首页> 外文期刊>Phytochemistry reviews: proceedings of the Phytochemical Society of Europe >Moving beyond the ubiquitous: the diversity and biosynthesis of specialty compounds in plant cuticular waxes
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Moving beyond the ubiquitous: the diversity and biosynthesis of specialty compounds in plant cuticular waxes

机译:超越普遍存在的:植物皮蜡中特种化合物的多样性和生物合成

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Cuticular waxes coat aerial plant surfaces to protect tissues against biotic and abiotic stress. The waxes are complex mixtures of fatty-acid-derived lipids formed on modular biosynthetic pathways, with varying chain lengths and oxygen functional groups. The waxes of most plant species contain C~(26)–C~(32)alcohols, aldehydes, alkanes, and fatty acids together with their alkyl esters, and comparisons between diverse wax mixtures have revealed matching chain length distributions between some of these compound classes. Based on such patterns, the biosynthetic pathways leading to the ubiquitous wax constituents were hypothesized early on, and most of these pathway hypotheses have since been confirmed by biochemical and molecular genetic studies in model species. However, the most abundant wax compounds on many species, including many important crop species, contain secondary functional groups and thus their biosynthesis differs at least in part from the ubiquitous wax compounds with which they co-occur. Here, we survey the chemical structures of these species-specific specialty wax compounds based on a comprehensive CAS SciFinder search and then review relevant reports on wax compositions to help develop and refine hypotheses for their biosynthesis. Across the plant kingdom, specialty wax compounds with one, two, and three secondary functional groups have been identified, with most studies focusing on Angiosperms. Where multiple specialty wax compounds were reported, they frequently occurred as homologous series and/or mixtures of isomers. Among these, it is now possible to recognize series of homologs with predominantly odd- or even-numbered chain lengths, and mixtures of isomers with functional groups on adjacent or on alternating carbon atoms. Using these characteristic molecular geometries of the co-occurring specialty compounds, they can be categorized and, based on the common structural patterns, mechanisms of biosynthesis may be predicted. It seems highly likely that mixtures of isomers with secondary functions on adjacent carbons arise from oxidation catalyzed by P450 enzymes, while mixtures of isomers with alternating group positions are formed by malonate condensation reactions mediated by polyketide synthase or ketoacyl-CoA synthase enzymes, or else by the head-to-head condensation of long-chain acyls. Though it is possible that some enzymes leading to ubiquitous compounds also participate in specialty wax compound biosynthesis, comparisons between co-occurring ubiquitous and specialty wax compounds strongly suggest that, at least in some species, dedicated specialty wax compound machinery exists. This seems particularly true for the diverse species in which specialty wax compounds, most notably nonacosan-10-ol, hentriacontan-16-one (palmitone), and very-long-chain β-diketones, accumulate to high concentrations.
机译:Cuticular蜡涂层空中植物表面,保护组织免受生物和非生物胁迫。蜡是在模块化生物合成途径上形成的脂肪酸衍生脂质的复杂混合物,具有不同的链长和氧官能团。大多数植物物种的蜡含有C〜(26)-C〜(32)醇,醛,烷烃和脂肪酸以及它们的烷基酯,各种蜡质混合物之间的比较揭示了一些这些化合物之间的匹配链长度分布课程。基于这些模式,导致普遍存在的蜡成分的生物合成途径在早期假设,并且大多数这些途径假设是由模型物种中的生化和分子遗传学研究证实的。然而,许多物种中最丰富的蜡化合物,包括许多重要的作物物种,含有二次官能团,因此它们的生物合成至少部分地与它们共发生的普遍存在的蜡化合物不同。在这里,我们根据综合CAS Scifinder搜索调查这些物种特异性特种蜡化合物的化学结构,然后审查关于蜡组合物的相关报告,以帮助为其生物合成制定和细化假设。遍布植物王国,已经鉴定了一种,两种和三次二次官能团的特种蜡化合物,大多数研究重点是Anuiosperms。在报告多种特种蜡化合物的情况下,它们经常发生为同源系列和/或异构体的混合物。其中,现在可以识别一系列同源物,主要是奇数或偶数的链长,以及相邻或交替碳原子上的具有官能团的异构体的混合物。使用共同发生的专业化合物的这些特征分子几何形状,它们可以被分类,并且基于共同的结构模式,可以预测生物合成机制。似乎很可能从P450酶催化的氧化碳中具有二次功能的异构体的混合物产生,而异构体的混合物通过由聚酮合成酶或酮酰基-CoA合酶酶介导的丙二酸酯缩合反应形成,或者通过长链酰基的头部到头凝聚。虽然有可能导致普遍存在的化合物的一些酶也参与特种蜡化合物生物合成,但共同发生的普遍存在和特种蜡化合物之间的比较强烈表明,至少在某些物种中,存在专用专用蜡化合物机械。这对于多种物种似乎尤其如此,其中特种蜡化合物,最符合的非杀害 - 10-醇,依赖antan-16-一种(Palmitone)和非常长链β-二酮,积累至高浓度。

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