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马铃薯块茎缺陷的遗传基础及耐热克隆的鉴定

Genetic Basis of Potato Tuber Defects and Identification of Heat-Tolerant Clones.

作者信息

Gautam Sanjeev, Pandey Jeewan, Scheuring Douglas C, Koym Jeffrey W, Vales M Isabel

机构信息

Department of Horticultural Sciences, Texas A&M University, College Station, TX 77843, USA.

Texas A&M AgriLife Research and Extension Center, Lubbock, TX 79403, USA.

出版信息

Plants (Basel). 2024 Feb 23;13(5):616. doi: 10.3390/plants13050616.

Abstract

Heat stress during the potato growing season reduces tuber marketable yield and quality. Tuber quality deterioration includes external (heat sprouts, chained tubers, knobs) and internal (vascular discoloration, hollow heart, internal heat necrosis) tuber defects, as well as a reduction in their specific gravity and increases in reducing sugars that result in suboptimal (darker) processed products (french fries and chips). Successfully cultivating potatoes under heat-stress conditions requires planting heat-tolerant varieties that can produce high yields of marketable tubers, few external and internal tuber defects, high specific gravity, and low reducing sugars (in the case of processing potatoes). Heat tolerance is a complex trait, and understanding its genetic basis will aid in developing heat-tolerant potato varieties. A panel of 217 diverse potato clones was evaluated for yield and quality attributes in Dalhart (2019 and 2020) and Springlake (2020 and 2021), Texas, and genotyped with the Infinium 22 K V3 Potato Array. A genome-wide association study was performed to identify genomic regions associated with heat-tolerance traits using the GWASpoly package. Quantitative trait loci were identified on chromosomes 1, 3, 4, 6, 8, and 11 for external defects and on chromosomes 1, 2, 3, 10, and 11 for internal defects. Yield-related quantitative trait loci were detected on chromosomes 1, 6, and 10 pertaining to the average tuber weight and tuber number per plant. Genomic-estimated breeding values were calculated using the StageWise package. Clones with low genomic-estimated breeding values for tuber defects were identified as donors of good traits to improve heat tolerance. The identified genomic regions associated with heat-tolerance attributes and the genomic-estimated breeding values will be helpful to develop new potato cultivars with enhanced heat tolerance in potatoes.

摘要

马铃薯生长季节的热应激会降低块茎的可销售产量和品质。块茎品质下降包括外部(热发芽、连生块茎、瘤状物)和内部(维管束变色、空心、内部热坏死)块茎缺陷,以及比重降低和还原糖增加,这会导致加工产品(薯条和薯片)质量欠佳(颜色更深)。要在热应激条件下成功种植马铃薯,需要种植耐热品种,这些品种要能产出高产量的可销售块茎,外部和内部块茎缺陷少,比重高,还原糖含量低(对于加工型马铃薯而言)。耐热性是一个复杂的性状,了解其遗传基础将有助于培育耐热马铃薯品种。对一组217个不同的马铃薯克隆品系在得克萨斯州的达尔哈特(2019年和2020年)以及斯普林莱克(2020年和2021年)进行了产量和品质属性评估,并用Infinium 22 K V3马铃薯芯片进行基因分型。使用GWASpoly软件包进行全基因组关联研究,以确定与耐热性状相关的基因组区域。在1号、3号、4号、6号、8号和11号染色体上鉴定出与外部缺陷相关的数量性状位点,在1号、2号、3号、10号和11号染色体上鉴定出与内部缺陷相关的数量性状位点。在1号、6号和10号染色体上检测到与产量相关的数量性状位点,涉及平均块茎重量和单株块茎数。使用StageWise软件包计算基因组估计育种值。将块茎缺陷基因组估计育种值低的克隆品系鉴定为改善耐热性的优良性状供体。所鉴定出的与耐热属性相关的基因组区域和基因组估计育种值将有助于培育耐热性更强的马铃薯新品种。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f2e/10934851/ddd390711fab/plants-13-00616-g001.jpg

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