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Cyclopropane Fatty Acid Biosynthesis in Plants: Phylogenetic and Biochemical Analysis of Litchi Kennedy Pathway and Acyl Editing Cycle Genes

Overview
Journal Plant Cell Rep
Publisher Springer
Date 2018 Aug 8
PMID 30083958
Citations 1
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Abstract

This report describes the most extensive known gene discovery study from an oilseed that produces cyclopropane fatty acids, a novel industrial feedstock. Nature contains hundreds of examples of plant species that accumulate unusual fatty acids in seed triacylglycerols (TAG). Although lipid metabolic genes have been cloned from several exotic plant species, the underlying mechanisms that control the production of novel TAG species are still poorly understood. One such class of unusual fatty acids contain in-chain cyclopropane or cyclopropene functionalities that confer chemical and physical properties useful in the synthesis of lubricants, cosmetics, dyes, coatings, and other types of valuable industrial feedstocks. These cyclopropyl fatty acids, or CPFAs, are only produced by a small number of plants, primarily in the order Malvidae. Litchi chinensis is one member of this group; its seed oil contains at least 40 mol% CPFAs. Several genes, representing early, middle, and late steps in the Litchi fatty acid and TAG biosynthetic pathways have been cloned and characterized here. The tissue-specific and developmental transcript expression profiles and biochemical characteristics observed indicate which enzymes might play a larger role in Litchi seed TAG biosynthesis and accumulation. These data, therefore, provide insights into which genes likely represent the best targets for either silencing or overexpression, in future metabolic engineering strategies aimed at altering CPFA content.

Citing Articles

Exploring engineering strategies that enhance de novo production of exotic cyclopropane fatty acids in Saccharomyces cerevisiae.

Jiang W, Peng H, He L, Lesma-Amaro R, Haritos V Biotechnol J. 2024; 19(2):e2300694.

PMID: 38403410 PMC: 11475713. DOI: 10.1002/biot.202300694.

References
1.
Yu X, Prakash R, Sweet M, Shanklin J . Coexpressing Escherichia coli cyclopropane synthase with Sterculia foetida Lysophosphatidic acid acyltransferase enhances cyclopropane fatty acid accumulation. Plant Physiol. 2013; 164(1):455-65. PMC: 3875821. DOI: 10.1104/pp.113.230953. View

2.
Xie Y, Wu G, Tang J, Luo R, Patterson J, Liu S . SOAPdenovo-Trans: de novo transcriptome assembly with short RNA-Seq reads. Bioinformatics. 2014; 30(12):1660-6. DOI: 10.1093/bioinformatics/btu077. View

3.
Shockey J, Mason C, Gilbert M, Cao H, Li X, Cahoon E . Development and analysis of a highly flexible multi-gene expression system for metabolic engineering in Arabidopsis seeds and other plant tissues. Plant Mol Biol. 2015; 89(1-2):113-26. DOI: 10.1007/s11103-015-0355-5. View

4.
Wickramarathna A, Siloto R, Mietkiewska E, Singer S, Pan X, Weselake R . Heterologous expression of flax PHOSPHOLIPID:DIACYLGLYCEROL CHOLINEPHOSPHOTRANSFERASE (PDCT) increases polyunsaturated fatty acid content in yeast and Arabidopsis seeds. BMC Biotechnol. 2015; 15:63. PMC: 4486708. DOI: 10.1186/s12896-015-0156-6. View

5.
Badami R, Patil K . Structure and occurrence of unusual fatty acids in minor seed oils. Prog Lipid Res. 1980; 19(3-4):119-53. DOI: 10.1016/0163-7827(80)90002-8. View