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构建近乎完整的植物基因组。

Building near-complete plant genomes.

机构信息

Informatics Department, J. Craig Venter Institute, La Jolla, CA, USA.

Department of Horticulture, Michigan State University, East Lansing, MI 48824, USA; Plant Resilience Institute, Michigan State University, East Lansing, MI 48824, USA.

出版信息

Curr Opin Plant Biol. 2020 Apr;54:26-33. doi: 10.1016/j.pbi.2019.12.009. Epub 2020 Jan 22.

Abstract

Plant genomes span several orders of magnitude in size, vary in levels of ploidy and heterozygosity, and contain old and recent bursts of transposable elements, which render them challenging but interesting to assemble. Recent advances in single molecule sequencing and physical mapping technologies have enabled high-quality, chromosome scale assemblies of plant species with increasing complexity and size. Single molecule reads can now exceed megabases in length, providing unprecedented opportunities to untangle genomic regions missed by short read technologies. However, polyploid and heterozygous plant genomes are still difficult to assemble but provide opportunities for new tools and approaches. Haplotype phasing, structural variant analysis and de novo pan-genomics are the emerging frontiers in plant genome assembly.

摘要

植物基因组的大小跨越了几个数量级,在倍性和杂合度水平上存在差异,并且包含古老和近期的转座元件爆发,这使得它们的组装具有挑战性,但也很有趣。单分子测序和物理图谱技术的最新进展使具有越来越高的复杂性和规模的植物物种的高质量、染色体级别的组装成为可能。单分子读取现在可以超过兆碱基的长度,为解开短读技术错过的基因组区域提供了前所未有的机会。然而,多倍体和杂合植物基因组仍然难以组装,但为新的工具和方法提供了机会。单倍型相位、结构变异分析和从头泛基因组学是植物基因组组装的新兴前沿领域。

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