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首页> 外文期刊>Journal of Experimental Botany >Physiological, genomic and transcriptional diversity in responses to boron deficiency in rapeseed genotypes
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Physiological, genomic and transcriptional diversity in responses to boron deficiency in rapeseed genotypes

机译:油菜基因型对缺硼反应的生理,基因组和转录多样性

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摘要

Allotetraploid rapeseed (Brassica napus L. A(n)A(n)C(n)C(n), 2n=4x=38) is highly susceptible to boron (B) deficiency, a widespread limiting factor that causes severe losses in seed yield. The genetic variation in the sensitivity to B deficiency found in rapeseed genotypes emphasizes the complex response architecture. In this research, a B-inefficient genotype, 'Westar 10' ('W10'), responded to B deficiencies during vegetative and reproductive development with an over-accumulation of reactive oxygen species, severe lipid peroxidation, evident plasmolysis, abnormal floral organogenesis, and widespread sterility compared to a B-efficient genotype, 'Qingyou 10' ('QY10'). Whole-genome re-sequencing (WGS) of 'QY10' and 'W10' revealed a total of 1 605 747 single nucleotide polymorphisms and 218 755 insertions/deletions unevenly distributed across the allotetraploid rapeseed genome (similar to 1130 Mb). Digital gene expression (DGE) profiling identified more genes related to B transporters, antioxidant enzymes, and the maintenance of cell walls and membranes with higher transcript levels in the roots of 'QY10' than in 'W10' under B deficiency. Furthermore, based on WGS and bulked segregant analysis of the doubled haploid (DH) line pools derived from 'QY10' and 'W10', two significant quantitative trait loci (QTLs) for B efficiency were characterized on chromosome C2, and DGE-assisted QTL-seq analyses then identified a nodulin 26-like intrinsic protein gene and an ATP-binding cassette (ABC) transporter gene as the corresponding candidates regulating B efficiency. This research facilitates a more comprehensive understanding of the differential physiological and transcriptional responses to B deficiency and abundant genetic diversity in rapeseed genotypes, and the DGE-assisted QTL-seq analyses provide novel insights regarding the rapid dissection of quantitative trait genes in plant species with complex genomes.
机译:异种四倍体油菜籽(甘蓝型油菜A.n(A)C(n)C(n),2n = 4x = 38)对硼(B)缺乏非常敏感,硼缺乏是造成种子严重损失的普遍限制因素。让。油菜基因型对B缺乏症敏感性的遗传变异强调了复杂的反应体系。在这项研究中,B型无效基因型'Westar 10'('W10')在营养和生殖发育过程中对B缺乏症做出了反应,其中活性氧的过度积累,严重的脂质过氧化,明显的溶酶作用,异常的花器官发生,与B型高效基因型“ Qingyou 10”(“ QY10”)相比,其广泛的无菌性。 'QY10'和'W10'的全基因组重测序(WGS)显示,共有1,605 747个单核苷酸多态性和218 755个插入/缺失在异源四倍体油菜籽基因组中分布不均匀(类似于1130 Mb)。数字基因表达(DGE)分析鉴定出与B转运蛋白,抗氧化酶以及维持细胞壁和细胞膜相关的更多基因,在B缺乏下,“ QY10”根部的转录水平高于“ W10”。此外,基于WGS和对源自“ QY10”和“ W10”的双倍单倍体(DH)线池的大量分离物分析,在染色体C2和DGE辅助QTL上鉴定了两个重要的B效率定量性状基因座(QTL)。 -seq分析然后鉴定了结节蛋白26样内在蛋白基因和ATP结合盒(ABC)转运蛋白基因,作为调节B效率的相应候选物。这项研究有助于更全面地了解油菜基因型对B缺乏和丰富的遗传多样性的生理和转录差异反应,DGE辅助的QTL-seq分析为复杂物种植物中数量性状基因的快速解剖提供了新的见解。基因组。

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