首页> 外文期刊>Annals of Botany >Characterization of a rice variety with high hydraulic conductance and identification of the chromosome region responsible using chromosome segment substitution lines.
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Characterization of a rice variety with high hydraulic conductance and identification of the chromosome region responsible using chromosome segment substitution lines.

机译:具有高水力传导性的水稻品种的鉴定和使用染色体片段替代系鉴定负责的染色体区域。

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BACKGROUND AND AIMS: The rate of photosynthesis in paddy rice often decreases at noon on sunny days because of water stress, even under submerged conditions. Maintenance of higher rates of photosynthesis during the day might improve both yield and dry matter production in paddy rice. A high-yielding indica variety, 'Habataki', maintains a high rate of leaf photosynthesis during the daytime because of the higher hydraulic conductance from roots to leaves than in the standard japonica variety 'Sasanishiki'. This research was conducted to characterize the trait responsible for the higher hydraulic conductance in 'Habataki' and identified a chromosome region for the high hydraulic conductance. METHODS: Hydraulic conductance to passive water transport and to osmotic water transport was determined for plants under intense transpiration and for plants without transpiration, respectively. The varietal difference in hydraulic conductance was examined with respect to root surface area and hydraulic conductivity (hydraulic conductance per root surface area, L(p)). To identify the chromosome region responsible for higher hydraulic conductance, chromosome segment substitution lines (CSSLs) derived from a cross between 'Sasanishiki' and 'Habataki' were used. KEY RESULTS: The significantly higher hydraulic conductance resulted from the larger root surface area not from L(p) in 'Habataki'. A chromosome region associated with the elevated hydraulic conductance was detected between RM3916 and RM2431 on the long arm of chromosome 4. The CSSL, in which this region was substituted with the 'Habataki' chromosome segment in the 'Sasanishiki' background, had a larger root mass than 'Sasanishiki'. CONCLUSIONS: The trait for increasing plant hydraulic conductance and, therefore, maintaining the higher rate of leaf photosynthesis under the conditions of intense transpiration in 'Habataki' was identified, and it was estimated that there is at least one chromosome region for the trait located on chromosome 4.
机译:背景与目的:即使在淹水条件下,由于水分胁迫,水稻的光合作用速率通常在晴天的中午会降低。白天保持较高的光合作用速率可能会提高水稻的产量和干物质产量。高产in稻品种“ Habataki”在白天保持较高的叶片光合作用,因为从根到叶的水力传导率比标准粳稻品种“ Sasanishiki”更高。进行这项研究以表征“ Habataki”中较高的水力传导性状的特征,并确定了高水力传导性的染色体区域。方法:确定了在强蒸腾作用下植物和无蒸腾作用下植物的被动水输送和渗透水输送的水力传导。关于根表面积和水力传导率(每个根表面积的水力传导率,L(p))检查了水力传导率的各种差异。为了确定负责更高水力传导的染色体区域,使用了源自“ Sasanishiki”和“ Habataki”之间杂交的染色体片段替代系(CSSL)。关键结果:较高的水力传导率是由较大的根部表面积引起的,而不是由'Habataki'中的L(p)引起的。在第4号染色体的长臂上的RM3916和RM2431之间检测到一个与水力传导性升高相关的染色体区域。在该区域中,被“ Sasanishiki”背景中的“ Habataki”染色体片段取代的CSSL具有较大的根比“ Sasanishiki”更重。结论:在'Habataki'中确定了增加植物水力传导性的特征,因此在高蒸腾条件下保持较高的叶片光合作用速率,并且据估计该特征至少存在一个染色体区域。染色体4。

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