The complex polyploid genome architecture of sugarcane

多倍体 生物 基因组 糖精 同步 顺序装配 生物技术 糖精 遗传学 基因 农学 基因表达 转录组
作者
Adam Healey,Olivier Garsmeur,John T. Lovell,Shengqiang Shu,Avinash Sreedasyam,Jerry Jenkins,Chris Plott,Nathalie Piperidis,Nicolas Pompidor,Víctor Llaca,Cushla J. Metcalfe,Jaroslav Doležel,Petr Cápal,Joseph W. Carlson,Jean-Yves Hoarau,Catherine Hervouet,Cyrille Zini,Anne Diévart,Anna Lipzen,Melissa E. Williams,Lensch Boston,Joan Webber,Keykhosrow Keymanesh,Sravanthi Tejomurthula,Sriram Rajasekar,Radosław Suchecki,Agnelo Furtado,Gemma E. May,Paul F. Parakkal,Blake A. Simmons,Kerrie Barry,Robert J. Henry,Jane Grimwood,Karen S. Aitken,Jeremy Schmutz,Angélique D’Hont
出处
期刊:Nature [Springer Nature]
标识
DOI:10.1038/s41586-024-07231-4
摘要

Abstract Sugarcane, the world’s most harvested crop by tonnage, has shaped global history, trade and geopolitics, and is currently responsible for 80% of sugar production worldwide 1 . While traditional sugarcane breeding methods have effectively generated cultivars adapted to new environments and pathogens, sugar yield improvements have recently plateaued 2 . The cessation of yield gains may be due to limited genetic diversity within breeding populations, long breeding cycles and the complexity of its genome, the latter preventing breeders from taking advantage of the recent explosion of whole-genome sequencing that has benefited many other crops. Thus, modern sugarcane hybrids are the last remaining major crop without a reference-quality genome. Here we take a major step towards advancing sugarcane biotechnology by generating a polyploid reference genome for R570, a typical modern cultivar derived from interspecific hybridization between the domesticated species ( Saccharum officinarum ) and the wild species ( Saccharum spontaneum ). In contrast to the existing single haplotype (‘monoploid’) representation of R570, our 8.7 billion base assembly contains a complete representation of unique DNA sequences across the approximately 12 chromosome copies in this polyploid genome. Using this highly contiguous genome assembly, we filled a previously unsized gap within an R570 physical genetic map to describe the likely causal genes underlying the single-copy Bru1 brown rust resistance locus. This polyploid genome assembly with fine-grain descriptions of genome architecture and molecular targets for biotechnology will help accelerate molecular and transgenic breeding and adaptation of sugarcane to future environmental conditions.
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