首页|CRISPR/Cas9编辑MeHNL基因创制低生氰糖苷木薯

CRISPR/Cas9编辑MeHNL基因创制低生氰糖苷木薯

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[目的]木薯(Manihot esculenta Crantz)中含有潜在毒性的生氰糖苷,其食用安全性受到影响且导致加工成本增加.因此,利用生物技术开展低生氰糖苷木薯的培育具有重要意义.[方法]利用CRISPR/Cas9技术对木薯醇氰酶基因MeHNL进行了编辑.该基因编码催化生氰糖苷分解的α-羟基腈裂解酶,编辑靶点位于第1个外显子上,通过农杆菌介导的稳定转化获得了27株阳性植株.[结果]测序分析显示,其中 26 个株系被编辑,编辑效率高达 96.3%.编辑类型主要包括碱基的插入和缺失,少数为碱基替换和大片段缺失.氰化物检测试剂盒染色和HPLC测定分析表明,编辑株系中的氢氰酸和生氰糖苷含量均显著降低.与非编辑植株相比,编辑植株的叶片细长,暗示了MeHNL可能对木薯的生长发育产生影响.[结论]利用CRISPR/Cas9 技术获得了低氰化物的木薯种质,为开展生氰糖苷代谢影响木薯生长发育的研究提供了材料.
CRISPR/Cas9 Editing MeHNL Gene to Generate Cassava Plants with Low Cyanogenic Glycoside
[Objective]Because cassava(Manihot esculenta Crantz)contains potentially toxic cyanogenic glucosides,its food safety is affected,which leads to the increase of processing costs.It is of great significance to cultivate cassava with low cyanogenic glycosides by biotechnology.[Method]CRISPR/Cas9 technology was used to edit the α-hydroxynitrile lyase gene MeHNL.This gene encodes α-hydroxynitrile lyase that catalyzes the decomposition of cyanogenic glycosides.The editing target is located on its first exon,and 27 positive plants were obtained through Agrobacterium-mediated stable transformation.[Result]Sequencing analysis indicated successful editing in 26 out of 27 transgenic plants,and a high editing efficiency was achieved by 96.3%.The editing types predominantly comprised base insertions and deletions,alongside minor base substitutions and large fragment deletions.HCN colorimetric kit and HPLC analysis confirmed a significant reduction in hydrocyanic acid and cyanogenic glycosides in the mutant lines.Additionally,transgenic plants demonstrated slender leaves compared to non-transgenic counterparts,implicating MeHNL's impact on plant growth and development.[Conclusion]The cassava germplasm with low cyanide is obtained by CRISPR/Cas9 technology,which provides materials for exploring the study of cyanogenic glycoside metabolism on cassava growth and development.

cassavagene editingHNLlow cyanidecyanogenic glycosides

童玮婧、罗数、陆新露、沈建福、陆柏益、李开绵、马秋香、张鹏

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中国科学院分子植物科学卓越创新中心,上海 200032

中国科学院大学,北京 100049

浙江大学生物系统工程与食品科学学院,杭州 310058

中国热带农业科学院热带作物品种资源研究所,海口 571101

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木薯 基因编辑 醇氰酶 低氰化物 生氰糖苷

国家重点研发计划热带作物生物育种全国重点实验室 2023年度开放课题项目农业农村部国家现代农业产业技术体系项目

2023YFD1600605-41630052024001CARS-11

2024

生物技术通报
中国农业科学院农业信息研究所

生物技术通报

CSTPCD北大核心
影响因子:0.505
ISSN:1002-5464
年,卷(期):2024.40(9)