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利用无融合生殖介导的基因组添加(AMGA)策略在狼尾草属中进行外来基因组的动员和固定,以改良短芒披碱草的驯化特性。

Alien genome mobilization and fixation utilizing an apomixis mediated genome addition (AMGA) strategy in Pennisetum to improve domestication traits of P. squamulatum.

机构信息

ICAR - Indian Grassland and Fodder Research Institute, Jhansi, 284003, India.

ICAR - National Rice Research Institute, Cuttack, 753006, India.

出版信息

Theor Appl Genet. 2022 Jul;135(7):2555-2575. doi: 10.1007/s00122-022-04138-4. Epub 2022 Jun 20.

DOI:10.1007/s00122-022-04138-4
PMID:35726065
Abstract

An approach to release 'frozen' variability in apomictic species using sexuality of another species, eventually its utilization in crop improvement and de-novo domestication of crop wild relatives is presented. Pennisetum squamulatum, a secondary gene pool species of pearl millet (P. glaucum), harbours many desirable traits. However, it was neither utilized to improve pearl millet fodder traits nor improvement of its own domestication traits was attempted, due to the complexities of genomes and apomictic reproduction. To overcome this, we followed an Apomixis Mediated Genome Addition (AMGA) strategy and utilized the contrasting reproductive capacities (sexuality and apomixis) of both the species to access the otherwise un-available variability embedded in P. squamulatum. Segregating population of interspecific hybrids exhibited significant variability and heterosis for desired morphological, agronomical, and nutritional traits. Elite apomictic and perennial hybrids were evaluated in breeding trials, and eventually a novel grass cultivar was released for commercial cultivation in India. The performance of newly developed cultivar was superior to other adapted perennial grasses of arid and semi-arid rangelands. Through AMGA, the sexuality of one species was successfully utilized to 'release' the 'frozen' variability embedded in another species. Subsequently, the hybrids representing desirable trait combinations were again 'fixed' utilizing the apomixis alleles from the male parent in a back-and-forth apomixis-sexual-apomixis selection cycle. This study also demonstrated the potential of AMGA to improve crop relatives through genomes introgression as well as de novo domestication of new crops from wild species.

摘要

本文提出了一种利用另一个物种的有性生殖来释放无融合生殖物种中“冻结”变异性的方法,最终将其应用于作物改良和作物野生近缘种的从头驯化。狼尾草(Pennisetum squamulatum)是珍珠粟(P. glaucum)的一个次生基因库物种,具有许多理想的特性。然而,由于基因组和无融合生殖的复杂性,它既没有被用于改善珍珠粟的饲料特性,也没有尝试改进其自身的驯化特性。为了克服这一问题,我们采用了无融合生殖介导的基因组添加(AMGA)策略,利用两个物种的生殖能力(有性生殖和无融合生殖)的差异,来获得狼尾草中原本无法获得的潜在变异性。种间杂种的分离群体表现出显著的变异性和杂种优势,具有所需的形态、农艺和营养特性。有性生殖和多年生杂种的优良个体在育种试验中进行了评估,最终在印度推出了一个新型草种进行商业种植。新开发的品种的表现优于干旱和半干旱牧场中其他适应的多年生牧草。通过 AMGA,一个物种的有性生殖成功地“释放”了另一个物种中“冻结”的变异性。随后,利用雄性亲本的无融合生殖等位基因,在回交无融合生殖-有性生殖-无融合生殖的选择循环中,再次“固定”具有理想性状组合的杂种。本研究还证明了 AMGA 通过基因组渐渗改良作物近缘种和从野生种中从头驯化新作物的潜力。

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Alien genome mobilization and fixation utilizing an apomixis mediated genome addition (AMGA) strategy in Pennisetum to improve domestication traits of P. squamulatum.利用无融合生殖介导的基因组添加(AMGA)策略在狼尾草属中进行外来基因组的动员和固定,以改良短芒披碱草的驯化特性。
Theor Appl Genet. 2022 Jul;135(7):2555-2575. doi: 10.1007/s00122-022-04138-4. Epub 2022 Jun 20.
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Molecular markers shared by diverse apomictic Pennisetum species.不同无融合生殖雀稗属物种共有的分子标记。
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本文引用的文献

1
Novel Approaches for Species Concepts and Delimitation in Polyploids and Hybrids.多倍体和杂交种中物种概念及界定的新方法
Plants (Basel). 2022 Jan 13;11(2):204. doi: 10.3390/plants11020204.
2
Reap the crop wild relatives for breeding future crops.种植作物野生亲缘种以培育未来作物。
Trends Biotechnol. 2022 Apr;40(4):412-431. doi: 10.1016/j.tibtech.2021.08.009. Epub 2021 Oct 8.
3
Polyploidy: an evolutionary and ecological force in stressful times.多倍体:压力环境下的进化和生态力量。
Plant Cell. 2021 Mar 22;33(1):11-26. doi: 10.1093/plcell/koaa015.
4
Patterns, Predictors, and Consequences of Dominance in Hybrids.杂种优势中的模式、预测因子和支配地位的后果。
Am Nat. 2021 Mar;197(3):E72-E88. doi: 10.1086/712603. Epub 2021 Jan 29.
5
New Food Crop Domestication in the Age of Gene Editing: Genetic, Agronomic and Cultural Change Remain Co-evolutionarily Entangled.基因编辑时代的新型粮食作物驯化:遗传、农艺和文化变革仍处于共同进化的纠缠之中。
Front Plant Sci. 2020 Jun 11;11:789. doi: 10.3389/fpls.2020.00789. eCollection 2020.
6
Sexual modulation in a polyploid grass: a reproductive contest between environmentally inducible sexual and genetically dominant apomictic pathways.多倍体草中的性调节:环境诱导的有性生殖和遗传优势的无融合生殖途径之间的生殖竞争。
Sci Rep. 2020 May 20;10(1):8319. doi: 10.1038/s41598-020-64982-6.
7
Competition of Parental Genomes in Plant Hybrids.植物杂种中亲本基因组的竞争
Front Plant Sci. 2020 Feb 25;11:200. doi: 10.3389/fpls.2020.00200. eCollection 2020.
8
Clonal Reproduction through Seeds in Sight for Crops.有性繁殖在作物中有目共睹。
Trends Genet. 2020 Mar;36(3):215-226. doi: 10.1016/j.tig.2019.12.006. Epub 2020 Jan 20.
9
Genomic imprinting in plants-revisiting existing models.植物中的基因组印迹——重新审视现有的模型。
Genes Dev. 2020 Jan 1;34(1-2):24-36. doi: 10.1101/gad.332924.119.
10
Reproductive Systems in : Relevance for Germplasm Collection and Conservation, Breeding Techniques, and Adoption of Released Cultivars.生殖系统:与种质收集和保存、育种技术以及审定品种的推广应用的相关性
Front Plant Sci. 2019 Nov 21;10:1377. doi: 10.3389/fpls.2019.01377. eCollection 2019.