Mycorrhizal status and host genotype interact to shape plant nutrition in field grown maize (Zea mays ssp. mays).

IF 3.3 2区 生物学 Q2 MYCOLOGY Mycorrhiza Pub Date : 2023-11-01 Epub Date: 2023-10-18 DOI:10.1007/s00572-023-01127-3
Meng Li, Sergio Perez-Limón, M Rosario Ramírez-Flores, Benjamín Barrales-Gamez, Marco Antonio Meraz-Mercado, Gregory Ziegler, Ivan Baxter, Víctor Olalde-Portugal, Ruairidh J H Sawers
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Abstract

Arbuscular mycorrhizal fungi (AMF) establish symbioses with the major cereal crops, providing plants with increased access to nutrients while enhancing their tolerance to toxic heavy metals. However, not all plant varieties benefit equally from this association. In this study, we used quantitative trait loci (QTL) mapping to evaluate the combined effect of host genotypic variation (G) and AMF across 141 genotypes on the concentration of 20 mineral elements in the leaves and grain of field grown maize (Zea mays spp. mays). Our mapping design included selective incorporation of a castor AMF-incompatibility mutation, allowing estimation of AMF, QTL and QTLxAMF effects by comparison of mycorrhizal and non-mycorrhizal plants. Overall, AMF compatibility was associated with higher concentrations of boron (B), copper (Cu), molybdenum (Mo), phosphorus (P), selenium (Se) and zinc (Zn) and lower concentrations of arsenic (As), iron (Fe), magnesium (Mg), manganese (Mn), potassium (K) and strontium (Sr). In addition to effects on individual elements, pairwise correlation matrices for element concentration differed between mycorrhizal and non-mycorrhizal plants. We mapped 22 element QTLs, including 18 associated with QTLxAMF effects that indicate plant genotype-specific differences in the impact of AMF on the host ionome. Although there is considerable interest in AMF as biofertilizers, it remains challenging to estimate the impact of AMF in the field. Our design illustrates an effective approach for field evaluation of AMF effects. Furthermore, we demonstrate the capacity of the ionome to reveal host genotype-specific variation in the impact of AMF on plant nutrition.

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菌根状态和寄主基因型相互作用,形成玉米(Zea mays ssp.mays)的植物营养。
丛枝菌根真菌(AMF)与主要谷物作物建立共生体,为植物提供更多的营养,同时增强其对有毒重金属的耐受性。然而,并不是所有的植物品种都能平等地从这种关联中受益。在本研究中,我们使用数量性状基因座(QTL)定位来评估141个基因型的宿主基因型变异(G)和AMF对玉米叶片和籽粒中20种矿物元素浓度的综合影响。我们的定位设计包括选择性掺入蓖麻AMF不亲和突变,通过比较菌根和非菌根植物来估计AMF、QTL和QTLxAMF的影响。总体而言,AMF兼容性与较高浓度的硼(B)、铜(Cu)、钼(Mo)、磷(P)、硒(Se)和锌(Zn)以及较低浓度的砷(As)、铁(Fe)、镁(Mg)、锰(Mn)、钾(K)和锶(Sr)有关。除了对单个元素的影响外,菌根植物和非菌根植物的元素浓度的成对相关矩阵也不同。我们定位了22个元件QTL,其中18个与QTLxAMF效应相关,表明AMF对寄主离子组影响的植物基因型特异性差异。尽管人们对AMF作为生物肥料非常感兴趣,但估计AMF在该领域的影响仍然具有挑战性。我们的设计说明了现场评估AMF效应的有效方法。此外,我们证明了离子组在AMF对植物营养影响中揭示宿主基因型特异性变异的能力。
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来源期刊
Mycorrhiza
Mycorrhiza 生物-真菌学
CiteScore
8.20
自引率
2.60%
发文量
40
审稿时长
6-12 weeks
期刊介绍: Mycorrhiza is an international journal devoted to research into mycorrhizas - the widest symbioses in nature, involving plants and a range of soil fungi world-wide. The scope of Mycorrhiza covers all aspects of research into mycorrhizas, including molecular biology of the plants and fungi, fungal systematics, development and structure of mycorrhizas, and effects on plant physiology, productivity, reproduction and disease resistance. The scope also includes interactions between mycorrhizal fungi and other soil organisms and effects of mycorrhizas on plant biodiversity and ecosystem structure. Mycorrhiza contains original papers, short notes and review articles, along with commentaries and news items. It forms a platform for new concepts and discussions, and is a basis for a truly international forum of mycorrhizologists from all over the world.
期刊最新文献
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