杨树叶片糖质体转运调节淀粉利用和水分亏缺行为。

Scott A Harding, Trevor T Tuma, Kavita Aulakh, Maria A Ortega, Dong Ci, Yongbin Ou, Chung-Jui Tsai
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引用次数: 2

摘要

相容有机溶质(如蔗糖)的主动积累对叶片渗透调节有助于整个植物界的抗旱能力。在白杨(Populus tremula x alba)中,PtaSUT4编码一种叶绿体蔗糖-质子同调体,慢性轻度干旱或转基因操作导致其下调可增加叶片蔗糖和膨胀。虽然这可能构成一个单一的抗旱机制,但我们现在报告说,当PtaSUT4组成性下调时,其他可能在缺水恶化期间发生的调整会受到抑制。具体来说,我们报告说,当PtaSUT4组成下调的植物遭受水分亏缺时,淀粉使用和叶片相对含水量(RWC)动态受到损害。与转基因PtaSUT4-RNAi (rna干扰)或CRISPR(聚集规律穿插短回文重复序列)敲除(KO)系相比,野生型和载体对照系的叶片RWC下降更多。对照植株RWC的降低伴随着PtaSUT4转录物水平的增加和蔗糖从富含叶肉的叶片向中脉的调动。研究结果表明,SUT4表达的变化可以增加肿胀或降低RWC,这是对水分有效性减少的不同耐受机制。有证据表明,ptasut4介导的蔗糖在液泡和细胞质之间的分配不仅对蔗糖的总体丰度和膨胀很重要,而且对活性氧(ROS)和抗氧化动力学也很重要。有趣的是,在更严重的缺水条件下,加速淀粉分解能力的降低与RNAi和KO系中ROS的减少有关。本文认为PtaSUT4在水分胁迫下调控活性氧、抗氧化、淀粉利用和RWC动态中的作用,特别是在具有高抗水性的树木中具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Tonoplast Sucrose Trafficking Modulates Starch Utilization and Water Deficit Behavior in Poplar Leaves.

Tonoplast Sucrose Trafficking Modulates Starch Utilization and Water Deficit Behavior in Poplar Leaves.

Tonoplast Sucrose Trafficking Modulates Starch Utilization and Water Deficit Behavior in Poplar Leaves.

Tonoplast Sucrose Trafficking Modulates Starch Utilization and Water Deficit Behavior in Poplar Leaves.

Leaf osmotic adjustment by the active accrual of compatible organic solutes (e.g. sucrose) contributes to drought tolerance throughout the plant kingdom. In Populus tremula x alba, PtaSUT4 encodes a tonoplast sucrose-proton symporter, whose downregulation by chronic mild drought or transgenic manipulation is known to increase leaf sucrose and turgor. While this may constitute a single drought tolerance mechanism, we now report that other adjustments which can occur during a worsening water deficit are damped when PtaSUT4 is constitutively downregulated. Specifically, we report that starch use and leaf relative water content (RWC) dynamics were compromised when plants with constitutively downregulated PtaSUT4 were subjected to a water deficit. Leaf RWC decreased more in wild-type and vector control lines than in transgenic PtaSUT4-RNAi (RNA-interference) or CRISPR (clustered regularly interspersed short palindromic repeats) knockout (KO) lines. The control line RWC decrease was accompanied by increased PtaSUT4 transcript levels and a mobilization of sucrose from the mesophyll-enriched leaf lamina into the midvein. The findings suggest that changes in SUT4 expression can increase turgor or decrease RWC as different tolerance mechanisms to reduced water availability. Evidence is presented that PtaSUT4-mediated sucrose partitioning between the vacuole and the cytosol is important not only for overall sucrose abundance and turgor, but also for reactive oxygen species (ROS) and antioxidant dynamics. Interestingly, the reduced capacity for accelerated starch breakdown under worsening water-deficit conditions was correlated with reduced ROS in the RNAi and KO lines. A role for PtaSUT4 in the orchestration of ROS, antioxidant, starch utilization and RWC dynamics during water stress and its importance in trees especially, with their high hydraulic resistances, is considered.

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