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Expression of MdCCD7 in the scion determines the extent of sylleptic branching and the primary shoot growth rate of apple trees

机译:MdCCD7在接穗中的表达决定了糖浆分支的程度和苹果树的初生芽生长速率

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摘要

Branching has a major influence on the overall shape and productivity of a plant. Strigolactones (SLs) have been identified as plant hormones that have a key role in suppressing the outgrowth of axillary meristems. CAROTENOID CLEAVAGE DIOXYGENASE (CCD) genes are integral to the biosynthesis of SLs and are well characterized in annual plants, but their role in woody perennials is relatively unknown. We identified CCD7 and CCD8 orthologues from apple and demonstrated that MdCCD7 and MdCCD8 are able to complement the Arabidopsis branching mutants max3 and max4 respectively, indicating conserved function. RNAi lines of MdCCD7 show reduced gene expression and increased branching in apple. We performed reciprocal grafting experiments with combinations of MdCCD7 RNAi and wild-type ‘Royal Gala’ as rootstocks and scion. Unexpectedly, wild-type roots were unable to suppress branching in MdCCD7 RNAi scions. Another key finding was that MdCCD7 RNAi scions initiated phytomers at an increased rate relative to the wild type, resulting in a greater node number and primary shoot length. We suggest that localized SL biosynthesis in the shoot, rather than roots, controls axillary bud outgrowth and shoot growth rate in apple.
机译:分枝对植物的整体形状和生产力有重大影响。己内酯(SLs)已被确定为植物激素,在抑制腋生分生组织的生长中具有关键作用。类胡萝卜素裂解二氧合酶(CCD)基因是SL的生物合成所不可或缺的,并且在一年生植物中具有很好的特征,但是它们在木质多年生植物中的作用相对未知。我们从苹果中鉴定了CCD7和CCD8直系同源物,并证明MdCCD7和MdCCD8能够分别互补拟南芥分支突变体max3和max4,表明其保守功能。 MdCCD7的RNAi系显示苹果中基因表达降低和分支增加。我们使用MdCCD7 RNAi和野生型“ Royal Gala”作为砧木和接穗的组合进行了相互嫁接实验。出乎意料的是,野生型根无法抑制MdCCD7 RNAi接穗中的分支。另一个关键发现是MdCCD7 RNAi接穗以相对于野生型增加的速率启动了phytomer,从而导致更大的结节数和初级芽长度。我们建议,在茎中进行局部SL生物合成,而不是根,可以控制苹果中腋芽的生长和芽的生长速度。

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