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小麦 K(+) / Na (+) 选择性位点 Kna1 的图谱定位。

Mapping of the K(+)/Na (+) discrimination locus Kna1 in wheat.

机构信息

Department of Agronomy and Range Science, University of California, 95616, Davis, CA, USA.

出版信息

Theor Appl Genet. 1996 Mar;92(3-4):448-54. doi: 10.1007/BF00223692.

DOI:10.1007/BF00223692
PMID:24166270
Abstract

In saline environments, bread wheat, Triticum aestivum L. (genomes AABBDD), accumulates less Na(+) and more K(+) in expanding and young leaves than durum wheat, T. turgidum L. (genomes AABB). Higher K(+)/Na(+) ratios in leaves of bread wheat correlate with its higher salt tolerance. Chromosome 4D from bread wheat was shown in previous work to play an important role in the control of this trait and was recombined with chromosome 4B in the absence of the Ph1 locus. A population of plants disomic for 4D/4B recombined chromosomes in the genetic background of T. turgidum was developed to investigate the genetic control of K(+)/Na(+) discrimination by chromosome 4D. Evidence was obtained that the trait is controlled by a single locus, designated Kna1, in the long arm of chromosome 4D. In the present work, K(+)/Na(+) discrimination was determined for additional families with 4D/4B chromosomes. The concentrations of Na(+) and K(+)/Na(+) ratios in the youngest leaf blades clustered in two nonoverlapping classes, and all recombinant families could be unequivocally assigned to Kna1 and kna1 classes. The Kna1 locus scored this way was mapped on a short region in the 4DL arm and was completely linked to Xwg199, Xabc305, Xbcd.402, Xpsr567, and Xpsr375; it was also mapped as a quantitative trait. The results of the QTL analysis, based on the K(+)/Na(+) ratios in the young leaves of greenhousegrown plants and flag leaves of field-grown plants, agreed with the position of Knal determined as a qualitative trait. Several aspects of gene introgression by manipulation of the Ph1 locus are discussed.

摘要

在盐环境中,普通小麦(基因组 AABBDD)在扩展和幼叶中积累的钠离子比硬粒小麦(基因组 AABB)少,而积累的钾离子更多。普通小麦叶片中较高的钾/钠比与其较高的耐盐性相关。先前的研究表明,来自普通小麦的 4D 染色体在控制该性状方面起着重要作用,并且在没有 Ph1 基因座的情况下与 4B 染色体重组。开发了一组在硬粒小麦遗传背景下具有 4D/4B 重组染色体的植物群体,以研究 4D 染色体对钾/钠分辨的遗传控制。有证据表明,该性状由 4D 染色体长臂上的单个基因座 Kna1 控制。在本研究中,用具有 4D/4B 染色体的其他家系来确定钾/钠分辨。幼叶叶片中钠离子和钾/钠比的浓度聚类为两个不重叠的类别,所有重组家系都可以明确地归类为 Kna1 和 kna1 类。用这种方法标记的 Kna1 基因座被映射到 4DL 臂上的一个短区域,并且与 Xwg199、Xabc305、Xbcd.402、Xpsr567 和 Xpsr375 完全连锁;它也被作为数量性状进行了映射。基于温室生长的植株幼叶和田间生长的植株旗叶中钾/钠比的 QTL 分析结果与作为定性性状确定的 Knal 位置一致。讨论了通过操纵 Ph1 基因座进行基因导入的几个方面。

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本文引用的文献

1
Chromosomal location of a K/Na discrimination character in the D genome of wheat.小麦 D 基因组中 K/Na 鉴别特征的染色体定位。
Theor Appl Genet. 1987 Sep;74(5):584-8. doi: 10.1007/BF00288856.
2
Development of a chromosomal arm map for wheat based on RFLP markers.基于 RFLP 标记的小麦染色体臂图谱的构建。
Theor Appl Genet. 1992 May;83(8):1035-43. doi: 10.1007/BF00232969.
3
Construction of an RFLP map of barley.大麦 RFLP 图谱的构建。
根据生理和形态学方法确定耐盐胁迫的番茄基因型。
AoB Plants. 2023 Dec 11;15(6):plad037. doi: 10.1093/aobpla/plad037. eCollection 2023 Dec.
4
Haplotype-Based Genome-Wide Association Analysis Using Exome Capture Assay and Digital Phenotyping Identifies Genetic Loci Underlying Salt Tolerance Mechanisms in Wheat.利用外显子捕获分析和数字表型分析的基于单倍型的全基因组关联分析确定了小麦耐盐机制的遗传位点。
Plants (Basel). 2023 Jun 19;12(12):2367. doi: 10.3390/plants12122367.
5
Salt Stress-Regulation of Root Water Uptake in a Whole-Plant and Diurnal Context.盐胁迫下植物整体和昼夜节律中根系水分吸收的调控。
Int J Mol Sci. 2023 Apr 29;24(9):8070. doi: 10.3390/ijms24098070.
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Identification of QTL for reducing loss of grain yield under salt stress conditions in bi-parental populations derived from wheat landrace Hongmangmai.在源于小麦地方品种红芒麦的双列群体中鉴定耐盐胁迫降低粒产量的 QTL。
Theor Appl Genet. 2023 Mar 13;136(3):49. doi: 10.1007/s00122-023-04290-5.
7
Drought adaptability of different subspecies of tetraploid wheat (Triticum turgidum) under contrasting moisture conditions: Association with solvent retention capacity and quality-related traits.四倍体小麦不同亚种在不同水分条件下的耐旱适应性:与保水能力和品质相关性状的关系。
PLoS One. 2023 Feb 7;18(2):e0275412. doi: 10.1371/journal.pone.0275412. eCollection 2023.
8
Subgenome-biased expression and functional diversification of a Na/H antiporter homoeologs in salt tolerance of polyploid wheat.多倍体小麦耐盐性中钠/氢反向转运体同源基因的亚基因组偏向性表达与功能分化
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New Insight into Plant Saline-Alkali Tolerance Mechanisms and Application to Breeding.植物耐盐碱性机制的新见解及其在育种中的应用。
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Mechanism of high affinity potassium transporter (HKT) towards improved crop productivity in saline agricultural lands.高亲和性钾转运体(HKT)对盐碱农田作物生产力提高的作用机制。
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Physical distribution of recombination in B-genome chromosomes of tetraploid wheat.四倍体小麦 B 基因组染色体重组的物理分布。
Theor Appl Genet. 1993 Mar;86(1):121-7. doi: 10.1007/BF00223816.
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Comparison of the genetic organization of the early salt-stress-response gene system in salt-tolerant Lophopyrum elongatum and salt-sensitive wheat.耐盐中间偃麦草和盐敏感小麦早期盐胁迫应答基因系统的遗传组织比较。
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9
Structural evolution of wheat chromosomes 4A, 5A, and 7B and its impact on recombination.小麦 4A、5A 和 7B 染色体的结构进化及其对重组的影响。
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Differentiation between wheat chromosomes 4B and 4D.小麦 4B 和 4D 染色体的区分。
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