma; Todd A Lydic; Bagyalakshmi Muthan; Abraham J K Koo; Yury V Bukhman; Gavin E Reid; Gregg A Howe; John Ohlrogge; Christoph Benning
Journal:  Plant Cell       Date:  2013-02-15       Impact factor: 11.277

6.  An outlook on microalgal biofuels.

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Journal:  Annu Rev Plant Biol       Date:  2010       Impact factor: 26.379

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9.  The soybean Dof-type transcription factor genes, GmDof4 and GmDof11, enhance lipid content in the seeds of transgenic Arabidopsis plants.

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  19 in total

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Review 5.  The Potential for Microalgae as Bioreactors to Produce Pharmaceuticals.

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Review 7.  The dilemma for lipid productivity in green microalgae: importance of substrate provision in improving oil yield without sacrificing growth.

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8.  Mixotrophic transition induced lipid productivity in Chlorella pyrenoidosa under stress conditions for biodiesel production.

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9.  Trophic Transition Enhanced Biomass and Lipid Production of the Unicellular Green Alga Scenedesmus acuminatus.

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