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Delineation of metabolic gene clusters in plant genomes by chromatin signatures

机译:通过染色质特征描绘植物基因组中的代谢基因簇

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Plants are a tremendous source of diverse chemicals, including many natural product-derived drugs. It has recently become apparent that the genes for the biosynthesis of numerous different types of plant natural products are organized as metabolic gene clusters, thereby unveiling a highly unusual form of plant genome architecture and offering novel avenues for discovery and exploitation of plant specialized metabolism. Here we show that these clustered pathways are characterized by distinct chromatin signatures of histone 3 lysine trimethylation (H3K27me3) and histone 2 variant H2A.Z, associated with cluster repression and activation, respectively, and represent discrete windows of co-regulation in the genome. We further demonstrate that knowledge of these chromatin signatures along with chromatin mutants can be used to mine genomes for cluster discovery. The roles of H3K27me3 and H2A.Z in repression and activation of single genes in plants are well known. However, our discovery of highly localized operon-like co-regulated regions of chromatin modification is unprecedented in plants. Our findings raise intriguing parallels with groups of physically linked multi-gene complexes in animals and with clustered pathways for specialized metabolism in filamentous fungi.
机译:植物是多种化学物质的巨大来源,包括许多天然产物衍生的药物。最近变得很明显,许多不同类型的植物天然产物的生物合成基因被组织为代谢基因簇,从而揭示了一种非常不寻常的植物基因组结构形式,并为发现和利用植物专门代谢提供了新的途径。在这里,我们显示这些聚集的途径的特征在于组蛋白3赖氨酸三甲基化(H3K27me3)和组蛋白2变体H2A.Z的不同染色质特征,分别与簇抑制和激活相关,并代表了基因组中共调控的离散窗口。我们进一步证明,这些染色质特征以及染色质突变体的知识可用于挖掘基因组以进行簇发现。 H3K27me3和H2A.Z在植物中单个基因的抑制和激活中的作用是众所周知的。但是,我们在植物中发现染色质修饰的高度局限性的操纵子样共调控区域是前所未有的。我们的发现提出了与动物中一系列物理连接的多基因复合物以及丝状真菌专门代谢的成簇途径有趣的相似之处。

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