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A chromosomal-scale genome assembly of Tectona grandis reveals the importance of tandem gene duplication and enables discovery of genes in natural product biosynthetic pathways

机译:Tectona grandis的染色体规模基因组装配揭示了串联基因复制的重要性,并使得能够在天然产物生物合成途径中发现基因

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Background Teak, a member of the Lamiaceae family, produces one of the most expensive hardwoods in the world. High demand coupled with deforestation have caused a decrease in natural teak forests, and future supplies will be reliant on teak plantations. Hence, selection of teak tree varieties for clonal propagation with superior growth performance is of great importance, and access to high-quality genetic and genomic resources can accelerate the selection process by identifying genes underlying desired traits. Findings To facilitate teak research and variety improvement, we generated a highly contiguous, chromosomal-scale genome assembly using high-coverage Pacific Biosciences long reads coupled with high-throughput chromatin conformation capture. Of the 18 teak chromosomes, we generated 17 near-complete pseudomolecules with one chromosome present as two chromosome arm scaffolds. Genome annotation yielded 31,168 genes encoding 46,826 gene models, of which, 39,930 and 41,155 had Pfam domain and expression evidence, respectively. We identified 14 clusters of tandem-duplicated terpene synthases (TPSs), genes central to the biosynthesis of terpenes, which are involved in plant defense and pollinator attraction. Transcriptome analysis revealed 10 TPSs highly expressed in woody tissues, of which, 8 were in tandem, revealing the importance of resolving tandemly duplicated genes and the quality of the assembly and annotation. We also validated the enzymatic activity of four TPSs to demonstrate the function of key TPSs. Conclusions In summary, this high-quality chromosomal-scale assembly and functional annotation of the teak genome will facilitate the discovery of candidate genes related to traits critical for sustainable production of teak and for anti-insecticidal natural products.
机译:背景柚木是唇形科的一员,生产世界上最昂贵的硬木之一。高需求加上砍伐森林导致天然柚木森林减少,未来的供应将依赖于柚木种植园。因此,选择具有优异生长性能的柚木树种进行无性繁殖非常重要,获得高质量遗传和基因组资源可通过识别潜在性状的基因来加速选择过程。研究结果为了促进柚木研究和品种改良,我们使用高覆盖率的Pacific Biosciences长读本以及高通量染色质构象捕获技术,生成了高度连续的染色体规模的基因组组装体。在18个柚木染色体中,我们生成了17个接近完全的假分子,其中一个染色体作为两个染色体臂支架存在。基因组注释产生了31,168个基因,编码46,826个基因模型,其中39,930个和41,155个具有Pfam结构域和表达证据。我们鉴定了14个串联的萜烯合酶(TPSs)簇,它们是萜烯生物合成的关键基因,参与植物防御和授粉媒介的吸引。转录组分析揭示了在木质组织中高表达的10种TPS,其中8种是串联的,揭示了解决串联重复的基因的重要性以及装配和注释的质量。我们还验证了四个TPS的酶促活性,以证明关键TPS的功能。结论总之,这种高质量的柚木基因组染色体组装和功能注释将有助于发现与柚木可持续生产和抗杀虫天然产品至关重要的性状相关的候选基因。

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