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果实角质层的分离与生物物理研究。

Isolation and biophysical study of fruit cuticles.

作者信息

Chatterjee Subhasish, Sarkar Sayantani, Oktawiec Julia, Mao Zhantong, Niitsoo Olivia, Stark Ruth E

机构信息

Department of Chemistry, City College of New York, City University of New York Graduate Center and Institute for Macromolecular Assemblies, USA.

出版信息

J Vis Exp. 2012 Mar 30(61):3529. doi: 10.3791/3529.

Abstract

The cuticle, a hydrophobic protective layer on the aerial parts of terrestrial plants, functions as a versatile defensive barrier to various biotic and abiotic stresses and also regulates water flow from the external environment. A biopolyester (cutin) and long-chain fatty acids (waxes) form the principal structural framework of the cuticle; the functional integrity of the cuticular layer depends on the outer 'epicuticular' layer as well as the blend consisting of the cutin biopolymer and 'intracuticular' waxes. Herein, we describe a comprehensive protocol to extract waxes exhaustively from commercial tomato (Solanum lycopersicum) fruit cuticles or to remove epicuticular and intracuticular waxes sequentially and selectively from the cuticle composite. The method of Jetter and Schäffer (2001) was adapted for the stepwise extraction of epicuticular and intracuticular waxes from the fruit cuticle. To monitor the process of sequential wax removal, solid-state cross-polarization magic-angle-spinning (CPMAS) (13)C NMR spectroscopy was used in parallel with atomic force microscopy (AFM), providing molecular-level structural profiles of the bulk materials complemented by information on the microscale topography and roughness of the cuticular surfaces. To evaluate the cross-linking capabilities of dewaxed cuticles from cultivated wild-type and single-gene mutant tomato fruits, MAS (13)C NMR was used to compare the relative proportions of oxygenated aliphatic (CHO and CH(2)O) chemical moieties. Exhaustive dewaxing by stepwise Soxhlet extraction with a panel of solvents of varying polarity provides an effective means to isolate wax moieties based on the hydrophobic characteristics of their aliphatic and aromatic constituents, while preserving the chemical structure of the cutin biopolyester. The mechanical extraction of epicuticular waxes and selective removal of intracuticular waxes, when monitored by complementary physical methodologies, provides an unprecedented means to investigate the cuticle assembly: this approach reveals the supramolecular organization and structural integration of various types of waxes, the architecture of the cutin-wax matrix, and the chemical composition of each constituent. In addition, solid-state (13)C NMR reveals differences in the relative numbers of CHO and CH(2)O chemical moieties for wild-type and mutant red ripe tomato fruits. The NMR techniques offer exceptional tools to fingerprint the molecular structure of cuticular materials that are insoluble, amorphous, and chemically heterogeneous. As a noninvasive surface-selective imaging technique, AFM furnishes an effective and direct means to probe the structural organization of the cuticular assembly on the nm-μm length scale.

摘要

角质层是陆生植物地上部分的一层疏水保护层,作为一种多功能的防御屏障,抵御各种生物和非生物胁迫,同时调节来自外部环境的水分流动。一种生物聚酯(角质)和长链脂肪酸(蜡质)构成了角质层的主要结构框架;角质层的功能完整性取决于外层的“表皮”层以及由角质生物聚合物和“角质层内”蜡质组成的混合物。在此,我们描述了一种综合方案,用于从商业番茄(茄属番茄)果实角质层中彻底提取蜡质,或从角质层复合物中依次选择性地去除表皮蜡质和角质层内蜡质。Jetter和Schäffer(2001年)的方法被用于从果实角质层中逐步提取表皮蜡质和角质层内蜡质。为了监测蜡质依次去除的过程,固态交叉极化魔角旋转(CPMAS)(13)C核磁共振光谱与原子力显微镜(AFM)并行使用,提供了 bulk材料的分子水平结构轮廓,并辅以有关角质层表面微观地形和粗糙度的信息。为了评估栽培野生型和单基因突变番茄果实脱蜡角质层的交联能力,使用MAS(13)C NMR比较氧化脂肪族(CHO和CH(2)O)化学基团的相对比例。通过用一组具有不同极性的溶剂进行分步索氏提取来彻底脱蜡,这提供了一种基于蜡质脂肪族和芳香族成分的疏水特性来分离蜡质部分的有效方法,同时保留角质生物聚酯的化学结构。当通过互补的物理方法进行监测时,表皮蜡质的机械提取和角质层内蜡质的选择性去除提供了一种前所未有的手段来研究角质层组装:这种方法揭示了各种类型蜡质的超分子组织和结构整合、角质 - 蜡质基质的结构以及每个成分的化学组成。此外,固态(13)C NMR揭示了野生型和突变型红熟番茄果实中CHO和CH(2)O化学基团相对数量的差异。核磁共振技术提供了出色的工具来表征不溶性、无定形且化学性质不均一的角质层材料的分子结构。作为一种非侵入性的表面选择性成像技术,原子力显微镜提供了一种有效且直接的手段,用于在纳米 - 微米长度尺度上探测角质层组装的结构组织。

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