首页|期刊导航|植物营养与肥料学报|高、低锌冬小麦品种籽粒锌含量对施氮的响应差异及其机制

高、低锌冬小麦品种籽粒锌含量对施氮的响应差异及其机制OA

Differences in the response of grain zinc concentration to nitrogen application between high-and low-zinc winter wheat cultivars and the underlying mechanisms

中文摘要英文摘要

[目的]选育高产高锌小麦品种是满足居民对粮食供给和锌营养品质双重需求的重要途径.本研究旨在研究高、低锌小麦品种籽粒锌含量对施氮的响应差异以及可能的机制.[方法]利用pH 8.55、有效锌含量为0.58 mg/kg的石灰性土壤进行盆栽试验,本研究选取 4 个高产小麦品种作为供试材料,这些品种的产量水平无显著差异,但籽粒锌含量差异显著.设不施氮和施氮 200 kg/hm2 两个处理.在小麦拔节、抽穗、灌浆和成熟期,取根际土壤、非根际土壤及植株样品,测定土壤pH、不同形态锌及有效锌含量,分析植株根、茎叶、穗及籽粒生物量及锌含量;计算根际锌活化指数、根系锌获取能力、根向地上部及茎叶向穗的锌转移指数、成熟期锌收获指数及各指标对施氮的响应.[结果]施氮后高锌品种籽粒锌含量由 29.1 mg/kg提高到 42.8 mg/kg,提升幅度 48%;低锌品种籽粒锌含量由 21.1 mg/kg提高到 23.4 mg/kg,提升幅度仅 11%.与不施氮相比,高锌品种施氮后,在开花、灌浆及成熟期,地上部锌吸收量分别提升 101%、151%及 108%;在开花和灌浆期,根系锌获取效率分别提升 26.1%和 53.1%;在灌浆期,根向地上部锌转移指数提升 78.6%,提升幅度均大于低锌品种.施氮降低了小麦根际土壤pH,高、低锌品种分别降低 0.08~0.12、0.07~0.09,高锌品种在拔节、开花及灌浆期根际锌活化指数分别提高 17.1%、33.5%和 26.0%,而低锌品种LZn1 根际锌活化指数仅在开花期提高8.8%,且在灌浆期降低 9.2%;高锌品种根际土壤有效锌含量提升 30.9%~67.4%,而低锌品种仅提升3.1%~26.0%.此外,施氮后,高锌品种铵态氮、硝态氮含量分别是不施氮条件下的 1.96~3.65 和24.7~30.9 倍,提升幅度均大于低锌品种.[结论]在缺锌的石灰性土壤上,施氮显著提高小麦籽粒锌含量,且高锌小麦品种对氮肥响应较低锌品种更加敏感.其机制在于:施氮后高锌品种根际酸化更明显,根际土壤对锌的活化能力更强,尤其在开花及灌浆期,大大提升了根系有效锌的供应能力;此外,施氮后高锌品种根系锌获取、根系向地上部的锌转移能力提升幅度更大,最终实现地上部锌累积量及籽粒锌含量协同提升.

[Objectives]The breeding of high-yielding and high-zinc(Zn)wheat cultivars is an important approach to meet the dual demands of grain supply and Zn nutritional quality for residents.We investigated the differences in grain Zn content response to nitrogen application between high-and low-Zn wheat cultivars,as well as the underlying mechanisms.[Methods]A pot experiment was conducted using a calcareous soil with a pH of 8.55 and available Zn content of 0.58 mg/kg.Four high-yielding wheat cultivars with comparable yield performance but contrasting grain Zn concentrations were selected as experimental materials.Two treatments were set:no nitrogen application and nitrogen application at a rate of 200 kg/hm2.Rhizosphere soil,non-rhizosphere soil,and plant samples were collected at the jointing,anthesis,grain-filling,and maturity stages.We determined soil pH,fractions of different Zn forms,and available Zn content;analyzed biomass and Zn concentrations in roots,stems and leaves,spikes,and grains;and calculated key indices including the rhizosphere Zn activation index,root Zn uptake efficiency,root-to-shoot and stem-leaf-to-spike Zn transfer coefficients,and Zn harvest index at maturity,along with their responses to N fertilization.[Results]After nitrogen application,the grain Zn content of high-Zn cultivars increased from 29.1 mg/kg to 42.8 mg/kg(a 48%increase),while that of low-Zn cultivars rose only from 21.1 mg/kg to 23.4 mg/kg(an 11%increase).Compared with no nitrogen application,the high-Zn cultivars exhibited 101%,151%,and 108%higher Zn uptake in the shoot at anthesis,grain-filling,and maturity stages,respectively.Root Zn acquisition efficiency increased by 26.1%and 53.1%at anthesis and grain-filling stages,and the root-to-shoot Zn transfer index increased by 78.6%during grain-filling—all these increments were statistically significantly larger than those observed in low-Zn cultivars.N application reduced rhizosphere soil pH,with decreases of 0.08-0.12 in high-Zn cultivars and 0.07-0.09 in low-Zn cultivars.The rhizosphere Zn activation index of high-Zn cultivars increased by 17.1%,33.5%,and 26.0%at jointing,anthesis,and grain-filling stages,whereas that in LZn1 cultivar increased only by 8.8%at anthesis,and even decreased by 9.2%during grain-filling.The available Zn content in the rhizosphere of high-Zn cultivars increased by 30.9%-67.4%,far exceeding the 3.1%-26.0%increase in low-Zn cultivars.In addition,after nitrogen application,the rhizosphere ammonium and nitrate nitrogen content in high-Zn cultivars increased by 1.96-3.65-fold and 24.7-30.9-fold,respectively,both greater increases than in low-Zn cultivars.[Conclusions]On Zn-deficient calcareous soils,nitrogen application significantly enhances grain Zn content in wheat,and high-Zn wheat cultivars are more responsive to nitrogen fertilizer.The primary mechanism lies in the more pronounced rhizosphere acidification in high-Zn cultivars after nitrogen application,which enhances Zn mobilization capacity—especially during the anthesis and grain-filling periods—greatly improving the supply of bioavailable Zn.Meanwhile,the greater improvements in root Zn acquisition and root-to-shoot translocation capacity lead to significantly higher Zn accumulation in the shoot and ultimately in the grain.

施艳;李金杰;杨家庄;李艳艳;蔡仁杏;王朝辉;李超;杨珺

云南农业大学资源与环境学院,云南 昆明 650201云南农业大学资源与环境学院,云南 昆明 650201云南农业大学资源与环境学院,云南 昆明 650201云南农业大学资源与环境学院,云南 昆明 650201云南农业大学资源与环境学院,云南 昆明 650201西北农林科技大学资源环境学院,陕西 杨凌 712100云南农业大学资源与环境学院,云南 昆明 650201||云南省耕地培育与产能提升重点实验室,云南 昆明 650201云南农业大学资源与环境学院,云南 昆明 650201||云南省耕地培育与产能提升重点实验室,云南 昆明 650201

小麦锌根际活化锌吸收转移

wheatzincnitrogenzinc rhizo-mobilizationzinc uptake and translocation

《植物营养与肥料学报》 2026 (7)

1520-1532,13

国家重点研发计划(2023YFD1901204)云南省农业联合专项(202401BD070001-058).

10.11674/zwyf.2025475

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