The Vacuolar Inositol Transporter BvINT1;1 Contributes to Raffinose Biosynthesis and Reactive Oxygen Species Scavenging During Cold Stress in Sugar Beet.

IF 6 1区 生物学 Q1 PLANT SCIENCES Plant, Cell & Environment Pub Date : 2025-01-08 DOI:10.1111/pce.15367
Johannes Berg, Cristina Martins Rodrigues, Claire Scheid, Yana Pirrotte, Cristiana Picco, Joachim Scholz-Starke, Wolfgang Zierer, Olaf Czarnecki, Dieter Hackenberg, Frank Ludewig, Wolfgang Koch, H Ekkehard Neuhaus, Christina Müdsam, Benjamin Pommerrenig, Isabel Keller
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Abstract

Despite a high sucrose accumulation in its taproot vacuoles, sugar beet (Beta vulgaris subsp. vulgaris) is sensitive to freezing. Earlier, a taproot-specific accumulation of raffinose was shown to have beneficial effects on the freezing tolerance of the plant. However, synthesis of raffinose and other oligosaccharides of the raffinose family depends on the availability of myo-inositol. Since inositol and inositol-metabolising enzymes reside in different organelles, functional inositol metabolism and raffinose synthesis depend on inositol transporters. We identified five homologues of putative inositol transporters in the sugar beet genome, two of which, BvINT1;1 and BvINT1;2, are localised at the tonoplast. Among these, only the transcript of BvINT1;1 is highly upregulated in sugar beet taproots under cold. BvINT1;1 exhibits a high transport specificity for inositol and sugar beet mutants lacking functional BvINT1;1 contain increased inositol levels, likely accumulating in the vacuole, and decreased raffinose contents under cold treatment. Due to the quenching capacity of raffinose for Reactive Oxygen Species (ROS), which accumulate under cold stress, bvint1;1 sugar beet plants show increased expression of both, ROS marker genes and detoxifying enzymes. Based on these findings, we conclude that the vacuolar inositol transporter BvINT1;1 is contributing to ROS-homoeostasis in the cold metabolism of sugar beet.

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液泡肌醇转运蛋白BvINT1参与甜菜冷胁迫下棉子糖的生物合成和活性氧清除。
尽管甜菜(Beta vulgaris subsp.)在其主根液泡中积累了大量的蔗糖。Vulgaris)对冰冻很敏感。早些时候,主根特异性棉子糖积累被证明对植物的耐寒性有有益的影响。然而,棉子糖和其他棉子糖家族低聚糖的合成依赖于肌醇的可用性。由于肌醇和肌醇代谢酶驻留在不同的细胞器中,功能性肌醇代谢和棉子糖合成依赖于肌醇转运体。我们在甜菜基因组中鉴定了5个假定的肌醇转运蛋白同源物,其中两个,BvINT1;1和BvINT1;2,定位于肌质体。其中,只有BvINT1;1的转录本在低温下的甜菜主根中高度上调。BvINT1;1对缺乏功能性BvINT1;1的肌醇和甜菜突变体表现出高度的运输特异性,在冷处理下,肌醇水平升高,可能积聚在液泡中,棉子糖含量降低。由于棉子糖对低温胁迫下积累的活性氧(ROS)具有猝灭能力,bvint1;1甜菜植株的ROS标记基因和解毒酶的表达均有所增加。基于这些发现,我们得出结论,液泡肌醇转运蛋白BvINT1;1参与了甜菜冷代谢中的ros稳态。
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来源期刊
Plant, Cell & Environment
Plant, Cell & Environment 生物-植物科学
CiteScore
13.30
自引率
4.10%
发文量
253
审稿时长
1.8 months
期刊介绍: Plant, Cell & Environment is a premier plant science journal, offering valuable insights into plant responses to their environment. Committed to publishing high-quality theoretical and experimental research, the journal covers a broad spectrum of factors, spanning from molecular to community levels. Researchers exploring various aspects of plant biology, physiology, and ecology contribute to the journal's comprehensive understanding of plant-environment interactions.
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