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淀粉磷酸化酶 2 对于玉米细胞碳水化合物的分配至关重要。

Starch phosphorylase 2 is essential for cellular carbohydrate partitioning in maize.

机构信息

National Key Laboratory of Crop Genetic Improvement, Hubei Hongshan Laboratory, College of Plant Science and Technology, Huazhong Agricultural University, Wuhan, 430070, China.

出版信息

J Integr Plant Biol. 2022 Sep;64(9):1755-1769. doi: 10.1111/jipb.13328. Epub 2022 Aug 23.

Abstract

Carbohydrate partitioning is essential for plant growth and development, and its hindrance will result in excess accumulation of carbohydrates in source tissues. Most of the related mutants in maize (Zea mays L.) display impaired whole-plant sucrose transport, but other mechanisms affecting carbohydrate partitioning have seldom been reported. Here, we characterized chlorotic leaf3 (chl3), a recessive mutation causing leaf chlorosis with starch accumulation excessively in bundle sheath chloroplasts, suggesting that chl3 is defective in carbohydrate partitioning. Positional cloning revealed that the chl3 phenotype results from a frameshift mutation in ZmPHOH, which encodes starch phosphorylase 2. Two mutants in ZmPHOH exhibited the same phenotype as chl3, and both alleles failed to complement the chl3 mutant phenotype in an allelism test. Inactivation of ZmPHOH in chl3 leaves reduced the efficiency of transitory starch conversion, resulting in increased leaf starch contents and altered carbohydrate metabolism patterns. RNA-seq revealed the transcriptional downregulation of genes related to photosynthesis and carbohydrate metabolism in chl3 leaves compared to the wild type. Our results demonstrate that transitory starch remobilization is very important for cellular carbohydrate partitioning in maize, in which ZmPHOH plays an indispensable role.

摘要

碳水化合物的分配对于植物的生长和发育至关重要,其分配受阻会导致源组织中碳水化合物的过度积累。玉米(Zea mays L.)中大多数相关的突变体表现出整个植株蔗糖转运受损,但很少有报道其他影响碳水化合物分配的机制。在这里,我们对叶绿素 3(chl3)进行了表征,这是一个隐性突变,导致叶片失绿,束鞘叶绿体中淀粉过度积累,表明 chl3 在碳水化合物分配上有缺陷。定位克隆表明,chl3 表型是由 ZmPHOH 基因的移码突变引起的,该基因编码淀粉磷酸化酶 2。ZmPHOH 中的两个突变体表现出与 chl3 相同的表型,并且在等位基因测试中,这两个等位基因都不能互补 chl3 突变体的表型。在 chl3 叶片中失活 ZmPHOH 降低了暂态淀粉转化的效率,导致叶片淀粉含量增加和碳水化合物代谢模式改变。RNA-seq 显示,与野生型相比,chl3 叶片中与光合作用和碳水化合物代谢相关的基因转录下调。我们的结果表明,暂态淀粉的再动员对于玉米细胞碳水化合物的分配非常重要,其中 ZmPHOH 起着不可或缺的作用。

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