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Engineering industrial fatty acids in oilseeds 被引量:2

Engineering industrial fatty acids in oilseeds
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摘要 More than 300 types of modified fatty acids (mFA) are produced in triacylglycerols (TAG) by various plant species, with many of these unusual structures rendering unique physical and chemical properties that are desirable for a variety of bio-based industrial uses. Attempts to produce these mFA in crop species have thus far failed to reach the desired levels of production and highlighted the need to better understand how fatty acids are synthesized and accumulated in seed oils. In this review we discuss how some of the progress made in recent years, such as the improved TAG synthesis model to include acyl editing and new enzymes such as PDCT, may be utilized to achieve the goal of effectively modifying plant oils for industrial uses. Co-expressing several key enzymes may circumvent the bottlenecks for the accumulation of mFA in TAG through efficient removal of mFA from phosphatidylchofine. Other approaches include the prevention of feedback inhibition of fatty acid synthesis and improving primary enzyme activity in host transgenic plants. In addition, genomic approaches are providing unprecedented power to discover more factors that may facilitate engineering mFA in oilseeds. Based on the results of the last 20 years, creating a high mFA accumulating plant will not be done by simply inserting one or two genes; it is necessary to stack genes encoding enzymes with favorable kinetic activity or specificity along with additional complementary transgenes in optimized plant backgrounds to produce industrial fatty acids at desirable levels. Finally, we discuss the potential of Camelina as an industrial oilseed platform. More than 300 types of modified fatty acids (mFA) are produced in triacylglycerols (TAG) by various plant species, with many of these unusual structures rendering unique physical and chemical properties that are desirable for a variety of bio-based industrial uses. Attempts to produce these mFA in crop species have thus far failed to reach the desired levels of production and highlighted the need to better understand how fatty acids are synthesized and accumulated in seed oils. In this review we discuss how some of the progress made in recent years, such as the improved TAG synthesis model to include acyl editing and new enzymes such as PDCT, may be utilized to achieve the goal of effectively modifying plant oils for industrial uses. Co-expressing several key enzymes may circumvent the bottlenecks for the accumulation of mFA in TAG through efficient removal of mFA from phosphatidylchofine. Other approaches include the prevention of feedback inhibition of fatty acid synthesis and improving primary enzyme activity in host transgenic plants. In addition, genomic approaches are providing unprecedented power to discover more factors that may facilitate engineering mFA in oilseeds. Based on the results of the last 20 years, creating a high mFA accumulating plant will not be done by simply inserting one or two genes; it is necessary to stack genes encoding enzymes with favorable kinetic activity or specificity along with additional complementary transgenes in optimized plant backgrounds to produce industrial fatty acids at desirable levels. Finally, we discuss the potential of Camelina as an industrial oilseed platform.
出处 《Frontiers in Biology》 CAS CSCD 2013年第3期323-332,共10页 生物学前沿(英文版)
关键词 Camelina metabolic engineering modified fatty acids OILSEEDS triacylglycerol biosynthesis Camelina, metabolic engineering, modified fatty acids, oilseeds, triacylglycerol biosynthesis
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  • 1Andre C, Haslam R P, Shanklin J (2012). Feedback regulation of plastidic acetyl-CoA carboxylase by 18: I-acyl carrier protein in Brassica napus. Proc Nat! Acad Sci USA,Online Available June 4, 2012.
  • 2Bafor M, Smith M A, Jonsson L, Stobart K, Stymne S (1991). Ricinoleic acid biosynthesis and triacylglycero1 assembly in microsomal preparations from developing castor-bean (Ricinus communis) endosperm. Biochem J, 280(Pt2): 507-514.
  • 3Bao X, Katz S, Pollard M, Oh1rogge J (2002). Carbocyclic fatty acids in plants: biochemical and molecular genetic characterization of cyclopropane fatty acid synthesis of Sterculiafoetida. Proc Nat! Acad Sci USA, 99(10): 7172-7177.
  • 4Bates P D, Browse J (2011). The pathway of triacylglycero1 synthesis through phosphatidylcholine in Arabidopsis produces a bottleneck for the accumulation of unusual fatty acids in transgenic seeds. Plant J, 68(3): 387-399.
  • 5Bates P D, Durrett T P, Ohlrogge J B, Pollard M (2009). Analysis of acyl fluxes through multiple pathways of triacylglycerol synthesis in developing soybean embryos. Plant Physiol, 150(1): 55-72.
  • 6Bates P D, Ohlrogge J B, Pollard M (2007). Incorporation of newly synthesized fatty acids into cytosolic glycerolipids in pea leaves occurs via acyl editing. J Bioi Chern, 282(43): 31206-31216.
  • 7Beilstein M A, AI-Shehbaz I A, Kellogg E A (2006). Brassicaceae phylogeny and trichome evolution. Am J Bot, 93(4): 607-619.
  • 8Broadwater J A, Whittle E, Shanklin J (2002). Desaturation and hydroxylation. Residues 148 and 324 of Arabidopsis FAD2, in addition to substrate chain length, exert a major influence in partitioning of catalytic specificity. J Bioi Chern, 277(18): 15613- 15620.
  • 9Broun P, Somerville C (1997). Accumulation of ricinoleic, lesquerolic, and densipolic acids in seeds of transgenic Arabidopsis plants that express a fatty acyl hydroxylase cDNA from castor bean. Plant Physiol, 113(3): 933-942.
  • 10Brown A P, Kroon J T, Swarbreck D, Febrer M, Larson T R, Graham I A, Caccamo M, Siabas A R (2012). Tissue-specific whole transcriptome sequencing in castor, directed at understanding triacylglycerollipid biosynthetic pathways. PLoS ONE, 7(2): e30100.

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