Cargando…

An engineered extraplastidial pathway for carotenoid biofortification of leaves

Carotenoids are lipophilic plastidial isoprenoids highly valued as nutrients and natural pigments. A correct balance of chlorophylls and carotenoids is required for photosynthesis and therefore highly regulated, making carotenoid enrichment of green tissues challenging. Here we show that leaf carote...

Descripción completa

Detalles Bibliográficos
Autores principales: Andersen, Trine B., Llorente, Briardo, Morelli, Luca, Torres‐Montilla, Salvador, Bordanaba‐Florit, Guillermo, Espinosa, Fausto A., Rodriguez‐Goberna, Maria Rosa, Campos, Narciso, Olmedilla‐Alonso, Begoña, Llansola‐Portoles, Manuel J., Pascal, Andrew A., Rodriguez‐Concepcion, Manuel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8131046/
https://www.ncbi.nlm.nih.gov/pubmed/33314563
http://dx.doi.org/10.1111/pbi.13526
_version_ 1783694635251531776
author Andersen, Trine B.
Llorente, Briardo
Morelli, Luca
Torres‐Montilla, Salvador
Bordanaba‐Florit, Guillermo
Espinosa, Fausto A.
Rodriguez‐Goberna, Maria Rosa
Campos, Narciso
Olmedilla‐Alonso, Begoña
Llansola‐Portoles, Manuel J.
Pascal, Andrew A.
Rodriguez‐Concepcion, Manuel
author_facet Andersen, Trine B.
Llorente, Briardo
Morelli, Luca
Torres‐Montilla, Salvador
Bordanaba‐Florit, Guillermo
Espinosa, Fausto A.
Rodriguez‐Goberna, Maria Rosa
Campos, Narciso
Olmedilla‐Alonso, Begoña
Llansola‐Portoles, Manuel J.
Pascal, Andrew A.
Rodriguez‐Concepcion, Manuel
author_sort Andersen, Trine B.
collection PubMed
description Carotenoids are lipophilic plastidial isoprenoids highly valued as nutrients and natural pigments. A correct balance of chlorophylls and carotenoids is required for photosynthesis and therefore highly regulated, making carotenoid enrichment of green tissues challenging. Here we show that leaf carotenoid levels can be boosted through engineering their biosynthesis outside the chloroplast. Transient expression experiments in Nicotiana benthamiana leaves indicated that high extraplastidial production of carotenoids requires an enhanced supply of their isoprenoid precursors in the cytosol, which was achieved using a deregulated form of the main rate‐determining enzyme of the mevalonic acid (MVA) pathway. Constructs encoding bacterial enzymes were used to convert these MVA‐derived precursors into carotenoid biosynthetic intermediates that do not normally accumulate in leaves, such as phytoene and lycopene. Cytosolic versions of these enzymes produced extraplastidial carotenoids at levels similar to those of total endogenous (i.e. chloroplast) carotenoids. Strategies to enhance the development of endomembrane structures and lipid bodies as potential extraplastidial carotenoid storage systems were not successful to further increase carotenoid contents. Phytoene was found to be more bioaccessible when accumulated outside plastids, whereas lycopene formed cytosolic crystalloids very similar to those found in the chromoplasts of ripe tomatoes. This extraplastidial production of phytoene and lycopene led to an increased antioxidant capacity of leaves. Finally, we demonstrate that our system can be adapted for the biofortification of leafy vegetables such as lettuce.
format Online
Article
Text
id pubmed-8131046
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-81310462021-05-21 An engineered extraplastidial pathway for carotenoid biofortification of leaves Andersen, Trine B. Llorente, Briardo Morelli, Luca Torres‐Montilla, Salvador Bordanaba‐Florit, Guillermo Espinosa, Fausto A. Rodriguez‐Goberna, Maria Rosa Campos, Narciso Olmedilla‐Alonso, Begoña Llansola‐Portoles, Manuel J. Pascal, Andrew A. Rodriguez‐Concepcion, Manuel Plant Biotechnol J Research Articles Carotenoids are lipophilic plastidial isoprenoids highly valued as nutrients and natural pigments. A correct balance of chlorophylls and carotenoids is required for photosynthesis and therefore highly regulated, making carotenoid enrichment of green tissues challenging. Here we show that leaf carotenoid levels can be boosted through engineering their biosynthesis outside the chloroplast. Transient expression experiments in Nicotiana benthamiana leaves indicated that high extraplastidial production of carotenoids requires an enhanced supply of their isoprenoid precursors in the cytosol, which was achieved using a deregulated form of the main rate‐determining enzyme of the mevalonic acid (MVA) pathway. Constructs encoding bacterial enzymes were used to convert these MVA‐derived precursors into carotenoid biosynthetic intermediates that do not normally accumulate in leaves, such as phytoene and lycopene. Cytosolic versions of these enzymes produced extraplastidial carotenoids at levels similar to those of total endogenous (i.e. chloroplast) carotenoids. Strategies to enhance the development of endomembrane structures and lipid bodies as potential extraplastidial carotenoid storage systems were not successful to further increase carotenoid contents. Phytoene was found to be more bioaccessible when accumulated outside plastids, whereas lycopene formed cytosolic crystalloids very similar to those found in the chromoplasts of ripe tomatoes. This extraplastidial production of phytoene and lycopene led to an increased antioxidant capacity of leaves. Finally, we demonstrate that our system can be adapted for the biofortification of leafy vegetables such as lettuce. John Wiley and Sons Inc. 2021-03-12 2021-05 /pmc/articles/PMC8131046/ /pubmed/33314563 http://dx.doi.org/10.1111/pbi.13526 Text en © 2020 The Authors. Plant Biotechnology Journal published by Society for Experimental Biology and The Association of Applied Biologists and John Wiley & Sons Ltd. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Research Articles
Andersen, Trine B.
Llorente, Briardo
Morelli, Luca
Torres‐Montilla, Salvador
Bordanaba‐Florit, Guillermo
Espinosa, Fausto A.
Rodriguez‐Goberna, Maria Rosa
Campos, Narciso
Olmedilla‐Alonso, Begoña
Llansola‐Portoles, Manuel J.
Pascal, Andrew A.
Rodriguez‐Concepcion, Manuel
An engineered extraplastidial pathway for carotenoid biofortification of leaves
title An engineered extraplastidial pathway for carotenoid biofortification of leaves
title_full An engineered extraplastidial pathway for carotenoid biofortification of leaves
title_fullStr An engineered extraplastidial pathway for carotenoid biofortification of leaves
title_full_unstemmed An engineered extraplastidial pathway for carotenoid biofortification of leaves
title_short An engineered extraplastidial pathway for carotenoid biofortification of leaves
title_sort engineered extraplastidial pathway for carotenoid biofortification of leaves
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8131046/
https://www.ncbi.nlm.nih.gov/pubmed/33314563
http://dx.doi.org/10.1111/pbi.13526
work_keys_str_mv AT andersentrineb anengineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT llorentebriardo anengineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT morelliluca anengineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT torresmontillasalvador anengineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT bordanabafloritguillermo anengineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT espinosafaustoa anengineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT rodriguezgobernamariarosa anengineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT camposnarciso anengineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT olmedillaalonsobegona anengineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT llansolaportolesmanuelj anengineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT pascalandrewa anengineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT rodriguezconcepcionmanuel anengineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT andersentrineb engineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT llorentebriardo engineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT morelliluca engineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT torresmontillasalvador engineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT bordanabafloritguillermo engineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT espinosafaustoa engineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT rodriguezgobernamariarosa engineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT camposnarciso engineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT olmedillaalonsobegona engineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT llansolaportolesmanuelj engineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT pascalandrewa engineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves
AT rodriguezconcepcionmanuel engineeredextraplastidialpathwayforcarotenoidbiofortificationofleaves