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丹参高质量参考基因组序列揭示其红色根状茎中丹参酮合成的机制。

A high-quality reference genome sequence of Salvia miltiorrhiza provides insights into tanshinone synthesis in its red rhizomes.

机构信息

Agronomy College, Shandong Agricultural University, Tai'an, Shandong, 271028, China.

State Key Laboratory of Crop Biology, Shandong Agricultural University, Tai'an, Shandong, 271028, China.

出版信息

Plant Genome. 2020 Nov;13(3):e20041. doi: 10.1002/tpg2.20041. Epub 2020 Sep 17.

Abstract

Salvia miltiorrhiza Bunge, also known as red sage or Danshen, is an important traditional Chinese medicine (TCM) that has been used for thousands of years to treat cardiovascular and other diseases. It is also considered an important model TCM plant. Here, a high-quality reference genome of S. miltiorrhiza was generated by combining PacBio long-read sequencing and chromatin interaction mapping (Hi-C) technologies, resulting in the chromosome-scale assembly of a 594.75-Mb genome sequence with a contig N50 of 2.70 Mb. This assembly shows the highest level of continuity for a Danshen genome generated thus far. The S. miltiorrhiza genome contained 32,483 protein-coding genes, with a repetitive DNA content of approximately 64.84%. The high percentage of young LTRs suggests that multiple TE transposition bursts occurred recently in S. miltiorrhiza. Genes unique to secondary metabolism pathways were expanded in the S. miltiorrhiza genome. A new CYP450 gene cluster was identified in the phloem of red roots where active components were synthesized. This reference genome sequence will facilitate future studies aimed at the elucidation of the secondary metabolism synthesis pathway and the genetic improvement of S. miltiorrhiza.

摘要

丹参,又名红参或丹参,是一种重要的传统中药(TCM),已有数千年的历史,用于治疗心血管疾病等。它也被认为是一种重要的模式中药植物。在这里,我们通过结合 PacBio 长读测序和染色质相互作用图谱(Hi-C)技术,生成了一份高质量的丹参参考基因组,该基因组组装得到了 594.75Mb 的染色体规模基因组序列,其 contig N50 为 2.70Mb。与迄今为止生成的丹参基因组相比,该组装展示了最高的连续性水平。丹参基因组包含 32,483 个编码蛋白的基因,重复 DNA 含量约为 64.84%。大量年轻的 LTR 表明,丹参最近发生了多次 TE 转座爆发。次生代谢途径特有的基因在丹参基因组中得到了扩展。在合成活性成分的红根韧皮部中鉴定到一个新的 CYP450 基因簇。这个参考基因组序列将有助于未来阐明次生代谢合成途径和遗传改良丹参的研究。

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