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Variation on a Theme: the Structures and Biosynthesis of Specialized Fatty Acid Natural Products in Plants

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Journal Plant J
Date 2022 Jun 24
PMID 35749584
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Abstract

Plants are able to construct lineage-specific natural products from a wide array of their core metabolic pathways. Considerable progress has been made toward documenting and understanding, for example, phenylpropanoid natural products derived from phosphoenolpyruvate via the shikimate pathway, terpenoid compounds built using isopentyl pyrophosphate, and alkaloids generated by the extensive modification of amino acids. By comparison, natural products derived from fatty acids have received little attention, except for unusual fatty acids in seed oils and jasmonate-like oxylipins. However, scattered but numerous reports show that plants are able to generate many structurally diverse compounds from fatty acids, including some with highly elaborate and unique structural features that have novel bioproduct functionalities. Furthermore, although recent work has shed light on multiple new fatty acid natural product biosynthesis pathways and products in diverse plant species, these discoveries have not been reviewed. The aims of this work, therefore, are to (i) review and systematize our current knowledge of the structures and biosynthesis of fatty acid-derived natural products that are not seed oils or jasmonate-type oxylipins, specifically, polyacetylenic, very-long-chain, and aromatic fatty acid-derived natural products, and (ii) suggest priorities for future investigative steps that will bring our knowledge of fatty acid-derived natural products closer to the levels of knowledge that we have attained for other phytochemical classes.

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References
1.
Pan Z, Baerson S, Wang M, Bajsa-Hirschel J, Rimando A, Wang X . A cytochrome P450 CYP71 enzyme expressed in Sorghum bicolor root hair cells participates in the biosynthesis of the benzoquinone allelochemical sorgoleone. New Phytol. 2018; 218(2):616-629. PMC: 5887931. DOI: 10.1111/nph.15037. View

2.
Negri R . Polyacetylenes from terrestrial plants and fungi: Recent phytochemical and biological advances. Fitoterapia. 2015; 106:92-109. DOI: 10.1016/j.fitote.2015.08.011. View

3.
Ohlrogge J, Thrower N, Mhaske V, Stymne S, Baxter M, Yang W . PlantFAdb: a resource for exploring hundreds of plant fatty acid structures synthesized by thousands of plants and their phylogenetic relationships. Plant J. 2018; 96(6):1299-1308. DOI: 10.1111/tpj.14102. View

4.
Haslam T, Kunst L . Extending the story of very-long-chain fatty acid elongation. Plant Sci. 2013; 210:93-107. DOI: 10.1016/j.plantsci.2013.05.008. View

5.
Nam J, Kappock T . Cloning and transcriptional analysis of Crepis alpina fatty acid desaturases affecting the biosynthesis of crepenynic acid. J Exp Bot. 2007; 58(6):1421-32. DOI: 10.1093/jxb/erm005. View