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Control analysis of lipid biosynthesis in tissue cultures from oil crops shows that flux control is shared between fatty acid synthesis and lipid assembly.

机译:油脂作物组织培养物中脂质生物合成的控制分析表明通量控制在脂肪酸合成和脂质组装之间共享。

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摘要

Top-Down (Metabolic) Control Analysis (TDCA) was used to examine, quantitatively, lipid biosynthesis in tissue cultures from two commercially important oil crops, olive (Olea europaea L.) and oil palm (Elaeis guineensis Jacq.). A conceptually simplified system was defined comprising two blocks of reactions: fatty acid synthesis (Block A) and lipid assembly (Block B), which produced and consumed, respectively, a common and unique system intermediate, cytosolic acyl-CoA. We manipulated the steady-state levels of the system intermediate by adding exogenous oleic acid and, using two independent assays, measured the effect of the addition on the system fluxes (J(A) and J(B)). These were the rate of incorporation of radioactivity: (i) through Block A from [1-(14)C]acetate into fatty acids and (ii) via Block B from [U-(14)C]glycerol into complex lipids respectively. The data showed that fatty acid formation (Block A) exerted higher control than lipid assembly (Block B) in both tissues with the following group flux control coefficients (C):(i) Oil palm: *C(J(TL))(BlkA)=0.64+/-0.05 and *C(J(TL))(BlkB)=0.36+/-0.05(ii) Olive: *C(J(TL))(BlkA)=0.57+/-0.10 and *C(J(TL))(BlkB)=0.43+/-0.10where *C indicates the group flux control coefficient over the lipid biosynthesis flux (J(TL)) and the subscripts BlkA and BlkB refer to defined blocks of the system, Block A and Block B. Nevertheless, because both parts of the lipid biosynthetic pathway exert significant flux control, we suggest strongly that manipulation of single enzyme steps will not affect product yield appreciably. The present study represents the first use of TDCA to examine the overall lipid biosynthetic pathway in any tissue, and its findings are of immediate academic and economic relevance to the yield and nutritional quality of oil crops.
机译:自上而下(代谢)对照分析(TDCA)用于定量检测两种商业上重要的油料作物,橄榄(Olea europaea L.)和油棕(Elaeis guineensis Jacq。)的组织培养物中的脂质生物合成。定义了概念上简化的系统,包括两个反应块:脂肪酸合成(图块A)和脂质组装(图块B),它们分别产生和消耗一种常见且独特的系统中间体胞质酰基CoA。我们通过添加外源油酸来操纵系统中间体的稳态水平,并使用两个独立的测定方法,测量了添加对系统通量的影响(J(A)和J(B))。这些是放射性结合的速率:(i)通过嵌段A从[1-(14)C]乙酸酯转化为脂肪酸,以及(ii)通过嵌段B从[U-(14)C]甘油转化为复杂脂质。数据表明,在以下两个组中,脂肪酸的形成(A区)比脂质装配(B区)具有更高的控制力,组通量控制系数(C)为:(i)油棕:* C(J(TL))( BlkA)= 0.64 +/- 0.05和* C(J(TL))(BlkB)= 0.36 +/- 0.05(ii)橄榄色:* C(J(TL))(BlkA)= 0.57 +/- 0.10和* C(J(TL))(BlkB)= 0.43 +/- 0.10其中* C表示对脂质生物合成通量(J(TL))的组通量控制系数,下标BlkA和BlkB表示系统的已定义模块,区块A和区块B。尽管如此,由于脂质生物合成途径的两个部分均发挥着重要的通量控制作用,因此我们强烈建议对单个酶步骤的操作不会明显影响产物的收率。本研究代表了TDCA首次用于检查任何组织中整体脂质生物合成途径的研究,其发现与油料作物的产量和营养品质具有直接的学术和经济意义。

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