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首页> 外文期刊>Frontiers in Plant Science >Molecular Evolution and Association of Natural Variation in ZmARF31 with Low Phosphorus Tolerance in Maize
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Molecular Evolution and Association of Natural Variation in ZmARF31 with Low Phosphorus Tolerance in Maize

机译:玉米磷耐量低磷耐磷的<斜斜体> Zmarf31 /斜体的自然变化的分子演化与自然变化

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摘要

Low-phosphorus (P) stress is one of the major factors constraining plant growth and yield. Improving plant tolerance to P starvation through molecular breeding is an efficient alternative to increase grain production. In the study, 331 diverse maize inbreds were used to detect nucleotide diversity and favorable alleles of ZmARF31 , which plays a key role in low P responses and root architecture regulation. Significant phenotypic variation was found in each of 11 tested traits under both P and no-P treatments, and 30 single nucleotide polymorphisms (SNPs) and 14 insertion–deletions (InDels) were detected in ZmARF31 among the 331 maize inbreds. The 5′-untranslated region (UTR) of ZmARF31 showed a small linkage disequilibrium (LD) block under significant purifying selection, whereas the 3′-UTR showed the most abundant diversity and a larger LD block. Thirty, fourteen, and nine natural variations were identified in ZmARF31 that were associated with P-deficiency-tolerance traits ( P ≤ 0.01) by using the general linear model (GLM), GLM incorporated with population structure, and mixed linear model, respectively. Four SNPs were significantly associated with the total dry weight (TDW) in the three models, of which SNPs S410 and S462 were located in a complete LD block. A further verification conducted in a recombinant inbred line population revealed that favorable allele G/G of non-synonymous mutation S410 and favorable allele with a 38 bp insertion of InDel S1442 exhibited positive genetic effects on the TDW and total root tips, respectively. Expression analysis further confirmed that ZmARF31 was highly expressed in the roots of low-P-tolerant inbred 178. The protein encoded by ZmARF31 was located both in the nucleus and cytoplasm. Haplotypes carrying more favorable alleles showed a greater effect on phenotypic variation than single loci. Such haplotypes should be helpful to develop valuable genetic markers and perform maize molecular breeding.
机译:低磷(P)应力是限制植物生长和产量的主要因素之一。通过分子育种改善对P饥饿的植物耐受性是增加谷物生产的有效替代方案。在该研究中,331种不同的玉米血统用于检测ZMARF31的核苷酸多样性和有利等位基因,这在低P响应和根系结构中起着关键作用。在P和NO-P处理中的11个测试性质中的每一个中发现了显着的表型变异,并且在331型玉米近段中,在Zmarf31中检测到30个单一核苷酸多态性(SNP)和14个插入缺失(吲哚)。在显着净化选择下,​​Zmarf31的5'-过翻学的区域(UTR)显示出小的键化不平衡(LD)块,而3'-UTR显示出最丰富的多样性和更大的LD块。在ZMARF31中鉴定了三十,十四和九个自然变化,其通过使用通用线性模型(GLM),掺入群体结构和混合线性模型的通用线性模型(GLM)与P缺乏耐受性特征(P≤0.01)相关。四个SNP与三种模型中的总干重(TDW)显着相关,其中SNPS S410和S462位于完整的LD块中。在重组近交系群体中进行的进一步验证揭示了有利的等位基因G / g的非同义突变S410和具有38bp插入的indel S1442的有利等位基因分别对TDW和总根尖端的阳性遗传效应表现出阳性遗传效应。表达分析进一步证实,Zmarf31在低耐受近交178的根部中高度表达。由Zmarf31编码的蛋白质位于细胞核和细胞质中。具有更有利等位基因的单倍型对表型变异的效果大于单个基因座。这种单倍型应该有助于开发有价值的遗传标志物并进行玉米分子育种。

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