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Enhancement of aluminum tolerance in wheat by addition of chromosomes from the wild relative Leymus racemosus

机译:通过添加来自野生近缘羊草的染色体增加小麦的耐铝性

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摘要

Aluminum (Al) toxicity is the key factor limiting wheat production in acid soils. Soil liming has been used widely to increase the soil pH, but due to its high cost, breeding tolerant cultivars is more cost-effective mean to mitigate the problem. Tolerant cultivars could be developed by traditional breeding, genetic transformation or introgression of genes from wild relatives. We used 30 wheat alien chromosome addition lines to identify new genetic resources to improve wheat tolerance to Al and to identify the chromosomes harboring the tolerance genes. We evaluated these lines and their wheat background Chinese Spring for Al tolerance in hydroponic culture at various Al concentrations. We also investigated Al uptake, oxidative stress and cell membrane integrity. The L. racemosus chromosomes A and E significantly enhanced the Al tolerance of the wheat in term of relative root growth. At the highest Al concentration tested (200 μM), line E had the greatest tolerance. The introgressed chromosomes did not affect Al uptake of the tolerant lines. We attribute the improved tolerance conferred by chromosome E to improved cell membrane integrity. Chromosome engineering with these two lines could produce Al-tolerant wheat cultivars.
机译:铝(Al)毒性是限制酸性土壤中小麦产量的关键因素。土壤石灰已被广泛用于增加土壤的pH值,但由于成本高昂,因此耐育种是减轻该问题的更具成本效益的手段。可以通过传统育种,遗传转化或野生亲缘基因的基因渗入来开发耐性品种。我们使用了30条小麦外来染色体添加系来鉴定新的遗传资源,以提高小麦对Al的耐受性并鉴定出具有耐受性基因的染色体。我们评估了这些品系及其小麦背景中国春对不同铝浓度下水耕培养中铝的耐性。我们还研究了铝的摄取,氧化应激和细胞膜完整性。在相对根生长方面,消旋L. racemosus染色体A和E显着增强了小麦的A1耐性。在测试的最高Al浓度(200μM)下,线E具有最大的耐受性。渗入的染色体不影响耐性品系的Al摄取。我们将染色体E赋予的改善的耐受性归因于改善的细胞膜完整性。这两条品系的染色体工程可以产生耐铝的小麦品种。

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