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Apomixis in rice and prospects for its use in heterosis breeding

机译:水稻无融合生殖及其在杂种优势育种中的应用前景

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Apomixis is being explored as a new frontier to exploit hybrid vigor and to develop true-breeding hybrid rice varieties. Apomixis is common in grasses and in several polyploid plant species and is controlled by one or a few genes. Among the major cereals, maize, wheat,and pearl millet have apomictic relatives. But there is no clear evidence of apomixis in rice. A-genome diploid wild relatives have been examined based on studies of crosses with dominant marker stocks.Reports on cyto-embryological studies also lack genetic evidence for the occurrence of apomixis in rice. We proposed three strategies to develop apomictic rice: (1) screening germplasm of tetraploid wild species as a source of apomixis and transferring the apomictic trait to rice cultivars, (2) inducing apomictic mutants in rice through mutagenesis,and (3) developing apomictic rice using molecular approaches. We have screened 108 accessions of tetraploid Oryza species for apospory (multiple embryo sac development) and 86 accessions for diplospory (based on callose detection), including five related genera. But none of the accessions showed any evidence of apomixis. We have also undertaken the second approach to induce apomictic mutants. Mutagenized populations derived from treating seeds and fertilized egg cells with gamma rays, ethyl methane sulphonate, and N-methyl-N-nitrosourea are being screened. We have selected a dominant purple leaf mutant of rice for identification of the apomictic mutants following mutagenesis. IRRI is collaborating with advanced laboratories to develop apomictic rice through molecular approaches. Molecular markers linked to the apomictic mode of reproduction have been identified in progenies of maize (Tripsacum) and in crosses of sexual and apomictic wild species of Pennisetum. Cloning of the gene(s) for apomixis is under way from apomictic plant species such as Tripsacum, Pennisetum, Brachiaria,and Cenchrus. Once such genes become available, they will be introduced into elite breeding lines of rice using transformation technology.We are also exploring the possibility to identify dividing nucellar cells capable of forming adventitious embryos in a transgenic rice line (HSK-1). Apomixis will increase the efficiency of heterosis breeding in producing many true-breeding hybrids compared with those produced by using three-line or two-line hybrid breeding systems.The availability of a large number of hybrids will increase genetic diversity and reduce genetic vulnerability. Moreover, the possible vulnerability to pests and diseases because of narrow cytoplasmic male sterility sources will also be eliminated. The development of apomictic rice would enable resource-poor farmers in developing countries to adopt high-yielding hybrid rice technology. This would lead to an increase in area planted to hybrid rice, resulting in higher productivity and production.
机译:无融合生殖正在被探索为开发杂交活力并开发真正育种杂交水稻品种的新领域。无融合生殖在草和几种多倍体植物中很常见,并且受一个或几个基因控制。在主要谷物中,玉米,小麦和珍珠粟有无融合生殖的亲缘种。但尚无明确证据表明大米中存在无融合生殖。基于与主要标记种群的杂交研究,对A基因组二倍体野生亲缘种进行了研究。细胞胚胎学研究的报告也缺乏水稻无融合生殖发生的遗传学证据。我们提出了三种开发无融合生殖水稻的策略:(1)筛选四倍体野生种的种质作为无融合生殖的来源,并将无融合生殖特性转移到水稻品种上;(2)通过诱变在水稻中诱导无融合突变体,(3)开发无融合生殖水稻使用分子方法。我们筛选了108个四倍体稻种的无孢子虫(多个胚囊发育)和86个二倍体孢子的种质(根据call检测),包括五个相关属。但是,没有一个种质显示无融合生殖的迹象。我们还采取了第二种方法来诱导无融合生殖突变体。正在筛选通过用γ射线,甲烷磺酸乙酯和N-甲基-N-亚硝基脲处理种子和受精卵细胞而产生的诱变种群。我们选择了水稻的优势紫叶突变体,以鉴定诱变后的无融合突变体。 IRRI正在与先进的实验室合作,通过分子方法开发无融合生殖水稻。已经在玉米(Tripsacum)的子代以及狼尾草有性和无融合生殖野生物种的杂交中鉴定了与无融合生殖方式相关的分子标记。无融合生殖基因的克隆正在从无融合生殖的植物物种中进行,例如Tripsacum,狼尾草,腕带属植物和Cenchrus。这些基因一旦可用,便会使用转化技术将其引入水稻的优良育种系。我们也正在探索确定在转基因水稻系(HSK-1)中鉴定能够形成不定胚的分裂核细胞的可能性。与使用三系或两系杂交育种系统相比,无融合生殖将提高杂种优势育种产生许多真正育种杂种的效率,大量杂种的可利用性将增加遗传多样性并降低遗传易感性。此外,还将消除由于胞质雄性不育源狭窄而可能对病虫害造成的脆弱性。无融合水稻的发展将使发展中国家资源贫乏的农民采用高产杂交稻技术。这将导致杂交水稻的播种面积增加,从而提高生产力和产量。

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