首页> 外文期刊>Journal of Experimental Botany >QTLs for shelf life in lettuce co-locate with those for leaf biophysical properties but not with those for leaf developmental traits.
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QTLs for shelf life in lettuce co-locate with those for leaf biophysical properties but not with those for leaf developmental traits.

机译:生菜中保质期的QTL与叶片生物物理特性的QTL位于同一位置,但与叶片发育性状的QTL不在同一位置。

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Developmental and biophysical leaf characteristics that influence post-harvest shelf life in lettuce, an important leafy crop, have been examined. The traits were studied using 60 informative F9 recombinant inbed lines (RILs) derived from a cross between cultivated lettuce (Lactuca sativa cv. Salinas) and wild lettuce (L. serriola acc. UC96US23). Quantitative trait loci (QTLs) for shelf life co-located most closely with those for leaf biophysical properties such as plasticity, elasticity, and breakstrength, suggesting that these are appropriate targets for molecular breeding for improved shelf life. Significant correlations were found between shelf life and leaf size, leaf weight, leaf chlorophyll content, leaf stomatal index, and epidermal cell number per leaf, indicating that these pre-harvest leaf development traits confer post-harvest properties. By studying the population in two contrasting environments in northern and southern Europe, the genotype by environment interaction effects of the QTLs relevant to leaf development and shelf life were assessed. In total, 107 QTLs, distributed on all nine linkage groups, were detected from the 29 traits. Only five QTLs were common in both environments. Several areas where many QTLs co-located (hotspots) on the genome were identified, with relatively little overlap between developmental hotspots and those relating to shelf life. However, QTLs for leaf biophysical properties (breakstrength, plasticity, and elasticity) and cell area correlated well with shelf life, confirming that the ideal ideotype lettuce should have small cells with strong cell walls. The identification of QTLs for leaf development, strength, and longevity will lead to a better understanding of processability at a genetic and cellular level, and allow the improvement of salad leaf quality through marker-assisted breeding..
机译:已经研究了影响生菜(一种重要的多叶作物)收获后货架期的发育和生物物理叶片特征。使用60种信息丰富的F9重组内嵌品系(RILs)研究了这些性状,这些品系来自栽培的生菜(Lactuca sativa cv。Salinas)和野菜(L. serriola acc。UC96US23)之间的杂交。保质期的数量性状基因座(QTL)与叶片生物物理特性(如可塑性,弹性和断裂强度)最接近,这表明它们是分子育种以延长保质期的合适目标。发现保质期与叶片大小,叶片重量,叶片叶绿素含量,叶片气孔指数和每片叶片表皮细胞数之间存在显着相关性,表明这些收获前叶片发育特性赋予收获后特性。通过研究北欧和南欧两个不同环境中的种群,评估了与叶片发育和保质期有关的QTL受环境相互作用影响的基因型。总共从29个性状中检测到107个QTL,分布在所有9个连锁组中。在这两种环境中,只有五个QTL是常见的。鉴定出基因组中许多QTL共同定位(热点)的几个区域,发育热点和与货架寿命相关的热点之间的重叠很少。但是,用于叶片生物物理特性(断裂强度,可塑性和弹性)和细胞面积的QTL与保质期密切相关,这证实了理想的表型生菜应该具有小细胞且细胞壁牢固。对叶片发育,强度和寿命的QTL的鉴定将有助于在遗传和细胞水平上更好地理解加工性,并通过标记辅助育种提高色拉叶片的品质。

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