Login / Signup

Allele-aware chromosome-level genome assembly and efficient transgene-free genome editing for the autotetraploid cultivated alfalfa.

Haitao ChenYan ZengYongzhi YangLingli HuangBolin TangHe ZhangFei HaoWei LiuYouhan LiYanbin LiuXiaoshuang ZhangRu ZhangYesheng ZhangYongxin LiKun WangHua HeZhongkai WangGuangyi FanHui YangAi-Ke BaoZhanhuan ShangJianghua ChenWen WangQiang Qiu
Published in: Nature communications (2020)
Artificially improving traits of cultivated alfalfa (Medicago sativa L.), one of the most important forage crops, is challenging due to the lack of a reference genome and an efficient genome editing protocol, which mainly result from its autotetraploidy and self-incompatibility. Here, we generate an allele-aware chromosome-level genome assembly for the cultivated alfalfa consisting of 32 allelic chromosomes by integrating high-fidelity single-molecule sequencing and Hi-C data. We further establish an efficient CRISPR/Cas9-based genome editing protocol on the basis of this genome assembly and precisely introduce tetra-allelic mutations into null mutants that display obvious phenotype changes. The mutated alleles and phenotypes of null mutants can be stably inherited in generations in a transgene-free manner by cross pollination, which may help in bypassing the debate about transgenic plants. The presented genome and CRISPR/Cas9-based transgene-free genome editing protocol provide key foundations for accelerating research and molecular breeding of this important forage crop.
Keyphrases
  • genome editing
  • crispr cas
  • single molecule
  • genome wide
  • randomized controlled trial
  • dna methylation
  • copy number
  • machine learning
  • climate change
  • living cells
  • atomic force microscopy
  • single cell
  • wild type