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Mini‐synplastomes for plastid genetic engineering

In the age of synthetic biology, plastid engineering requires a nimble platform to introduce novel synthetic circuits in plants. While effective for integrating relatively small constructs into the plastome, plastid engineering via homologous recombination of transgenes is over 30 years old. Here we...

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Autores principales: Occhialini, Alessandro, Pfotenhauer, Alexander C., Li, Li, Harbison, Stacee A., Lail, Andrew J., Burris, Jason N., Piasecki, Cristiano, Piatek, Agnieszka A., Daniell, Henry, Stewart, C. Neal, Lenaghan, Scott C.
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/PMC8753362/
https://www.ncbi.nlm.nih.gov/pubmed/34585834
http://dx.doi.org/10.1111/pbi.13717
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author Occhialini, Alessandro
Pfotenhauer, Alexander C.
Li, Li
Harbison, Stacee A.
Lail, Andrew J.
Burris, Jason N.
Piasecki, Cristiano
Piatek, Agnieszka A.
Daniell, Henry
Stewart, C. Neal
Lenaghan, Scott C.
author_facet Occhialini, Alessandro
Pfotenhauer, Alexander C.
Li, Li
Harbison, Stacee A.
Lail, Andrew J.
Burris, Jason N.
Piasecki, Cristiano
Piatek, Agnieszka A.
Daniell, Henry
Stewart, C. Neal
Lenaghan, Scott C.
author_sort Occhialini, Alessandro
collection PubMed
description In the age of synthetic biology, plastid engineering requires a nimble platform to introduce novel synthetic circuits in plants. While effective for integrating relatively small constructs into the plastome, plastid engineering via homologous recombination of transgenes is over 30 years old. Here we show the design–build–test of a novel synthetic genome structure that does not disturb the native plastome: the ‘mini‐synplastome’. The mini‐synplastome was inspired by dinoflagellate plastome organization, which is comprised of numerous minicircles residing in the plastid instead of a single organellar genome molecule. The first mini‐synplastome in plants was developed in vitro to meet the following criteria: (i) episomal replication in plastids; (ii) facile cloning; (iii) predictable transgene expression in plastids; (iv) non‐integration of vector sequences into the endogenous plastome; and (v) autonomous persistence in the plant over generations in the absence of exogenous selection pressure. Mini‐synplastomes are anticipated to revolutionize chloroplast biotechnology, enable facile marker‐free plastid engineering, and provide an unparalleled platform for one‐step metabolic engineering in plants.
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spelling pubmed-87533622022-01-14 Mini‐synplastomes for plastid genetic engineering Occhialini, Alessandro Pfotenhauer, Alexander C. Li, Li Harbison, Stacee A. Lail, Andrew J. Burris, Jason N. Piasecki, Cristiano Piatek, Agnieszka A. Daniell, Henry Stewart, C. Neal Lenaghan, Scott C. Plant Biotechnol J Research Articles In the age of synthetic biology, plastid engineering requires a nimble platform to introduce novel synthetic circuits in plants. While effective for integrating relatively small constructs into the plastome, plastid engineering via homologous recombination of transgenes is over 30 years old. Here we show the design–build–test of a novel synthetic genome structure that does not disturb the native plastome: the ‘mini‐synplastome’. The mini‐synplastome was inspired by dinoflagellate plastome organization, which is comprised of numerous minicircles residing in the plastid instead of a single organellar genome molecule. The first mini‐synplastome in plants was developed in vitro to meet the following criteria: (i) episomal replication in plastids; (ii) facile cloning; (iii) predictable transgene expression in plastids; (iv) non‐integration of vector sequences into the endogenous plastome; and (v) autonomous persistence in the plant over generations in the absence of exogenous selection pressure. Mini‐synplastomes are anticipated to revolutionize chloroplast biotechnology, enable facile marker‐free plastid engineering, and provide an unparalleled platform for one‐step metabolic engineering in plants. John Wiley and Sons Inc. 2021-10-24 2022-02 /pmc/articles/PMC8753362/ /pubmed/34585834 http://dx.doi.org/10.1111/pbi.13717 Text en © 2021 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/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://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
Occhialini, Alessandro
Pfotenhauer, Alexander C.
Li, Li
Harbison, Stacee A.
Lail, Andrew J.
Burris, Jason N.
Piasecki, Cristiano
Piatek, Agnieszka A.
Daniell, Henry
Stewart, C. Neal
Lenaghan, Scott C.
Mini‐synplastomes for plastid genetic engineering
title Mini‐synplastomes for plastid genetic engineering
title_full Mini‐synplastomes for plastid genetic engineering
title_fullStr Mini‐synplastomes for plastid genetic engineering
title_full_unstemmed Mini‐synplastomes for plastid genetic engineering
title_short Mini‐synplastomes for plastid genetic engineering
title_sort mini‐synplastomes for plastid genetic engineering
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8753362/
https://www.ncbi.nlm.nih.gov/pubmed/34585834
http://dx.doi.org/10.1111/pbi.13717
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