Overexpression of the Phosphatidylcholine: Diacylglycerol Cholinephosphotransferase (PDCT) gene increases carbon flux toward triacylglycerol (TAG) synthesis in Camelina sativa seeds

亚麻荠 二酰甘油激酶 磷脂酰胆碱 生物化学 茶花 化学 焊剂(冶金) 基因 磷脂 细胞生物学 生物 食品科学 有机化学 生态学 蛋白激酶C 作物
作者
Hesham Abdullah,Na Pang,Benjamin Chilcoat,Yair Shachar‐Hill,Danny J. Schnell,Om Parkash Dhankher
出处
期刊:Plant Physiology and Biochemistry [Elsevier]
卷期号:208: 108470-108470
标识
DOI:10.1016/j.plaphy.2024.108470
摘要

Camelina sativa has considerable promise as a dedicated industrial oilseed crop. Its oil-based blends have been tested and approved as liquid transportation fuels. Previously, we utilized metabolomic and transcriptomic profiling approaches and identified metabolic bottlenecks that control oil production and accumulation in seeds. Accordingly, we selected candidate genes for the metabolic engineering of Camelina. Here we targeted the overexpression of Camelina PDCT gene, which encodes the phosphatidylcholine: diacylglycerol cholinephosphotransferase enzyme. PDCT is proposed as a gatekeeper responsible for the interconversions of diacylglycerol (DAG) and phosphatidylcholine (PC) pools and has the potential to increase the levels of TAG in seeds. To confirm whether increased CsPDCT activity in developing Camelina seeds would enhance carbon flux toward increased levels of TAG and alter oil composition, we overexpressed the CsPDCT gene under the control of the seed-specific phaseolin promoter. Camelina transgenics exhibited significant increases in seed yield (19–56%), seed oil content (9–13%), oil yields per plant (32–76%), and altered polyunsaturated fatty acid (PUFA) content compared to their parental wild-type (WT) plants. Results from [14C] acetate labeling of Camelina developing embryos expressing CsPDCT in culture indicated increased rates of radiolabeled fatty acid incorporation into glycerolipids (up to 64%, 59%, and 43% higher in TAG, DAG, and PC, respectively), relative to WT embryos. We conclude that overexpression of PDCT appears to be a positive strategy to achieve a synergistic effect on the flux through the TAG synthesis pathway, thereby further increasing oil yields in Camelina.
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