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Engineering an Oilseed Crop for Hyper-accumulation of Carotenoids in the Seeds Without Using a Traditional Marker Gene

Overview
Journal Plant Cell Rep
Publisher Springer
Date 2022 Jun 24
PMID 35748890
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Abstract

Ketocarotenoids were synthesized successfully in Camelina sativa seeds by genetic modification without using a traditional selection marker genes. This method provided an interesting tool for metabolic engineering of seed crops. Camelina sativa (L.) Crantz is an important oil crop with many excellent agronomic traits. This model oil plant has been exploited to accumulate value-added bioproducts using genetic manipulation that depends on antibiotic- or herbicide-based selection marker genes (SMG), one of the major concerns for genetically modified foods. Here we reported metabolic engineering of C. sativa to synthesize red ketocarotenoids that could serve as a reporter to visualize transgenic events without using a traditional SMG. Overexpression of a non-native β-carotene ketolase gene coupled with three other carotenogenous genes (phytoene synthase, β-carotene hydroxylase, and Orange) in C. sativa resulted in production of red seeds that were visibly distinguishable from the normal yellow ones. Constitutive expression of the transgenes led to delayed plant development and seed germination. In contrast, seed-specific transformants demonstrated normal growth and seed germination despite the accumulation of up to 70-fold the level of carotenoids in the seeds compared to the controls, including significant amounts of astaxanthin and keto-lutein. As a result, the transgenic seed oils exhibited much higher antioxidant activity. No significant changes were found in the profiles of fatty acids between transgenic and control seeds. This study provided an interesting tool for metabolic engineering of seed crops without using a disputed SMG.

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References
1.
Benfey P, Chua N . The Cauliflower Mosaic Virus 35S Promoter: Combinatorial Regulation of Transcription in Plants. Science. 1990; 250(4983):959-66. DOI: 10.1126/science.250.4983.959. View

2.
Cooper D . Carotenoids in health and disease: recent scientific evaluations, research recommendations and the consumer. J Nutr. 2004; 134(1):221S-224S. DOI: 10.1093/jn/134.1.221S. View

3.
Cunningham Jr F, Gantt E . A study in scarlet: enzymes of ketocarotenoid biosynthesis in the flowers of Adonis aestivalis. Plant J. 2005; 41(3):478-92. DOI: 10.1111/j.1365-313X.2004.02309.x. View

4.
Cunningham Jr F, Gantt E . Elucidation of the pathway to astaxanthin in the flowers of Adonis aestivalis. Plant Cell. 2011; 23(8):3055-69. PMC: 3180810. DOI: 10.1105/tpc.111.086827. View

5.
Delgado-Vargas F, Jimenez A, Paredes-Lopez O . Natural pigments: carotenoids, anthocyanins, and betalains--characteristics, biosynthesis, processing, and stability. Crit Rev Food Sci Nutr. 2000; 40(3):173-289. DOI: 10.1080/10408690091189257. View