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在田间条件下对基因生物强化小麦基因型进行锌、硒、碘和铁的农艺生物强化。

Agronomic biofortification of genetically biofortified wheat genotypes with zinc, selenium, iodine, and iron under field conditions.

作者信息

Ram Hari, Naeem Asif, Rashid Abdul, Kaur Charanjeet, Ashraf Muhammad Y, Malik Sudeep Singh, Aslam Muhammad, Mavi Gurvinder S, Tutus Yusuf, Yazici Mustafa A, Govindan Velu, Cakmak Ismail

机构信息

Department of Plant Breeding and Genetics, Punjab Agricultural University, Ludhiana, ;India.

Nuclear Institute for Agriculture and Biology (NIAB), Faisalabad, ;Pakistan.

出版信息

Front Plant Sci. 2024 Dec 6;15:1455901. doi: 10.3389/fpls.2024.1455901. eCollection 2024.

Abstract

Inherently low concentrations of zinc (Zn), iron (Fe), iodine (I), and selenium (Se) in wheat ( L.) grains represent a major cause of micronutrient malnutrition (hidden hunger) in human populations. Genetic biofortification represents a highly useful solution to this problem. However, genetic biofortification alone may not achieve desirable concentrations of micronutrients for human nutrition due to several soil- and plant-related factors. This study investigated the response of genetically biofortified high-Zn wheat genotypes to soil-applied Zn and foliarly applied Zn, I, and Se in India and Pakistan. The effect of soil-applied Zn (at the rate of 50 kg ha as ZnSO·7HO) and foliar-applied Zn (0.5% ZnSO·7HO), I (0.04% KIO), Se (0.001% NaSeO), and a foliar cocktail (F-CT: combination of the above foliar solutions) on the grain concentrations of Zn, I, Se, and Fe of high-Zn wheat genotypes was investigated in field experiments over 2 years. The predominantly grown local wheat cultivars in both countries were also included as check cultivars. Wheat grain yield was not influenced by the micronutrient treatments at all field locations, except one location in Pakistan where F-CT resulted in increased grain yield. Foliar-applied Zn, I, and Se each significantly enhanced the grain concentration of the respective micronutrients. Combined application of these micronutrients was almost equally effective in enhancing grain Zn, I, and Se, but with a slight reduction in grain yield. Foliar-applied Zn, Zn+I, and F-CT also enhanced grain Fe. In India, high-Zn genotypes exhibited a minor grain yield penalty as compared with the local cultivar, whereas in Pakistan, high-Zn wheat genotypes could not produce grain yield higher than the local cultivar. The study demonstrates that there is a synergism between genetic and agronomic biofortification in enrichment of grains with micronutrients. Foliar Zn spray to Zn-biofortified genotypes provided additional increments in grain Zn of more than 15 mg kg. Thus, combining agronomic and genetic strategies will raise grain Zn over 50 mg kg. A combination of fertilization practice with plant breeding is strongly recommended to maximize accumulation of micronutrients in food crops and to make significant progress toward resolving the hidden hunger problem in human populations.

摘要

小麦(L.)籽粒中锌(Zn)、铁(Fe)、碘(I)和硒(Se)的固有低浓度是人群中微量营养素营养不良(隐性饥饿)的主要原因。基因生物强化是解决这一问题的非常有用的办法。然而,由于一些与土壤和植物相关的因素,仅靠基因生物强化可能无法实现人类营养所需的微量营养素浓度。本研究调查了印度和巴基斯坦基因生物强化的高锌小麦基因型对土壤施用锌以及叶面喷施锌、碘和硒的反应。通过两年的田间试验,研究了土壤施用锌(以硫酸锌·7水合物形式,用量为50千克/公顷)和叶面喷施锌(0.5%硫酸锌·7水合物)、碘(0.04%碘酸钾)、硒(0.001%亚硒酸钠)以及叶面混合液(F-CT:上述叶面溶液的组合)对高锌小麦基因型籽粒中锌、碘、硒和铁浓度的影响。两国主要种植的当地小麦品种也作为对照品种纳入研究。除了在巴基斯坦的一个地点叶面混合液使籽粒产量增加外,所有田间地点的微量营养素处理均未影响小麦籽粒产量。叶面喷施锌、碘和硒均显著提高了各自微量营养素的籽粒浓度。这些微量营养素的组合施用在提高籽粒锌、碘和硒含量方面几乎同样有效,但籽粒产量略有下降。叶面喷施锌、锌+碘和叶面混合液也提高了籽粒铁含量。在印度,与当地品种相比,高锌基因型的籽粒产量略有降低,而在巴基斯坦,高锌小麦基因型的籽粒产量未能高于当地品种。该研究表明,在通过微量营养素富集籽粒方面,基因生物强化和农艺生物强化之间存在协同作用。对锌生物强化基因型进行叶面喷锌可使籽粒锌含量额外增加超过15毫克/千克。因此,将农艺和基因策略相结合将使籽粒锌含量超过50毫克/千克。强烈建议将施肥措施与植物育种相结合,以最大限度地提高粮食作物中微量营养素的积累,并在解决人群隐性饥饿问题方面取得重大进展。

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