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Chlorella vulgaris genome assembly and annotation reveals the molecular basis for metabolic acclimation to high light conditions

Chlorella vulgaris is a fast‐growing fresh‐water microalga cultivated on the industrial scale for applications ranging from food to biofuel production. To advance our understanding of its biology and to establish genetics tools for biotechnological manipulation, we sequenced the nuclear and organell...

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Autores principales: Cecchin, Michela, Marcolungo, Luca, Rossato, Marzia, Girolomoni, Laura, Cosentino, Emanuela, Cuine, Stephan, Li‐Beisson, Yonghua, Delledonne, Massimo, Ballottari, Matteo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6972661/
https://www.ncbi.nlm.nih.gov/pubmed/31437318
http://dx.doi.org/10.1111/tpj.14508
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author Cecchin, Michela
Marcolungo, Luca
Rossato, Marzia
Girolomoni, Laura
Cosentino, Emanuela
Cuine, Stephan
Li‐Beisson, Yonghua
Delledonne, Massimo
Ballottari, Matteo
author_facet Cecchin, Michela
Marcolungo, Luca
Rossato, Marzia
Girolomoni, Laura
Cosentino, Emanuela
Cuine, Stephan
Li‐Beisson, Yonghua
Delledonne, Massimo
Ballottari, Matteo
author_sort Cecchin, Michela
collection PubMed
description Chlorella vulgaris is a fast‐growing fresh‐water microalga cultivated on the industrial scale for applications ranging from food to biofuel production. To advance our understanding of its biology and to establish genetics tools for biotechnological manipulation, we sequenced the nuclear and organelle genomes of Chlorella vulgaris 211/11P by combining next generation sequencing and optical mapping of isolated DNA molecules. This hybrid approach allowed us to assemble the nuclear genome in 14 pseudo‐molecules with an N50 of 2.8 Mb and 98.9% of scaffolded genome. The integration of RNA‐seq data obtained at two different irradiances of growth (high light, HL versus low light, LL) enabled us to identify 10 724 nuclear genes, coding for 11 082 transcripts. Moreover, 121 and 48 genes, respectively, were found in the chloroplast and mitochondrial genome. Functional annotation and expression analysis of nuclear, chloroplast and mitochondrial genome sequences revealed particular features of Chlorella vulgaris. Evidence of horizontal gene transfers from chloroplast to mitochondrial genome was observed. Furthermore, comparative transcriptomic analyses of LL versus HL provided insights into the molecular basis for metabolic rearrangement under HL versus LL conditions leading to enhanced de novo fatty acid biosynthesis and triacylglycerol accumulation. The occurrence of a cytosolic fatty acid biosynthetic pathway could be predicted and its upregulation upon HL exposure was observed, consistent with the increased lipid amount under HL conditions. These data provide a rich genetic resource for future genome editing studies, and potential targets for biotechnological manipulation of Chlorella vulgaris or other microalgae species to improve biomass and lipid productivity.
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spelling pubmed-69726612020-01-27 Chlorella vulgaris genome assembly and annotation reveals the molecular basis for metabolic acclimation to high light conditions Cecchin, Michela Marcolungo, Luca Rossato, Marzia Girolomoni, Laura Cosentino, Emanuela Cuine, Stephan Li‐Beisson, Yonghua Delledonne, Massimo Ballottari, Matteo Plant J Resource Chlorella vulgaris is a fast‐growing fresh‐water microalga cultivated on the industrial scale for applications ranging from food to biofuel production. To advance our understanding of its biology and to establish genetics tools for biotechnological manipulation, we sequenced the nuclear and organelle genomes of Chlorella vulgaris 211/11P by combining next generation sequencing and optical mapping of isolated DNA molecules. This hybrid approach allowed us to assemble the nuclear genome in 14 pseudo‐molecules with an N50 of 2.8 Mb and 98.9% of scaffolded genome. The integration of RNA‐seq data obtained at two different irradiances of growth (high light, HL versus low light, LL) enabled us to identify 10 724 nuclear genes, coding for 11 082 transcripts. Moreover, 121 and 48 genes, respectively, were found in the chloroplast and mitochondrial genome. Functional annotation and expression analysis of nuclear, chloroplast and mitochondrial genome sequences revealed particular features of Chlorella vulgaris. Evidence of horizontal gene transfers from chloroplast to mitochondrial genome was observed. Furthermore, comparative transcriptomic analyses of LL versus HL provided insights into the molecular basis for metabolic rearrangement under HL versus LL conditions leading to enhanced de novo fatty acid biosynthesis and triacylglycerol accumulation. The occurrence of a cytosolic fatty acid biosynthetic pathway could be predicted and its upregulation upon HL exposure was observed, consistent with the increased lipid amount under HL conditions. These data provide a rich genetic resource for future genome editing studies, and potential targets for biotechnological manipulation of Chlorella vulgaris or other microalgae species to improve biomass and lipid productivity. John Wiley and Sons Inc. 2019-09-24 2019-12 /pmc/articles/PMC6972661/ /pubmed/31437318 http://dx.doi.org/10.1111/tpj.14508 Text en © 2019 The Authors. The Plant Journal published by Society for Experimental Biology and John Wiley & Sons Ltd This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Resource
Cecchin, Michela
Marcolungo, Luca
Rossato, Marzia
Girolomoni, Laura
Cosentino, Emanuela
Cuine, Stephan
Li‐Beisson, Yonghua
Delledonne, Massimo
Ballottari, Matteo
Chlorella vulgaris genome assembly and annotation reveals the molecular basis for metabolic acclimation to high light conditions
title Chlorella vulgaris genome assembly and annotation reveals the molecular basis for metabolic acclimation to high light conditions
title_full Chlorella vulgaris genome assembly and annotation reveals the molecular basis for metabolic acclimation to high light conditions
title_fullStr Chlorella vulgaris genome assembly and annotation reveals the molecular basis for metabolic acclimation to high light conditions
title_full_unstemmed Chlorella vulgaris genome assembly and annotation reveals the molecular basis for metabolic acclimation to high light conditions
title_short Chlorella vulgaris genome assembly and annotation reveals the molecular basis for metabolic acclimation to high light conditions
title_sort chlorella vulgaris genome assembly and annotation reveals the molecular basis for metabolic acclimation to high light conditions
topic Resource
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6972661/
https://www.ncbi.nlm.nih.gov/pubmed/31437318
http://dx.doi.org/10.1111/tpj.14508
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