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Biofortification and bioavailability of Zn, Fe and Se in wheat: present status and future prospects

机译:小麦Zn,Fe和Se的生物化和生物利用度:现状和未来前景

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Key message Knowledge of genetic variation, genetics, physiology/molecular basis and breeding (including biotechnological approaches) for biofortification and bioavailability for Zn, Fe and Se will help in developing nutritionally improved wheat. Biofortification of wheat cultivars for micronutrients is a priority research area for wheat geneticists and breeders. It is known that during breeding of wheat cultivars for productivity and quality, a loss of grain micronutrient contents occurred, leading to decline in nutritional quality of wheat grain. Keeping this in view, major efforts have been made during the last two decades for achieving biofortification and bioavailability of wheat grain for micronutrients including Zn, Fe and Se. The studies conducted so far included evaluation of gene pools for contents of not only grain micronutrients as above, but also for phytic acid (PA) or phytate and phytase, so that, while breeding for the micronutrients, bioavailability is also improved. For this purpose, QTL interval mapping and GWAS were carried out to identify QTLs/genes and associated markers that were subsequently used for marker-assisted selection (MAS) during breeding for biofortification. Studies have also been conducted to understand the physiology and molecular basis of biofortification, which also allowed identification of genes for uptake, transport and storage of micronutrients. Transgenics using transgenes have also been produced. The breeding efforts led to the development of at least a dozen cultivars with improved contents of grain micronutrients, although land area occupied by these biofortified cultivars is still marginal. In this review, the available information on different aspects of biofortification and bioavailability of micronutrients including Zn, Fe and Se in wheat has been reviewed for the benefit of those, who plan to start work or already conducting research in this area.
机译:关于锌、铁和硒的生物强化和生物有效性的遗传变异、遗传学、生理学/分子基础和育种(包括生物技术方法)的关键信息知识将有助于开发营养改良小麦。小麦品种微量营养素的生物强化是小麦遗传学家和育种家的优先研究领域。众所周知,在小麦品种的生产和品质育种过程中,谷物微量营养素含量的损失会导致小麦籽粒营养品质的下降。考虑到这一点,在过去20年中,人们做出了重大努力,以实现小麦籽粒中锌、铁和硒等微量元素的生物强化和生物有效性。迄今为止进行的研究包括评估基因库中的上述谷物微量营养素含量,以及植酸(PA)或植酸和植酸酶的含量,因此,在培育微量营养素的同时,生物利用度也得到了提高。为此,进行了QTL区间作图和GWA,以确定随后用于生物强化育种期间的标记辅助选择(MAS)的QTL/基因和相关标记。还开展了一些研究,以了解生物强化的生理学和分子基础,这也有助于识别微量营养素摄取、运输和储存的基因。使用转基因的转基因技术也被生产出来。通过育种努力,至少培育出了12个谷物微量营养素含量有所提高的品种,尽管这些生物强化品种所占的土地面积仍然很小。在本综述中,对小麦中锌、铁和硒等微量营养素的生物强化和生物利用度的不同方面的可用信息进行了综述,以方便计划在该领域开展工作或已经开展研究的人。

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