Toward production of jet fuel functionality in oilseeds: identification of FatB acyl-acyl carrier protein thioesterases and evaluation of combinatorial expression strategies in Camelina seeds

被引:65
作者
Kim, Hae Jin [1 ,2 ]
Silva, Jillian E. [1 ,2 ]
Vu, Hieu Sy [1 ,2 ]
Mockaitis, Keithanne [3 ,4 ]
Nam, Jeong-Won [5 ]
Cahoon, Edgar B. [1 ,2 ]
机构
[1] Univ Nebraska, Dept Biochem, Lincoln, NE 68588 USA
[2] Univ Nebraska, Ctr Plant Sci Innovat, Lincoln, NE 68588 USA
[3] Indiana Univ, Dept Biol, Bloomington, IN 47405 USA
[4] Indiana Univ, Ctr Genom & Bioinformat, Bloomington, IN 47405 USA
[5] Donald Danforth Plant Sci Ctr, St Louis, MO 63132 USA
关键词
Camelina; Cuphea; FatB acyl-ACP thioesterase; jet fuel oilseed; medium-chain fatty acid; ACP THIOESTERASE; ACID BIOSYNTHESIS; CHAIN-LENGTH; OIL; LAURATE; SATIVA; ACYLTRANSFERASE; ACCUMULATION; ARABIDOPSIS; INDUSTRIAL;
D O I
10.1093/jxb/erv225
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Seeds of members of the genus Cuphea accumulate medium-chain fatty acids (MCFAs; 8: 0-14:0). MCFA- and palmitic acid-(16:0) rich vegetable oils have received attention for jet fuel production, given their similarity in chain length to Jet A fuel hydrocarbons. Studies were conducted to test genes, including those from Cuphea, for their ability to confer jet fuel-type fatty acid accumulation in seed oil of the emerging biofuel crop Camelina sativa. Transcriptomes from Cuphea viscosissima and Cuphea pulcherrima developing seeds that accumulate >90% of C8 and C10 fatty acids revealed three FatB cDNAs (CpuFatB3, CvFatB1, and CpuFatB4) expressed predominantly in seeds and structurally divergent from typical FatB thioesterases that release 16:0 from acyl carrier protein (ACP). Expression of CpuFatB3 and CvFatB1 resulted in Camelina oil with capric acid (10:0), and CpuFatB4 expression conferred myristic acid (14: 0) production and increased 16:0. Co-expression of combinations of previously characterized Cuphea and California bay FatBs produced Camelina oils with mixtures of C8-C16 fatty acids, but amounts of each fatty acid were less than obtained by expression of individual FatB cDNAs. Increases in lauric acid (12: 0) and 14: 0, but not 10: 0, in Camelina oil and at the sn-2 position of triacylglycerols resulted from inclusion of a coconut lysophosphatidic acid acyltransferase specialized for MCFAs. RNA interference (RNAi) suppression of Camelina beta-ketoacyl-ACP synthase II, however, reduced 12: 0 in seeds expressing a 12:0-ACP-specific FatB. Camelina lines presented here provide platforms for additional metabolic engineering targeting fatty acid synthase and specialized acyltransferases for achieving oils with high levels of jet fuel-type fatty acids.
引用
收藏
页码:4251 / 4265
页数:15
相关论文
共 67 条
[1]   SUBSTRATE SPECIFICITIES OF GLYCEROL ACYLATING ENZYMES FROM DEVELOPING EMBRYOS OF 2 CUPHEA SPECIES [J].
BAFOR, M ;
STYMNE, S .
PHYTOCHEMISTRY, 1992, 31 (09) :2973-2976
[2]   Fatty acid synthesis is inhibited by inefficient utilization of unusual fatty acids for glycerolipid assembly [J].
Bates, Philip D. ;
Johnson, Sean R. ;
Cao, Xia ;
Li, Jia ;
Nam, Jeong-Won ;
Jaworski, Jan G. ;
Ohlrogge, John B. ;
Browse, John .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2014, 111 (03) :1204-1209
[3]  
BLIGH EG, 1959, CAN J BIOCHEM PHYS, V37, P911
[4]   Metabolic engineering of hydroxy fatty acid production in plants: RcDGAT2 drives dramatic increases in ricinoleate levels in seed oil [J].
Burgal, Julie ;
Shockey, Jay ;
Lu, Chaofu ;
Dyer, John ;
Larson, Tony ;
Graham, Ian ;
Browse, John .
PLANT BIOTECHNOLOGY JOURNAL, 2008, 6 (08) :819-831
[5]   Engineering oilseeds for sustainable production of industrial and nutritional feedstocks: solving bottlenecks in fatty acid flux [J].
Cahoon, Edgar B. ;
Shockey, Jay M. ;
Dietrich, Charles R. ;
Gidda, Satinder K. ;
Mullen, Robert T. ;
Dyer, John M. .
CURRENT OPINION IN PLANT BIOLOGY, 2007, 10 (03) :236-244
[6]   Conjugated fatty acids accumulate to high levels in phospholipids of metabolically engineered soybean and Arabidopsis seeds [J].
Cahoon, Edgar B. ;
Dietrich, Charles R. ;
Meyer, Knut ;
Damude, Howard G. ;
Dyer, John M. ;
Kinney, Anthony J. .
PHYTOCHEMISTRY, 2006, 67 (12) :1166-1176
[7]   Camelina (Camelina sativa (L.) Crantz): agronomic potential in Mediterranean environments and diversity for biofuel and food uses [J].
Campbell, M. C. ;
Rossi, A. F. ;
Erskine, W. .
CROP & PASTURE SCIENCE, 2013, 64 (04) :388-398
[8]  
Chang S. J., 1993, Plant Molecular Biology Reporter, V11, P113, DOI 10.1007/BF02670468
[9]  
Dehesh K, 2001, EUR J LIPID SCI TECH, V103, P688, DOI 10.1002/1438-9312(200110)103:10<688::AID-EJLT688>3.0.CO
[10]  
2-9