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天然钼转运蛋白的变异控制水稻籽粒钼浓度。

Natural variation in a molybdate transporter controls grain molybdenum concentration in rice.

机构信息

State Key Laboratory of Crop Genetics and Germplasm Enhancement, College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing, 210095, China.

USDA-ARS Dale Bumpers National Rice Research Center, Stuttgart, AR, 72160, USA.

出版信息

New Phytol. 2019 Mar;221(4):1983-1997. doi: 10.1111/nph.15546. Epub 2018 Nov 23.

DOI:10.1111/nph.15546
PMID:30339276
Abstract

Molybdenum (Mo) is an essential micronutrient for most living organisms, including humans. Cereals such as rice (Oryza sativa) are the major dietary source of Mo. However, little is known about the genetic basis of the variation in Mo content in rice grain. We mapped a quantitative trait locus (QTL) qGMo8 that controls Mo accumulation in rice grain by using a recombinant inbred line population and a backcross introgression line population. We identified a molybdate transporter, OsMOT1;1, as the causal gene for this QTL. OsMOT1;1 exhibits transport activity for molybdate, but not sulfate, when heterogeneously expressed in yeast cells. OsMOT1;1 is mainly expressed in roots and is involved in the uptake and translocation of molybdate under molybdate-limited condition. Knockdown of OsMOT1;1 results in less Mo being translocated to shoots, lower Mo concentration in grains and higher sensitivity to Mo deficiency. We reveal that the natural variation of Mo concentration in rice grains is attributed to the variable expression of OsMOT1;1 due to sequence variation in its promoter. Identification of natural allelic variation in OsMOT1;1 may facilitate the development of rice varieties with Mo-enriched grain for dietary needs and improve Mo nutrition of rice on Mo-deficient soils.

摘要

钼(Mo)是包括人类在内的大多数生物的必需微量元素。谷物如水稻(Oryza sativa)是 Mo 的主要膳食来源。然而,人们对稻米中 Mo 含量变化的遗传基础知之甚少。我们通过重组自交系群体和回交导入系群体,定位了一个控制稻米中 Mo 积累的数量性状位点(QTL)qGMo8。我们鉴定了一个钼转运蛋白 OsMOT1;1 是该 QTL 的候选基因。当在酵母细胞中异源表达时,OsMOT1;1 表现出对钼的转运活性,但对硫酸盐没有转运活性。OsMOT1;1 主要在根中表达,并在钼限制条件下参与钼的吸收和转运。OsMOT1;1 的敲低导致更少的 Mo 被转运到地上部分,谷粒中的 Mo 浓度更低,对 Mo 缺乏的敏感性更高。我们揭示了稻米中 Mo 浓度的自然变异归因于 OsMOT1;1 启动子序列变异导致其表达的可变。鉴定 OsMOT1;1 的自然等位基因变异可能有助于开发富含 Mo 的稻米品种,以满足膳食需求,并改善 Mo 缺乏土壤中稻米的 Mo 营养。

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