向日葵(Helianthus annuus)油体脂质组和蛋白质组。

Journal of Chemical Biology Pub Date : 2013-04-01 Epub Date: 2013-01-26 DOI:10.1007/s12154-012-0090-1
Samuel Furse, Susan Liddell, Catharine A Ortori, Huw Williams, D Cameron Neylon, David J Scott, David A Barrett, David A Gray
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引用次数: 42

摘要

本文报道了被称为油体(OB)的植物细胞器的分子谱、脂质组和蛋白质组。OB的非凡之处在于,它能够发挥其生物作用(储存甘油三酯),同时抵抗干燥(脱水)和发芽(再水化)过程中变化引起的物理压力。赋予OBs这种非凡物理稳定性的分子谱是使用(31)P/(1)H核磁共振(NMR)、高分辨率质谱和名义质量串联质谱(脂质组)和凝胶-电泳-色谱-串联质谱(蛋白质组)的组合来确定的。从小角中子散射实验中得到的物理证据支持了分离OBs过程的完整性。抑制脂肪酶活性是确定脂质组的关键。有确凿的证据表明,后者以磷脂酰胆碱(~ 60%)和磷脂酰肌醇(~ 20%)为主,还有各种其他头群(~ 20%)。表面单分子层的脂肪酸谱包括棕榈酸、亚油酸和油酸(2:1:0.25,(1)H NMR),仅痕量其他脂肪酸(C24:0, C22:0, C18:0, C18:3, C16:2);女士)。蛋白质组富含油蛋白(78%),其余的由角化红蛋白和甾体红蛋白组成。这些数据足够详细,可以为该细胞器的理解模型提供更新信息,并可用于在一系列分子生物学,生物技术和食品工业应用中告知此类成分的使用。本研究中用于分析脂质组的技术为植物细胞室的脂质谱提供了新的视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The lipidome and proteome of oil bodies from Helianthus annuus (common sunflower).

The lipidome and proteome of oil bodies from Helianthus annuus (common sunflower).

The lipidome and proteome of oil bodies from Helianthus annuus (common sunflower).

The lipidome and proteome of oil bodies from Helianthus annuus (common sunflower).

In this paper we report the molecular profiling, lipidome and proteome, of the plant organelle known as an oil body (OB). The OB is remarkable in that it is able to perform its biological role (storage of triglycerides) whilst resisting the physical stresses caused by changes during desiccation (dehydration) and germination (rehydration). The molecular profile that confers such extraordinary physical stability on OBs was determined using a combination of (31)P/(1)H nuclear magnetic resonance (NMR), high-resolution mass spectrometry and nominal mass-tandem mass spectrometry for the lipidome, and gel-electrophoresis-chromatography-tandem mass spectrometry for the proteome. The integrity of the procedure for isolating OBs was supported by physical evidence from small-angle neutron-scattering experiments. Suppression of lipase activity was crucial in determining the lipidome. There is conclusive evidence that the latter is dominated by phosphatidylcholine (∼60 %) and phosphatidylinositol (∼20 %), with a variety of other head groups (∼20 %). The fatty acid profile of the surface monolayer comprised palmitic, linoleic and oleic acids (2:1:0.25, (1)H NMR) with only traces of other fatty acids (C24:0, C22:0, C18:0, C18:3, C16:2; by MS). The proteome is rich in oleosins (78 %) with the remainder being made up of caleosins and steroleosins. These data are sufficiently detailed to inform an update of the understood model of this organelle and can be used to inform the use of such components in a range of molecular biological, biotechnological and food industry applications. The techniques used in this study for profiling the lipidome throw a new light on the lipid profile of plant cellular compartments.

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