METABOLIC EVIDENCE FOR THE INVOLVEMENT OF A DELTA(4)-PALMITOYL-ACYL CARRIER PROTEIN DESATURASE IN PETROSELINIC ACID SYNTHESIS IN CORIANDER ENDOSPERM AND TRANSGENIC TOBACCO CELLS

被引:68
作者
CAHOON, EB [1 ]
OHLROGGE, JB [1 ]
机构
[1] MICHIGAN STATE UNIV,DEPT BOT & PLANT PATHOL,E LANSING,MI 48824
关键词
D O I
10.1104/pp.104.3.827
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
We have previously demonstrated that the double bond of petroselinic acid (18:1 Delta(6cis)) in coriander (Coriandrum safivum L.) seed results from the activity of a 36-kD desaturase that is structurally related to the Delta(9)-stearoyl-acyl carrier protein (ACP) desaturase (E.B. Cahoon, J. Shanklin, J.B. Ohlrogge [1992] Proc Natl Acad Sci USA 89: 11184-11188). To further characterize the biosynthetic pathway of this unusual fatty acid, C-14-labeling experiments were conducted using developing endosperm of coriander. Studies were also performed using suspension cultures of transgenic tobacco (Nicotiana tabacum L.) that express the coriander 36-kD desaturase, and as a result produce petroselinic acid and Delta(4)-hexadecenoic acid. When supplied exogenously to coriander endosperm slices, [1-C-14]palmitic acid and stearic acid were incorporated into glycerolipids but were not converted to petroselinic acid. This suggested that petroselinic acid is not formed by the desaturation of a fatty acid bound to a glycerolipid or by reactions involving acyl-coenzyme As (CoA). Instead, evidence was most consistent with an acyl-ACP route of petroselinic acid synthesis. For example, the exogenous feeding of [1-C-14]lauric acid and myristic acid to coriander endosperm slices resulted in the incorporation of the radiolabels into long-chain fatty acids, including primarily petroselinic acid, presumably through acyl-ACP-associated reactions. In addition, using an in vitro fatty acid biosynthetic system, homogenates of coriander endosperm incorporated [2-C-14]malonyl-CoA into petroselinic acid, of which a portion was detected in a putative acyl-ACP fraction. Furthermore, analysis of transgenic tobacco suspension cultures expressing the coriander 36-kD desaturase revealed significant amounts of petroselinic acid and Delta(4)-hexadecenoic acid in the acyl-ACP pool of these cells. Also presented is evidence derived from [U-C-14]nonanoic acid labeling of coriander endosperm, which demonstrates that the coriander 36-kD desaturase positions double bonds relative to the carboxyl end of acyl-ACP substrates. The data obtained in these studies are rationalized in terms of a biosynthetic pathway of petroselinic acid involving the Delta(4) desaturation of palmitoyl-ACP by the 36-kD desaturase followed by two-carbon elongation of the resulting Delta(4)-hexadecenoyl-ACP.
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页码:827 / 837
页数:11
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