Rol genes enhance content of artemisinin and other secondary metabolites in Shennong hybrid of Artemisia annua

被引:5
作者
Zafar, Sara [1 ]
Dilshad, Erum [2 ]
Ismail, Hammad [3 ]
Rizvi, Chahat Batool [1 ]
Mirza, Bushra [1 ]
机构
[1] Quaid I Azam Univ, Fac Biol Sci, Dept Biochem, Islamabad 44000, Pakistan
[2] CUST, Fac Hlth & Life Sci, Dept Bioinformat & Biosci, Islamabad 44000, Pakistan
[3] Univ Gujarat, Dept Biochem & Mol Biol, Gujrat 50700, Pakistan
关键词
Artemisia annua L; artemisinin; genetic transformation; Hyb1209r; rol genes; TRANSGENIC TOBACCO; ANTIOXIDANT; EXPRESSION; FLAVONOIDS; ONCOGENE; MALARIA; PLANTS; SENSITIVITY; AUXIN; L;
D O I
10.1016/j.chmed.2018.11.002
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
Objective: Artemisia annua is the chief source of artemisinin, a potent antimalarial agent, in which other bioactive phytochemicals are also present. Due to low levels of bioactive compounds including artemisinin and flavonoids, it is necessary to increase the level of the secondary metabolites by regulating the expression of rol genes in the plant. Methods: A hybrid variety of A. annua (Hyb1209r, Shennong) developed by the Centre for Novel Agricultural Products, University of York, UK, was selected to produce transgenics of rolB and rolC genes. Genetic transformation was carried out via Agrobacterium tumefaciens GV3101 harboring rolB and rolC genes of Agrobacterium rhizogenes cloned separately. HPLC was used for the qualitative and quantitative analysis of flavonoids and artemisinin. Furthermore, thin layer chromatography (TLC) was also used to analyze artemisinin content. Results: Comparative analysis via HPLC revealed considerable enhancement in the phytochemical content of transgenic A. annua plants as compared to the wild type plant. Transgenics of rolB gene showed an average increase of 321% in rutin, 97.2% in caffeic acid, and 218.4% in myricetin, respectively. In the case of rolC gene transgenics, an average increase of 197.5% in rutin, 76.3% in caffeic acid, and 209.3% in myricetin was observed. Transgenics of rolB and rolC genes showed a 14.3%-28.6% and 2.8%-12.7% increase in artemisinin content respectively by HPLC analysis. TLC analysis showed that an average 142.2% and 110.2% enhancement in artemisinin for rolB and rolC transgenics respectively, compared with the wild type. An enhanced production of total flavonoids (average 30.2% and 25.5% increase in rolB and rolC transgenics, respectively) and total phenolics (average 34.3% and 25.8% increase in rolB and rolC transgenics, respectively) was observed as a result of transformation. Transformed A. annua plants showed improved free radical scavenging activity (average 46.5% and 29.1% increase in rolB and rolC transgenics, respectively) and total reducing power (average 32.7% and 26.4% increase in rolB and rolC transgenics, respectively) compared with untransformed plant. Conclusion: rolB and rolC genes were effective for developing A. annua plants with an enhanced level of phytochemicals. (C) 2019 Tianjin Press of Chinese Herbal Medicines. Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:209 / 215
页数:7
相关论文
共 50 条
[21]   Enhancement of artemisinin content and relative expression of genes of artemisinin biosynthesis in Artemisia annua by exogenous MeJA treatment [J].
Xiang, Lien ;
Zhu, Shunqin ;
Zhao, Tengfei ;
Zhang, Man ;
Liu, Wanhong ;
Chen, Min ;
Lan, Xiaozhong ;
Liao, Zhihua .
PLANT GROWTH REGULATION, 2015, 75 (02) :435-441
[22]   Cellular engineering of Artemisia annua and Artemisia dubia with the rol ABC genes for enhanced production of potent anti-malarial drug artemisinin [J].
Bushra Hafeez Kiani ;
John Suberu ;
Bushra Mirza .
Malaria Journal, 15
[23]   Enhancement of artemisinin content and relative expression of genes of artemisinin biosynthesis in Artemisia annua by exogenous MeJA treatment [J].
Lien Xiang ;
Shunqin Zhu ;
Tengfei Zhao ;
Man Zhang ;
Wanhong Liu ;
Min Chen ;
Xiaozhong Lan ;
Zhihua Liao .
Plant Growth Regulation, 2015, 75 :435-441
[24]   Effect of Rol Genes on Polyphenols Biosynthesis in Artemisia annua and Their Effect on Antioxidant and Cytotoxic Potential of the Plant [J].
Dilshad, Erum ;
Zafar, Sara ;
Ismail, Hammad ;
Waheed, Mohammad Tahir ;
Cusido, Rosa Maria ;
Palazon, Javier ;
Mirza, Bushra .
APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2016, 179 (08) :1456-1468
[25]   New Artemisia annua hybrids with high artemisinin content [J].
Simonnet, X. ;
Quennoz, M. ;
Carlen, C. .
PROCEEDINGS OF THE INTERNATIONAL SYMPOSIUM ON ASIAN PLANTS WITH UNIQUE HORTICULTURAL POTENTIAL, 2008, 769 :371-373
[26]   Differentially Expressed Genes during Contrasting Growth Stages of Artemisia annua for Artemisinin Content [J].
Nair, Priya ;
Misra, Amita ;
Singh, Alka ;
Shukla, Ashutosh K. ;
Gupta, Madan M. ;
Gupta, Anil K. ;
Gupta, Vikrant ;
Khanuja, Suman P. S. ;
Shasany, Ajit K. .
PLOS ONE, 2013, 8 (04)
[27]   Transgenic approach to increase artemisinin content in Artemisia annua L. [J].
Tang, Kexuan ;
Shen, Qian ;
Yan, Tingxiang ;
Fu, Xueqing .
PLANT CELL REPORTS, 2014, 33 (04) :605-615
[28]   Transgenic approach to increase artemisinin content in Artemisia annua L. [J].
Kexuan Tang ;
Qian Shen ;
Tingxiang Yan ;
Xueqing Fu .
Plant Cell Reports, 2014, 33 :605-615
[29]   Breeding strategy for genetic improvement up to four generations in relation to artemisinin with canopy and other secondary metabolites in Artemisia annua L [J].
Paul, Shilpi ;
Khanuja, Suman P. S. ;
Gupta, Madan M. .
INDUSTRIAL CROPS AND PRODUCTS, 2014, 56 :67-73
[30]   Co-overexpression of the HMGR and FPS genes enhances artemisinin content in Artemisia annua L. [J].
Wang, Yueyue ;
Jing, Fuyuan ;
Yu, Shuoye ;
Chen, Yunfei ;
Wang, Tao ;
Liu, Pin ;
Wang, Guofeng ;
Sun, Xiaofen ;
Tang, Kexuan .
JOURNAL OF MEDICINAL PLANTS RESEARCH, 2011, 5 (15) :3396-3403