Heterologous stable expression of terpenoid biosynthetic genes using the moss Physcomitrella patens

Research output: Chapter in Book/Report/Conference proceedingBook chapterResearchpeer-review

Standard

Heterologous stable expression of terpenoid biosynthetic genes using the moss Physcomitrella patens. / Bach, Søren Spanner; King, Brian Christopher; Zhan, Xin; Simonsen, Henrik Toft; Hamberger, Björn Robert.

Plant isoprenoids: methods and protocols. ed. / Manuel Rodríguez-Concepción. Springer, 2014. p. 257-271 (Methods in Molecular Biology, Vol. 1153).

Research output: Chapter in Book/Report/Conference proceedingBook chapterResearchpeer-review

Harvard

Bach, SS, King, BC, Zhan, X, Simonsen, HT & Hamberger, BR 2014, Heterologous stable expression of terpenoid biosynthetic genes using the moss Physcomitrella patens. in M Rodríguez-Concepción (ed.), Plant isoprenoids: methods and protocols. Springer, Methods in Molecular Biology, vol. 1153, pp. 257-271. https://doi.org/10.1007/978-1-4939-0606-2_19

APA

Bach, S. S., King, B. C., Zhan, X., Simonsen, H. T., & Hamberger, B. R. (2014). Heterologous stable expression of terpenoid biosynthetic genes using the moss Physcomitrella patens. In M. Rodríguez-Concepción (Ed.), Plant isoprenoids: methods and protocols (pp. 257-271). Springer. Methods in Molecular Biology Vol. 1153 https://doi.org/10.1007/978-1-4939-0606-2_19

Vancouver

Bach SS, King BC, Zhan X, Simonsen HT, Hamberger BR. Heterologous stable expression of terpenoid biosynthetic genes using the moss Physcomitrella patens. In Rodríguez-Concepción M, editor, Plant isoprenoids: methods and protocols. Springer. 2014. p. 257-271. (Methods in Molecular Biology, Vol. 1153). https://doi.org/10.1007/978-1-4939-0606-2_19

Author

Bach, Søren Spanner ; King, Brian Christopher ; Zhan, Xin ; Simonsen, Henrik Toft ; Hamberger, Björn Robert. / Heterologous stable expression of terpenoid biosynthetic genes using the moss Physcomitrella patens. Plant isoprenoids: methods and protocols. editor / Manuel Rodríguez-Concepción. Springer, 2014. pp. 257-271 (Methods in Molecular Biology, Vol. 1153).

Bibtex

@inbook{75abc55c91ae42e4a01747f11ecce350,
title = "Heterologous stable expression of terpenoid biosynthetic genes using the moss Physcomitrella patens",
abstract = "Heterologous and stable expression of genes encoding terpenoid biosynthetic enzymes in planta is an important tool for functional characterization and is an attractive alternative to expression in microbial hosts for biotechnological production. Despite improvements to the procedure, such as streamlining of large scale Agrobacterium infiltration and upregulation of the upstream pathways, transient in planta heterologous expression quickly reaches limitations when used for production of terpenoids. Stable integration of transgenes into the nuclear genome of the moss Physcomitrella patens has already been widely recognized as a viable alternative for industrial-scale production of biopharmaceuticals. For expression of terpenoid biosynthetic genes, and reconstruction of heterologous pathways, Physcomitrella has unique attributes that makes it a very promising biotechnological host. These features include a high native tolerance to terpenoids, a simple endogenous terpenoid profile, convenient genome editing using homologous recombination, and cultivation techniques that allow up-scaling from single cells in microtiter plates to industrial photo-bioreactors. Beyond its use for functional characterization of terpenoid biosynthetic genes, engineered Physcomitrella can be a green biotechnological platform for production of terpenoids. Here, we describe two complementary and simple procedures for stable nuclear transformation of Physcomitrella with terpenoid biosynthetic genes, selection and cultivation of transgenic lines, and metabolite analysis of terpenoids produced in transgenic moss lines. We also provide tools for metabolic engineering through genome editing using homologous recombination.",
author = "Bach, {S{\o}ren Spanner} and King, {Brian Christopher} and Xin Zhan and Simonsen, {Henrik Toft} and Hamberger, {Bj{\"o}rn Robert}",
year = "2014",
doi = "10.1007/978-1-4939-0606-2_19",
language = "English",
isbn = "978-1-4939-0605-5",
series = "Methods in Molecular Biology",
publisher = "Springer",
pages = "257--271",
editor = "Manuel Rodr{\'i}guez-Concepci{\'o}n",
booktitle = "Plant isoprenoids",
address = "Switzerland",

}

RIS

TY - CHAP

T1 - Heterologous stable expression of terpenoid biosynthetic genes using the moss Physcomitrella patens

AU - Bach, Søren Spanner

AU - King, Brian Christopher

AU - Zhan, Xin

AU - Simonsen, Henrik Toft

AU - Hamberger, Björn Robert

PY - 2014

Y1 - 2014

N2 - Heterologous and stable expression of genes encoding terpenoid biosynthetic enzymes in planta is an important tool for functional characterization and is an attractive alternative to expression in microbial hosts for biotechnological production. Despite improvements to the procedure, such as streamlining of large scale Agrobacterium infiltration and upregulation of the upstream pathways, transient in planta heterologous expression quickly reaches limitations when used for production of terpenoids. Stable integration of transgenes into the nuclear genome of the moss Physcomitrella patens has already been widely recognized as a viable alternative for industrial-scale production of biopharmaceuticals. For expression of terpenoid biosynthetic genes, and reconstruction of heterologous pathways, Physcomitrella has unique attributes that makes it a very promising biotechnological host. These features include a high native tolerance to terpenoids, a simple endogenous terpenoid profile, convenient genome editing using homologous recombination, and cultivation techniques that allow up-scaling from single cells in microtiter plates to industrial photo-bioreactors. Beyond its use for functional characterization of terpenoid biosynthetic genes, engineered Physcomitrella can be a green biotechnological platform for production of terpenoids. Here, we describe two complementary and simple procedures for stable nuclear transformation of Physcomitrella with terpenoid biosynthetic genes, selection and cultivation of transgenic lines, and metabolite analysis of terpenoids produced in transgenic moss lines. We also provide tools for metabolic engineering through genome editing using homologous recombination.

AB - Heterologous and stable expression of genes encoding terpenoid biosynthetic enzymes in planta is an important tool for functional characterization and is an attractive alternative to expression in microbial hosts for biotechnological production. Despite improvements to the procedure, such as streamlining of large scale Agrobacterium infiltration and upregulation of the upstream pathways, transient in planta heterologous expression quickly reaches limitations when used for production of terpenoids. Stable integration of transgenes into the nuclear genome of the moss Physcomitrella patens has already been widely recognized as a viable alternative for industrial-scale production of biopharmaceuticals. For expression of terpenoid biosynthetic genes, and reconstruction of heterologous pathways, Physcomitrella has unique attributes that makes it a very promising biotechnological host. These features include a high native tolerance to terpenoids, a simple endogenous terpenoid profile, convenient genome editing using homologous recombination, and cultivation techniques that allow up-scaling from single cells in microtiter plates to industrial photo-bioreactors. Beyond its use for functional characterization of terpenoid biosynthetic genes, engineered Physcomitrella can be a green biotechnological platform for production of terpenoids. Here, we describe two complementary and simple procedures for stable nuclear transformation of Physcomitrella with terpenoid biosynthetic genes, selection and cultivation of transgenic lines, and metabolite analysis of terpenoids produced in transgenic moss lines. We also provide tools for metabolic engineering through genome editing using homologous recombination.

U2 - 10.1007/978-1-4939-0606-2_19

DO - 10.1007/978-1-4939-0606-2_19

M3 - Book chapter

C2 - 24777804

SN - 978-1-4939-0605-5

T3 - Methods in Molecular Biology

SP - 257

EP - 271

BT - Plant isoprenoids

A2 - Rodríguez-Concepción, Manuel

PB - Springer

ER -

ID: 139972639