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Characterizing standard genetic parts and establishing common principles for engineering legume and cereal roots

Plant synthetic biology and cereal engineering depend on the controlled expression of transgenes of interest. Most engineering in plant species to date has relied heavily on the use of a few, well‐established constitutive promoters to achieve high levels of expression; however, the levels of transge...

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Autores principales: Feike, Doreen, Korolev, Andrey V., Soumpourou, Eleni, Murakami, Eiichi, Reid, Dugald, Breakspear, Andrew, Rogers, Christian, Radutoiu, Simona, Stougaard, Jens, Harwood, Wendy A., Oldroyd, Giles E. D., Miller, J. Benjamin
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/PMC6835126/
https://www.ncbi.nlm.nih.gov/pubmed/31022324
http://dx.doi.org/10.1111/pbi.13135
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author Feike, Doreen
Korolev, Andrey V.
Soumpourou, Eleni
Murakami, Eiichi
Reid, Dugald
Breakspear, Andrew
Rogers, Christian
Radutoiu, Simona
Stougaard, Jens
Harwood, Wendy A.
Oldroyd, Giles E. D.
Miller, J. Benjamin
author_facet Feike, Doreen
Korolev, Andrey V.
Soumpourou, Eleni
Murakami, Eiichi
Reid, Dugald
Breakspear, Andrew
Rogers, Christian
Radutoiu, Simona
Stougaard, Jens
Harwood, Wendy A.
Oldroyd, Giles E. D.
Miller, J. Benjamin
author_sort Feike, Doreen
collection PubMed
description Plant synthetic biology and cereal engineering depend on the controlled expression of transgenes of interest. Most engineering in plant species to date has relied heavily on the use of a few, well‐established constitutive promoters to achieve high levels of expression; however, the levels of transgene expression can also be influenced by the use of codon optimization, intron‐mediated enhancement and varying terminator sequences. Most of these alternative approaches for regulating transgene expression have only been tested in small‐scale experiments, typically testing a single gene of interest. It is therefore difficult to interpret the relative importance of these approaches and to design engineering strategies that are likely to succeed in different plant species, particularly if engineering multigenic traits where the expression of each transgene needs to be precisely regulated. Here, we present data on the characterization of 46 promoters and 10 terminators in Medicago truncatula, Lotus japonicus, Nicotiana benthamiana and Hordeum vulgare, as well as the effects of codon optimization and intron‐mediated enhancement on the expression of two transgenes in H. vulgare. We have identified a core set of promoters and terminators of relevance to researchers engineering novel traits in plant roots. In addition, we have shown that combining codon optimization and intron‐mediated enhancement increases transgene expression and protein levels in barley. Based on our study, we recommend a core set of promoters and terminators for broad use and also propose a general set of principles and guidelines for those engineering cereal species.
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spelling pubmed-68351262019-11-12 Characterizing standard genetic parts and establishing common principles for engineering legume and cereal roots Feike, Doreen Korolev, Andrey V. Soumpourou, Eleni Murakami, Eiichi Reid, Dugald Breakspear, Andrew Rogers, Christian Radutoiu, Simona Stougaard, Jens Harwood, Wendy A. Oldroyd, Giles E. D. Miller, J. Benjamin Plant Biotechnol J Research Articles Plant synthetic biology and cereal engineering depend on the controlled expression of transgenes of interest. Most engineering in plant species to date has relied heavily on the use of a few, well‐established constitutive promoters to achieve high levels of expression; however, the levels of transgene expression can also be influenced by the use of codon optimization, intron‐mediated enhancement and varying terminator sequences. Most of these alternative approaches for regulating transgene expression have only been tested in small‐scale experiments, typically testing a single gene of interest. It is therefore difficult to interpret the relative importance of these approaches and to design engineering strategies that are likely to succeed in different plant species, particularly if engineering multigenic traits where the expression of each transgene needs to be precisely regulated. Here, we present data on the characterization of 46 promoters and 10 terminators in Medicago truncatula, Lotus japonicus, Nicotiana benthamiana and Hordeum vulgare, as well as the effects of codon optimization and intron‐mediated enhancement on the expression of two transgenes in H. vulgare. We have identified a core set of promoters and terminators of relevance to researchers engineering novel traits in plant roots. In addition, we have shown that combining codon optimization and intron‐mediated enhancement increases transgene expression and protein levels in barley. Based on our study, we recommend a core set of promoters and terminators for broad use and also propose a general set of principles and guidelines for those engineering cereal species. John Wiley and Sons Inc. 2019-05-23 2019-12 /pmc/articles/PMC6835126/ /pubmed/31022324 http://dx.doi.org/10.1111/pbi.13135 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
Feike, Doreen
Korolev, Andrey V.
Soumpourou, Eleni
Murakami, Eiichi
Reid, Dugald
Breakspear, Andrew
Rogers, Christian
Radutoiu, Simona
Stougaard, Jens
Harwood, Wendy A.
Oldroyd, Giles E. D.
Miller, J. Benjamin
Characterizing standard genetic parts and establishing common principles for engineering legume and cereal roots
title Characterizing standard genetic parts and establishing common principles for engineering legume and cereal roots
title_full Characterizing standard genetic parts and establishing common principles for engineering legume and cereal roots
title_fullStr Characterizing standard genetic parts and establishing common principles for engineering legume and cereal roots
title_full_unstemmed Characterizing standard genetic parts and establishing common principles for engineering legume and cereal roots
title_short Characterizing standard genetic parts and establishing common principles for engineering legume and cereal roots
title_sort characterizing standard genetic parts and establishing common principles for engineering legume and cereal roots
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6835126/
https://www.ncbi.nlm.nih.gov/pubmed/31022324
http://dx.doi.org/10.1111/pbi.13135
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