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Characterization of a Novel Rice Dynamic Narrow-Rolled Leaf Mutant with Deficiencies in Aromatic Amino Acids

机译:新型水稻动态窄轧叶片突变体的表征,芳香族氨基酸缺乏

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The leaf blade is the main photosynthetic organ and its morphology is related to light energy capture and conversion efficiency. We isolated a novel rice Dynamic Narrow-Rolled Leaf 1 ( dnrl1 ) mutant showing reduced width of leaf blades, rolled leaves and lower chlorophyll content. The narrow-rolled leaf phenotype resulted from the reduced number of small longitudinal veins per leaf, smaller size and irregular arrangement of bulliform cells compared with the wild-type. DNRL1 was mapped to chromosome 7 and encoded a putative 3-deoxy-7-phosphoheptulonate synthase (DAHPS) which catalyzes the conversion of phosphoenolpyruvate and D-erythrose 4-phosphate to DAHP and phosphate. Sequence analysis revealed that a single base substitution (T–A) was detected in dnrl1 , leading to a single amino acid change (L376H) in the coding protein. The mutation led to a lower expression level of DNRL1 as well as the lower activity of DAHPS in the mutant compared with the wild type. Genetic complementation and over-expression of DNRL1 could rescue the narrow-rolled phenotype. DNRL1 was constitutively expressed in all tested organs and exhibited different expression patterns from other narrow-rolled leaf genes. DNRL1-GFP located to chloroplasts. The lower level of chlorophyll in dnrl1 was associated with the downregulation of the genes responsible for chlorophyll biosynthesis and photosynthesis. Furthermore, dnrl1 showed significantly reduced levels of aromatic amino acids including Trp, Phe and Tyr. We conclude that OsDAHPS, encoded by DNRL1 , plays a critical role in leaf morphogenesis by mediating the biosynthesis of amino acids in rice.
机译:叶片是主要的光合器官,其形态与光能捕获和转换效率有关。我们孤立一种新型稻米动态窄轧叶1(DNRL1)突变体,显示出叶片的宽度,轧叶和降低叶绿素含量。与野生型相比,窄辊叶片表型从每叶片的小纵向静脉数量减少,较小的血管细胞的较小尺寸和不规则排列。将DNRL1映射到染色体7并编码推定的3-脱氧-7-磷酸铝合金合酶(DAHP),其催化磷酸丙酮酸和D-赤酮4-磷酸酯转化为DAHP和磷酸盐。序列分析显示,在DNRL1中检测到单个基本取代(T-A),导致编码蛋白中的单个氨基酸变化(L376H)。与野生型相比,突变导致DNRL1的较低表达水平以及突变体中DAHP的较低活性。 DNRL1的遗传互补和过表达可以拯救狭窄的表型。在所有测试的器官中形成DNRL1体组成型表达,并从其他窄卷叶基因表现出不同的表达模式。 dnrl1-gfp位于叶绿体。 DNRL1中叶绿素的较低水平与负责叶绿素生物合成和光合作用的基因的下调有关。此外,DNRL1显示出显着降低的芳族氨基酸水平,包括TRP,PHE和TYR。我们得出结论,通过DNRL1编码的奥斯达特,通过介导氨基酸在水稻中的生物合成中,在叶形态发生中起着关键作用。

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