Effects of bio-nano-selenium on wheat grain morphology, selenium transport enrichment and antioxidant enzyme activities.

IF 4.1 2区 生物学 Q1 PLANT SCIENCES Frontiers in Plant Science Pub Date : 2025-03-05 eCollection Date: 2025-01-01 DOI:10.3389/fpls.2025.1516005
Sisi Huang, Yali Han, Ruilian Song, Xiaofang Wang, Yu Zhou, Hongmei Luo, Xifeng Ren, Kan Yu
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Abstract

Selenium (Se) is an essential trace element for human health, but selenium deficiency is widespread worldwide. In this study, we investigated the effects of selenium uptake, grain morphology, and antioxidant enzyme activities in three wheat varieties, including Huamai 1168 (high gluten), Huamai 2152 (medium gluten), and Wanximai 0638 (low gluten), by foliar spraying of bio-nano-selenium at the early flowering stage of wheat. The bio-nano-selenium nutrient solution was a patented product of microbial fermentation (Patent No. 201610338121.6) independently developed by our team, with a pure selenium concentration of 5000 mg/kg. The results showed that the total selenium content in all the varieties increased by 1843.52%, and the organic selenium content increased by 2009.87%, with Huamai 1168 showing the highest total selenium and organic selenium content. After selenium treatment, CAT activity decreased in all varieties; POD and SOD activities showed a tendency to increase and then decrease; MDA and proline content increased; and GSH content fluctuated during the filling period. Overall, foliar spraying of selenium enhanced antioxidant enzyme activities and improved the plants' ability to cope with environmental stresses. In terms of agronomic traits, bio-nano-selenium positively affected plant height (12.63% increase on average), effective spike number (17.24% increase on average), and spikelet number (17.81% increase on average), but had a limited effect on grain morphology. In addition, bio-nano-selenium not only increased soil nutrient content but also promoted the uptake of hydrolyzed nitrogen, effective phosphorus, fast-acting potassium, and sulfate in wheat. In summary, bio-nano-selenium is expected to be an effective tool for selenium biofortification of wheat, which not only significantly increases the selenium content of grains but also improves yields, stress tolerance, and fertilizer utilization, providing a potential solution to selenium deficiency through dietary solutions, while contributing to the sustainable development of agriculture.

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生物纳米硒对小麦籽粒形态、硒转运富集及抗氧化酶活性的影响
硒是人体健康必需的微量元素,但世界范围内普遍存在缺硒现象。本研究以花麦1168(高筋)、花麦2152(中筋)和万西麦0638(低筋)3个小麦品种为试验材料,研究了花麦1168、花麦2152和万西麦0638在花前期叶面喷施生物纳米硒对硒吸收、籽粒形态和抗氧化酶活性的影响。生物纳米硒营养液是我团队自主研发的微生物发酵专利产品(专利号:201610338121.6),纯硒浓度为5000mg /kg。结果表明,各品种总硒含量均提高了1843.52%,有机硒含量提高了2009.87%,其中华麦1168总硒和有机硒含量最高。硒处理后,各品种CAT活性均降低;POD、SOD活性呈先升高后降低的趋势;丙二醛和脯氨酸含量增加;灌浆期谷胱甘肽含量波动较大。综上所述,叶面喷施硒提高了植物抗氧化酶活性,提高了植物应对环境胁迫的能力。在农艺性状方面,生物纳米硒对水稻株高(平均提高12.63%)、有效穗数(平均提高17.24%)和小穗数(平均提高17.81%)有积极影响,但对籽粒形态的影响有限。此外,生物纳米硒不仅提高了土壤养分含量,还促进了小麦对水解氮、有效磷、速效钾和硫酸盐的吸收。综上所述,生物纳米硒有望成为小麦硒生物强化的有效工具,不仅能显著提高籽粒硒含量,还能提高产量、抗逆性和肥料利用率,为通过膳食解决硒缺乏问题提供了可能,同时有助于农业的可持续发展。
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来源期刊
Frontiers in Plant Science
Frontiers in Plant Science PLANT SCIENCES-
CiteScore
7.30
自引率
14.30%
发文量
4844
审稿时长
14 weeks
期刊介绍: In an ever changing world, plant science is of the utmost importance for securing the future well-being of humankind. Plants provide oxygen, food, feed, fibers, and building materials. In addition, they are a diverse source of industrial and pharmaceutical chemicals. Plants are centrally important to the health of ecosystems, and their understanding is critical for learning how to manage and maintain a sustainable biosphere. Plant science is extremely interdisciplinary, reaching from agricultural science to paleobotany, and molecular physiology to ecology. It uses the latest developments in computer science, optics, molecular biology and genomics to address challenges in model systems, agricultural crops, and ecosystems. Plant science research inquires into the form, function, development, diversity, reproduction, evolution and uses of both higher and lower plants and their interactions with other organisms throughout the biosphere. Frontiers in Plant Science welcomes outstanding contributions in any field of plant science from basic to applied research, from organismal to molecular studies, from single plant analysis to studies of populations and whole ecosystems, and from molecular to biophysical to computational approaches. Frontiers in Plant Science publishes articles on the most outstanding discoveries across a wide research spectrum of Plant Science. The mission of Frontiers in Plant Science is to bring all relevant Plant Science areas together on a single platform.
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