Cargando…

Elevation of artemisinin content by co-transformation of artemisinin biosynthetic pathway genes and trichome-specific transcription factors in Artemisia annua

Artemisinin, derived from Artemisia annua, is currently used as the first-line treatment for malaria. However, wild-type plants have a low artemisinin biosynthesis rate. Although yeast engineering and plant synthetic biology have shown promising results, plant genetic engineering is considered the m...

Descripción completa

Detalles Bibliográficos
Autores principales: Hassani, Danial, Taheri, Ayat, Fu, Xueqing, Qin, Wei, Hang, Liu, Ma, Yanan, Tang, Kexuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9988928/
https://www.ncbi.nlm.nih.gov/pubmed/36895880
http://dx.doi.org/10.3389/fpls.2023.1118082
_version_ 1784901673802530816
author Hassani, Danial
Taheri, Ayat
Fu, Xueqing
Qin, Wei
Hang, Liu
Ma, Yanan
Tang, Kexuan
author_facet Hassani, Danial
Taheri, Ayat
Fu, Xueqing
Qin, Wei
Hang, Liu
Ma, Yanan
Tang, Kexuan
author_sort Hassani, Danial
collection PubMed
description Artemisinin, derived from Artemisia annua, is currently used as the first-line treatment for malaria. However, wild-type plants have a low artemisinin biosynthesis rate. Although yeast engineering and plant synthetic biology have shown promising results, plant genetic engineering is considered the most feasible strategy, but it is also constrained by the stability of progeny development. Here we constructed three independent unique overexpressing vectors harboring three mainstream artemisinin biosynthesis enzymes HMGR, FPS, and DBR2, as well as two trichomes-specific transcription factors AaHD1 and AaORA. The simultaneous co-transformation of these vectors by Agrobacterium resulted in the successful increase of the artemisinin content in T0 transgenic lines by up to 3.2-fold (2.72%) leaf dry weight compared to the control plants. We also investigated the stability of transformation in progeny T1 lines. The results indicated that the transgenic genes were successfully integrated, maintained, and overexpressed in some of the T1 progeny plants’ genomes, potentially increasing the artemisinin content by up to 2.2-fold (2.51%) leaf dry weight. These results indicated that the co-overexpression of multiple enzymatic genes and transcription factors via the constructed vectors provided promising results, which could be used to achieve the ultimate goal of a steady supply of artemisinin at affordable prices around the world.
format Online
Article
Text
id pubmed-9988928
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-99889282023-03-08 Elevation of artemisinin content by co-transformation of artemisinin biosynthetic pathway genes and trichome-specific transcription factors in Artemisia annua Hassani, Danial Taheri, Ayat Fu, Xueqing Qin, Wei Hang, Liu Ma, Yanan Tang, Kexuan Front Plant Sci Plant Science Artemisinin, derived from Artemisia annua, is currently used as the first-line treatment for malaria. However, wild-type plants have a low artemisinin biosynthesis rate. Although yeast engineering and plant synthetic biology have shown promising results, plant genetic engineering is considered the most feasible strategy, but it is also constrained by the stability of progeny development. Here we constructed three independent unique overexpressing vectors harboring three mainstream artemisinin biosynthesis enzymes HMGR, FPS, and DBR2, as well as two trichomes-specific transcription factors AaHD1 and AaORA. The simultaneous co-transformation of these vectors by Agrobacterium resulted in the successful increase of the artemisinin content in T0 transgenic lines by up to 3.2-fold (2.72%) leaf dry weight compared to the control plants. We also investigated the stability of transformation in progeny T1 lines. The results indicated that the transgenic genes were successfully integrated, maintained, and overexpressed in some of the T1 progeny plants’ genomes, potentially increasing the artemisinin content by up to 2.2-fold (2.51%) leaf dry weight. These results indicated that the co-overexpression of multiple enzymatic genes and transcription factors via the constructed vectors provided promising results, which could be used to achieve the ultimate goal of a steady supply of artemisinin at affordable prices around the world. Frontiers Media S.A. 2023-02-21 /pmc/articles/PMC9988928/ /pubmed/36895880 http://dx.doi.org/10.3389/fpls.2023.1118082 Text en Copyright © 2023 Hassani, Taheri, Fu, Qin, Hang, Ma and Tang https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Hassani, Danial
Taheri, Ayat
Fu, Xueqing
Qin, Wei
Hang, Liu
Ma, Yanan
Tang, Kexuan
Elevation of artemisinin content by co-transformation of artemisinin biosynthetic pathway genes and trichome-specific transcription factors in Artemisia annua
title Elevation of artemisinin content by co-transformation of artemisinin biosynthetic pathway genes and trichome-specific transcription factors in Artemisia annua
title_full Elevation of artemisinin content by co-transformation of artemisinin biosynthetic pathway genes and trichome-specific transcription factors in Artemisia annua
title_fullStr Elevation of artemisinin content by co-transformation of artemisinin biosynthetic pathway genes and trichome-specific transcription factors in Artemisia annua
title_full_unstemmed Elevation of artemisinin content by co-transformation of artemisinin biosynthetic pathway genes and trichome-specific transcription factors in Artemisia annua
title_short Elevation of artemisinin content by co-transformation of artemisinin biosynthetic pathway genes and trichome-specific transcription factors in Artemisia annua
title_sort elevation of artemisinin content by co-transformation of artemisinin biosynthetic pathway genes and trichome-specific transcription factors in artemisia annua
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9988928/
https://www.ncbi.nlm.nih.gov/pubmed/36895880
http://dx.doi.org/10.3389/fpls.2023.1118082
work_keys_str_mv AT hassanidanial elevationofartemisinincontentbycotransformationofartemisininbiosyntheticpathwaygenesandtrichomespecifictranscriptionfactorsinartemisiaannua
AT taheriayat elevationofartemisinincontentbycotransformationofartemisininbiosyntheticpathwaygenesandtrichomespecifictranscriptionfactorsinartemisiaannua
AT fuxueqing elevationofartemisinincontentbycotransformationofartemisininbiosyntheticpathwaygenesandtrichomespecifictranscriptionfactorsinartemisiaannua
AT qinwei elevationofartemisinincontentbycotransformationofartemisininbiosyntheticpathwaygenesandtrichomespecifictranscriptionfactorsinartemisiaannua
AT hangliu elevationofartemisinincontentbycotransformationofartemisininbiosyntheticpathwaygenesandtrichomespecifictranscriptionfactorsinartemisiaannua
AT mayanan elevationofartemisinincontentbycotransformationofartemisininbiosyntheticpathwaygenesandtrichomespecifictranscriptionfactorsinartemisiaannua
AT tangkexuan elevationofartemisinincontentbycotransformationofartemisininbiosyntheticpathwaygenesandtrichomespecifictranscriptionfactorsinartemisiaannua