Cargando…

Provitamin A biofortification of cassava enhances shelf life but reduces dry matter content of storage roots due to altered carbon partitioning into starch

Storage roots of cassava (Manihot esculenta Crantz), a major subsistence crop of sub‐Saharan Africa, are calorie rich but deficient in essential micronutrients, including provitamin A β‐carotene. In this study, β‐carotene concentrations in cassava storage roots were enhanced by co‐expression of tran...

Descripción completa

Detalles Bibliográficos
Autores principales: Beyene, Getu, Solomon, Felix R., Chauhan, Raj D., Gaitán‐Solis, Eliana, Narayanan, Narayanan, Gehan, Jackson, Siritunga, Dimuth, Stevens, Robyn L., Jifon, John, Van Eck, Joyce, Linsler, Edward, Gehan, Malia, Ilyas, Muhammad, Fregene, Martin, Sayre, Richard T., Anderson, Paul, Taylor, Nigel J., Cahoon, Edgar B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5978869/
https://www.ncbi.nlm.nih.gov/pubmed/29193665
http://dx.doi.org/10.1111/pbi.12862
_version_ 1783327571451052032
author Beyene, Getu
Solomon, Felix R.
Chauhan, Raj D.
Gaitán‐Solis, Eliana
Narayanan, Narayanan
Gehan, Jackson
Siritunga, Dimuth
Stevens, Robyn L.
Jifon, John
Van Eck, Joyce
Linsler, Edward
Gehan, Malia
Ilyas, Muhammad
Fregene, Martin
Sayre, Richard T.
Anderson, Paul
Taylor, Nigel J.
Cahoon, Edgar B.
author_facet Beyene, Getu
Solomon, Felix R.
Chauhan, Raj D.
Gaitán‐Solis, Eliana
Narayanan, Narayanan
Gehan, Jackson
Siritunga, Dimuth
Stevens, Robyn L.
Jifon, John
Van Eck, Joyce
Linsler, Edward
Gehan, Malia
Ilyas, Muhammad
Fregene, Martin
Sayre, Richard T.
Anderson, Paul
Taylor, Nigel J.
Cahoon, Edgar B.
author_sort Beyene, Getu
collection PubMed
description Storage roots of cassava (Manihot esculenta Crantz), a major subsistence crop of sub‐Saharan Africa, are calorie rich but deficient in essential micronutrients, including provitamin A β‐carotene. In this study, β‐carotene concentrations in cassava storage roots were enhanced by co‐expression of transgenes for deoxy‐d‐xylulose‐5‐phosphate synthase (DXS) and bacterial phytoene synthase (crtB), mediated by the patatin‐type 1 promoter. Storage roots harvested from field‐grown plants accumulated carotenoids to ≤50 μg/g DW, 15‐ to 20‐fold increases relative to roots from nontransgenic plants. Approximately 85%–90% of these carotenoids accumulated as all‐trans‐β‐carotene, the most nutritionally efficacious carotenoid. β‐Carotene‐accumulating storage roots displayed delayed onset of postharvest physiological deterioration, a major constraint limiting utilization of cassava products. Large metabolite changes were detected in β‐carotene‐enhanced storage roots. Most significantly, an inverse correlation was observed between β‐carotene and dry matter content, with reductions of 50%–60% of dry matter content in the highest carotenoid‐accumulating storage roots of different cultivars. Further analysis confirmed a concomitant reduction in starch content and increased levels of total fatty acids, triacylglycerols, soluble sugars and abscisic acid. Potato engineered to co‐express DXS and crtB displayed a similar correlation between β‐carotene accumulation, reduced dry matter and starch content and elevated oil and soluble sugars in tubers. Transcriptome analyses revealed a reduced expression of genes involved in starch biosynthesis including ADP‐glucose pyrophosphorylase genes in transgenic, carotene‐accumulating cassava roots relative to nontransgenic roots. These findings highlight unintended metabolic consequences of provitamin A biofortification of starch‐rich organs and point to strategies for redirecting metabolic flux to restore starch production.
format Online
Article
Text
id pubmed-5978869
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-59788692018-06-06 Provitamin A biofortification of cassava enhances shelf life but reduces dry matter content of storage roots due to altered carbon partitioning into starch Beyene, Getu Solomon, Felix R. Chauhan, Raj D. Gaitán‐Solis, Eliana Narayanan, Narayanan Gehan, Jackson Siritunga, Dimuth Stevens, Robyn L. Jifon, John Van Eck, Joyce Linsler, Edward Gehan, Malia Ilyas, Muhammad Fregene, Martin Sayre, Richard T. Anderson, Paul Taylor, Nigel J. Cahoon, Edgar B. Plant Biotechnol J Research Articles Storage roots of cassava (Manihot esculenta Crantz), a major subsistence crop of sub‐Saharan Africa, are calorie rich but deficient in essential micronutrients, including provitamin A β‐carotene. In this study, β‐carotene concentrations in cassava storage roots were enhanced by co‐expression of transgenes for deoxy‐d‐xylulose‐5‐phosphate synthase (DXS) and bacterial phytoene synthase (crtB), mediated by the patatin‐type 1 promoter. Storage roots harvested from field‐grown plants accumulated carotenoids to ≤50 μg/g DW, 15‐ to 20‐fold increases relative to roots from nontransgenic plants. Approximately 85%–90% of these carotenoids accumulated as all‐trans‐β‐carotene, the most nutritionally efficacious carotenoid. β‐Carotene‐accumulating storage roots displayed delayed onset of postharvest physiological deterioration, a major constraint limiting utilization of cassava products. Large metabolite changes were detected in β‐carotene‐enhanced storage roots. Most significantly, an inverse correlation was observed between β‐carotene and dry matter content, with reductions of 50%–60% of dry matter content in the highest carotenoid‐accumulating storage roots of different cultivars. Further analysis confirmed a concomitant reduction in starch content and increased levels of total fatty acids, triacylglycerols, soluble sugars and abscisic acid. Potato engineered to co‐express DXS and crtB displayed a similar correlation between β‐carotene accumulation, reduced dry matter and starch content and elevated oil and soluble sugars in tubers. Transcriptome analyses revealed a reduced expression of genes involved in starch biosynthesis including ADP‐glucose pyrophosphorylase genes in transgenic, carotene‐accumulating cassava roots relative to nontransgenic roots. These findings highlight unintended metabolic consequences of provitamin A biofortification of starch‐rich organs and point to strategies for redirecting metabolic flux to restore starch production. John Wiley and Sons Inc. 2017-12-27 2018-06 /pmc/articles/PMC5978869/ /pubmed/29193665 http://dx.doi.org/10.1111/pbi.12862 Text en © 2017 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
Beyene, Getu
Solomon, Felix R.
Chauhan, Raj D.
Gaitán‐Solis, Eliana
Narayanan, Narayanan
Gehan, Jackson
Siritunga, Dimuth
Stevens, Robyn L.
Jifon, John
Van Eck, Joyce
Linsler, Edward
Gehan, Malia
Ilyas, Muhammad
Fregene, Martin
Sayre, Richard T.
Anderson, Paul
Taylor, Nigel J.
Cahoon, Edgar B.
Provitamin A biofortification of cassava enhances shelf life but reduces dry matter content of storage roots due to altered carbon partitioning into starch
title Provitamin A biofortification of cassava enhances shelf life but reduces dry matter content of storage roots due to altered carbon partitioning into starch
title_full Provitamin A biofortification of cassava enhances shelf life but reduces dry matter content of storage roots due to altered carbon partitioning into starch
title_fullStr Provitamin A biofortification of cassava enhances shelf life but reduces dry matter content of storage roots due to altered carbon partitioning into starch
title_full_unstemmed Provitamin A biofortification of cassava enhances shelf life but reduces dry matter content of storage roots due to altered carbon partitioning into starch
title_short Provitamin A biofortification of cassava enhances shelf life but reduces dry matter content of storage roots due to altered carbon partitioning into starch
title_sort provitamin a biofortification of cassava enhances shelf life but reduces dry matter content of storage roots due to altered carbon partitioning into starch
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5978869/
https://www.ncbi.nlm.nih.gov/pubmed/29193665
http://dx.doi.org/10.1111/pbi.12862
work_keys_str_mv AT beyenegetu provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT solomonfelixr provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT chauhanrajd provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT gaitansoliseliana provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT narayanannarayanan provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT gehanjackson provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT siritungadimuth provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT stevensrobynl provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT jifonjohn provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT vaneckjoyce provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT linsleredward provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT gehanmalia provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT ilyasmuhammad provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT fregenemartin provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT sayrerichardt provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT andersonpaul provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT taylornigelj provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch
AT cahoonedgarb provitaminabiofortificationofcassavaenhancesshelflifebutreducesdrymattercontentofstoragerootsduetoalteredcarbonpartitioningintostarch