MOE Key Laboratory of Environment Remediation and Ecological Health, College of Environmental and Resource Science, Zhejiang University Hangzhou, China ; Department of Plant Sciences, University of California Davis, Davis, CA, USA.
MOE Key Laboratory of Environment Remediation and Ecological Health, College of Environmental and Resource Science, Zhejiang University Hangzhou, China.
Front Plant Sci. 2015 Jan 21;5:808. doi: 10.3389/fpls.2014.00808. eCollection 2014.
Enhancing nutrient uptake and the subsequent elemental transport from the sites of application to sites of utilization is of great importance to the science and practical field application of foliar fertilizers. The aim of this study was to investigate the mobility of various foliar applied zinc (Zn) formulations in sunflower (Helianthus annuus L.) and to evaluate the effects of the addition of an organic biostimulant on phloem loading and elemental mobility. This was achieved by application of foliar formulations to the blade of sunflower (H. annuus L.) and high-resolution elemental imaging with micro X-ray fluorescence (μ-XRF) to visualize Zn within the vascular system of the leaf petiole. Although no significant increase of total Zn in petioles was determined by inductively-coupled plasma mass-spectrometer, μ-XRF elemental imaging showed a clear enrichment of Zn in the vascular tissues within the sunflower petioles treated with foliar fertilizers containing Zn. The concentration of Zn in the vascular of sunflower petioles was increased when Zn was applied with other microelements with EDTA (commercial product Kick-Off) as compared with an equimolar concentration of ZnSO4 alone. The addition of macronutrients N, P, K (commercial product CleanStart) to the Kick-Off Zn fertilizer, further increased vascular system Zn concentrations while the addition of the microbially derived organic biostimulant "GroZyme" resulted in a remarkable enhancement of Zn concentrations in the petiole vascular system. The study provides direct visualized evidence for phloem transport of foliar applied Zn out of sites of application in plants by using μ-XRF technique, and suggests that the formulation of the foliar applied Zn and the addition of the organic biostimulant GroZyme increases the mobility of Zn following its absorption by the leaf of sunflower.
提高养分吸收,并将其随后从施药部位运输到利用部位,这对叶面肥的科学和实际应用都非常重要。本研究的目的是研究各种叶面喷施锌(Zn)制剂在向日葵(Helianthus annuus L.)中的移动性,并评估添加有机生物刺激素对韧皮部装载和元素移动性的影响。这是通过将叶面制剂施用于向日葵叶片和使用微 X 射线荧光(μ-XRF)进行高分辨率元素成像来实现的,以可视化叶片叶柄维管束系统中的 Zn。尽管通过电感耦合等离子体质谱仪(ICP-MS)未确定叶柄中总 Zn 的显著增加,但μ-XRF 元素成像显示,用含有 Zn 的叶面肥处理的向日葵叶柄的维管组织中 Zn 明显富集。与单独使用 ZnSO4 相比,当 Zn 与 EDTA 中的其他微量元素(商业产品 Kick-Off)一起施用时,向日葵叶柄的维管束中 Zn 的浓度增加。将氮(N)、磷(P)、钾(K)等大量元素(商业产品 CleanStart)添加到 Kick-Off Zn 肥料中,进一步增加了韧皮系统中的 Zn 浓度,而添加微生物衍生的有机生物刺激素“GroZyme”则导致叶柄维管束系统中的 Zn 浓度显著增加。该研究通过使用μ-XRF 技术为叶面喷施 Zn 通过韧皮部从施药部位向植物中运输提供了直接可视化证据,并表明叶面喷施 Zn 的制剂和添加有机生物刺激素 GroZyme 增加了 Zn 在向日葵叶片吸收后的移动性。