Cargando…

The road to astaxanthin production in tomato fruit reveals plastid and metabolic adaptation resulting in an unintended high lycopene genotype with delayed over‐ripening properties

Tomato fruit are an important nutritional component of the human diet and offer potential to act as a cell factory for speciality chemicals, which are often produced by chemical synthesis. In the present study our goal was to produce competitive levels of the high value ketocarotenoid, astaxanthin,...

Descripción completa

Detalles Bibliográficos
Autores principales: Enfissi, Eugenia M.A., Nogueira, Marilise, D'Ambrosio, Caterina, Stigliani, Adriana Lucia, Giorio, Giovanni, Misawa, Norihiko, Fraser, Paul D.
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/PMC6662112/
https://www.ncbi.nlm.nih.gov/pubmed/30623551
http://dx.doi.org/10.1111/pbi.13073
_version_ 1783439593833496576
author Enfissi, Eugenia M.A.
Nogueira, Marilise
D'Ambrosio, Caterina
Stigliani, Adriana Lucia
Giorio, Giovanni
Misawa, Norihiko
Fraser, Paul D.
author_facet Enfissi, Eugenia M.A.
Nogueira, Marilise
D'Ambrosio, Caterina
Stigliani, Adriana Lucia
Giorio, Giovanni
Misawa, Norihiko
Fraser, Paul D.
author_sort Enfissi, Eugenia M.A.
collection PubMed
description Tomato fruit are an important nutritional component of the human diet and offer potential to act as a cell factory for speciality chemicals, which are often produced by chemical synthesis. In the present study our goal was to produce competitive levels of the high value ketocarotenoid, astaxanthin, in tomato fruit. The initial stage in this process was achieved by expressing the 4, 4′ carotenoid oxygenase (crtW) and 3, 3′ hydroxylase (crtZ) from marine bacteria in tomato under constitutive control. Characterization of this genotype showed a surprising low level production of ketocarotenoids in ripe fruit but over production of lycopene (~3.5 mg/g DW), accompanied by delayed ripening. In order to accumulate these non‐endogenous carotenoids, metabolite induced plastid differentiation was evident as well as esterification. Metabolomic and pathway based transcription studies corroborated the delayed onset of ripening. The data also revealed the importance of determining pheno/chemotype inheritance, with ketocarotenoid producing progeny displaying loss of vigour in the homozygous state but stability and robustness in the hemizygous state. To iteratively build on these data and optimize ketocarotenoid production in this genotype, a lycopene β‐cyclase was incorporated to avoid precursor limitations and a more efficient hydroxylase was introduced. These combinations resulted in the production of astaxanthin (and ketocarotenoid esters) in ripe fruit at ~3 mg/g DW. Based on previous studies, this level of product formation represents an economic competitive value in a Generally Regarded As Safe (GRAS) matrix that requires minimal downstream processing.
format Online
Article
Text
id pubmed-6662112
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-66621122019-08-05 The road to astaxanthin production in tomato fruit reveals plastid and metabolic adaptation resulting in an unintended high lycopene genotype with delayed over‐ripening properties Enfissi, Eugenia M.A. Nogueira, Marilise D'Ambrosio, Caterina Stigliani, Adriana Lucia Giorio, Giovanni Misawa, Norihiko Fraser, Paul D. Plant Biotechnol J Research Articles Tomato fruit are an important nutritional component of the human diet and offer potential to act as a cell factory for speciality chemicals, which are often produced by chemical synthesis. In the present study our goal was to produce competitive levels of the high value ketocarotenoid, astaxanthin, in tomato fruit. The initial stage in this process was achieved by expressing the 4, 4′ carotenoid oxygenase (crtW) and 3, 3′ hydroxylase (crtZ) from marine bacteria in tomato under constitutive control. Characterization of this genotype showed a surprising low level production of ketocarotenoids in ripe fruit but over production of lycopene (~3.5 mg/g DW), accompanied by delayed ripening. In order to accumulate these non‐endogenous carotenoids, metabolite induced plastid differentiation was evident as well as esterification. Metabolomic and pathway based transcription studies corroborated the delayed onset of ripening. The data also revealed the importance of determining pheno/chemotype inheritance, with ketocarotenoid producing progeny displaying loss of vigour in the homozygous state but stability and robustness in the hemizygous state. To iteratively build on these data and optimize ketocarotenoid production in this genotype, a lycopene β‐cyclase was incorporated to avoid precursor limitations and a more efficient hydroxylase was introduced. These combinations resulted in the production of astaxanthin (and ketocarotenoid esters) in ripe fruit at ~3 mg/g DW. Based on previous studies, this level of product formation represents an economic competitive value in a Generally Regarded As Safe (GRAS) matrix that requires minimal downstream processing. John Wiley and Sons Inc. 2019-02-01 2019-08 /pmc/articles/PMC6662112/ /pubmed/30623551 http://dx.doi.org/10.1111/pbi.13073 Text en © 2019 The Authors. Plant Biotechnology Journal published by Society for Experimental Biology and The Association of Applied Biologists 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 Research Articles
Enfissi, Eugenia M.A.
Nogueira, Marilise
D'Ambrosio, Caterina
Stigliani, Adriana Lucia
Giorio, Giovanni
Misawa, Norihiko
Fraser, Paul D.
The road to astaxanthin production in tomato fruit reveals plastid and metabolic adaptation resulting in an unintended high lycopene genotype with delayed over‐ripening properties
title The road to astaxanthin production in tomato fruit reveals plastid and metabolic adaptation resulting in an unintended high lycopene genotype with delayed over‐ripening properties
title_full The road to astaxanthin production in tomato fruit reveals plastid and metabolic adaptation resulting in an unintended high lycopene genotype with delayed over‐ripening properties
title_fullStr The road to astaxanthin production in tomato fruit reveals plastid and metabolic adaptation resulting in an unintended high lycopene genotype with delayed over‐ripening properties
title_full_unstemmed The road to astaxanthin production in tomato fruit reveals plastid and metabolic adaptation resulting in an unintended high lycopene genotype with delayed over‐ripening properties
title_short The road to astaxanthin production in tomato fruit reveals plastid and metabolic adaptation resulting in an unintended high lycopene genotype with delayed over‐ripening properties
title_sort road to astaxanthin production in tomato fruit reveals plastid and metabolic adaptation resulting in an unintended high lycopene genotype with delayed over‐ripening properties
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6662112/
https://www.ncbi.nlm.nih.gov/pubmed/30623551
http://dx.doi.org/10.1111/pbi.13073
work_keys_str_mv AT enfissieugeniama theroadtoastaxanthinproductionintomatofruitrevealsplastidandmetabolicadaptationresultinginanunintendedhighlycopenegenotypewithdelayedoverripeningproperties
AT nogueiramarilise theroadtoastaxanthinproductionintomatofruitrevealsplastidandmetabolicadaptationresultinginanunintendedhighlycopenegenotypewithdelayedoverripeningproperties
AT dambrosiocaterina theroadtoastaxanthinproductionintomatofruitrevealsplastidandmetabolicadaptationresultinginanunintendedhighlycopenegenotypewithdelayedoverripeningproperties
AT stiglianiadrianalucia theroadtoastaxanthinproductionintomatofruitrevealsplastidandmetabolicadaptationresultinginanunintendedhighlycopenegenotypewithdelayedoverripeningproperties
AT gioriogiovanni theroadtoastaxanthinproductionintomatofruitrevealsplastidandmetabolicadaptationresultinginanunintendedhighlycopenegenotypewithdelayedoverripeningproperties
AT misawanorihiko theroadtoastaxanthinproductionintomatofruitrevealsplastidandmetabolicadaptationresultinginanunintendedhighlycopenegenotypewithdelayedoverripeningproperties
AT fraserpauld theroadtoastaxanthinproductionintomatofruitrevealsplastidandmetabolicadaptationresultinginanunintendedhighlycopenegenotypewithdelayedoverripeningproperties
AT enfissieugeniama roadtoastaxanthinproductionintomatofruitrevealsplastidandmetabolicadaptationresultinginanunintendedhighlycopenegenotypewithdelayedoverripeningproperties
AT nogueiramarilise roadtoastaxanthinproductionintomatofruitrevealsplastidandmetabolicadaptationresultinginanunintendedhighlycopenegenotypewithdelayedoverripeningproperties
AT dambrosiocaterina roadtoastaxanthinproductionintomatofruitrevealsplastidandmetabolicadaptationresultinginanunintendedhighlycopenegenotypewithdelayedoverripeningproperties
AT stiglianiadrianalucia roadtoastaxanthinproductionintomatofruitrevealsplastidandmetabolicadaptationresultinginanunintendedhighlycopenegenotypewithdelayedoverripeningproperties
AT gioriogiovanni roadtoastaxanthinproductionintomatofruitrevealsplastidandmetabolicadaptationresultinginanunintendedhighlycopenegenotypewithdelayedoverripeningproperties
AT misawanorihiko roadtoastaxanthinproductionintomatofruitrevealsplastidandmetabolicadaptationresultinginanunintendedhighlycopenegenotypewithdelayedoverripeningproperties
AT fraserpauld roadtoastaxanthinproductionintomatofruitrevealsplastidandmetabolicadaptationresultinginanunintendedhighlycopenegenotypewithdelayedoverripeningproperties