Thermosensitive ferulic acid-modified chitosan gel coatings loaded with selenium nanoparticles for enhanced grape foliar rainfastness and selenium uptake

IF 5.4 1区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
GIANT Pub Date : 2025-02-01 DOI:10.1016/j.giant.2024.100351
Songpo Duan , Xin Ouyang , Yingsheng Liu , Dingyi Shen , Zhiming Li , Sijie Song , Hong Shen
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引用次数: 0

Abstract

Traditional Se (selenium) fertilizers are poorly deposited on crop leaves and are easily washed away by rain; these factors limit plant Se absorption and pose potential environmental risks. To address this issue, a thermosensitive Se nanoparticles gel (CS-FA/BP-SeNPs) based on chitosan-ferulic acid (CS-FA) and β-glycerophosphate (β-BP) was developed to increase rain-washing resistance and Se uptake in grape leaves. The CS-FA derivative was synthesized via an amide reaction between chitosan and ferulic acid(1:2); this derivative demonstrated strong antibacterial and antioxidant activity, effectively dispersing the Se nanoparticles (SeNPs) and preventing their aggregation. β-glycerophosphate neutralized the pH value of the CS-FA/SeNPs solution, significantly increasing the stability of the SeNPs (stable for 30 days). Up to 37 °C, the solution rapidly formed a hydrogel, increasing its viscous modulus by 5.1 times and improving adhesion. Compared with SeNPs alone, CS-FA/BP-SeNPs showed superior spreading, reducing droplet splashing and retraction. In simulated rainfall experiments, the CS-FA/BP-SeNPs gel coating retained 91.1 % of the material on the leaf surface, while the corresponding value for SeNPs was 13.6 %, demonstrating excellent rainfastness in the former. In open-field cultivation trials, grape leaves treated with the CS-FA/BP-SeNPs gel coating presented a 141.3–192.7 % increase in the Se retention rate and a 51.3–62.3 % increase in Se uptake than those with SeNPs alone. Additionally, CS-FA/BP-SeNPs significantly reduced Fusarium oxysporum infection rates, demonstrating potential for use in challenging outdoor environments. This thermosensitive gel coating provides an effective strategy for enhancing nanoselenium utilization on crop leaves through its temperature-responsive properties and strong postgelation adhesion.

Abstract Image

热敏阿魏酸修饰壳聚糖凝胶涂层负载纳米硒增强葡萄叶片耐雨性和硒吸收
传统的硒肥料不能很好地附着在作物叶片上,而且很容易被雨水冲走;这些因素限制了植物对硒的吸收,造成了潜在的环境风险。为了解决这一问题,研制了一种基于壳聚糖阿魏酸(CS-FA)和β-甘油磷酸酯(β-BP)的热敏硒纳米凝胶(CS-FA/BP-SeNPs),以提高葡萄叶片的抗雨洗性和硒吸收能力。采用壳聚糖与阿魏酸(1:2)酰胺反应合成CS-FA衍生物;该衍生物具有较强的抗菌和抗氧化活性,能有效分散硒纳米粒子(SeNPs)并防止其聚集。β-甘油磷酸酯中和了CS-FA/SeNPs溶液的pH值,显著提高了SeNPs的稳定性(稳定30天)。当温度达到37℃时,溶液迅速形成水凝胶,黏性模量提高5.1倍,附着力提高。与单独使用SeNPs相比,CS-FA/BP-SeNPs具有更好的扩散,减少液滴飞溅和缩回。在模拟降雨实验中,CS-FA/BP-SeNPs凝胶涂层在叶片表面的材料保留率为91.1%,而SeNPs的保留率为13.6%,表明CS-FA/BP-SeNPs凝胶涂层具有优异的耐雨性。在露天栽培试验中,CS-FA/BP-SeNPs凝胶包膜处理的葡萄叶片硒保持率比单独处理的葡萄叶片高141.3 ~ 192.7%,硒吸收率比单独处理的葡萄叶片高51.3 ~ 62.3%。此外,CS-FA/BP-SeNPs显著降低了尖孢镰刀菌的感染率,显示了在具有挑战性的室外环境中使用的潜力。这种热敏凝胶涂层通过其温度响应特性和强大的凝胶后粘附性,为提高纳米硒在作物叶片上的利用提供了有效的策略。
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来源期刊
GIANT
GIANT Multiple-
CiteScore
8.50
自引率
8.60%
发文量
46
审稿时长
42 days
期刊介绍: Giant is an interdisciplinary title focusing on fundamental and applied macromolecular science spanning all chemistry, physics, biology, and materials aspects of the field in the broadest sense. Key areas covered include macromolecular chemistry, supramolecular assembly, multiscale and multifunctional materials, organic-inorganic hybrid materials, biophysics, biomimetics and surface science. Core topics range from developments in synthesis, characterisation and assembly towards creating uniformly sized precision macromolecules with tailored properties, to the design and assembly of nanostructured materials in multiple dimensions, and further to the study of smart or living designer materials with tuneable multiscale properties.
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