Beijing Key Laboratory of Growth and Developmental Regulation for Protected Vegetable Crops, China Agriculture University, Beijing, 100193, China; Yantai Agricultural Science and Technology Institute, Yantai, 265500, China.
Plant Cell Environ. 2014 Mar;37(3):795-810. doi: 10.1111/pce.12200. Epub 2013 Oct 16.
Sucrose synthase (SUS; EC 2.4.1.13) plays important roles in sugar metabolism and abiotic stress response. But the genes encoding SUS in cucumber (Cucumis sativus L.) have not been well studied. Here, we isolated four cucumber sucrose synthase genes (CsSUS). Among them, CsSUS3, which highly expressed in the roots, was chosen for further study. Immunolocalization and subcellular localization analysis indicated that CsSUS3 localized in the cytosol and the plasma membrane, and mainly existed in the companion cells of phloem in the roots. When suffering hypoxia stress from flooding, CsSUS3 expression and SUS activity in roots increased, especially in the lateral roots; moreover, the soluble SUS activity increased clearly, but the membrane fraction hardly changed. Compared with the wild-type cucumbers, the transgenic lines with antisense expression of CsSUS3 were more sensitive to flooding. After 6 d of flooding, the SUS activity, soluble sugar and uridine 5'-diphosphate glucose (UDPG) content and the ratio of ATP/ADP in the roots of transgenic plants were significantly lower than that in wild-type plants. Moreover, the transgenic lines grew more slowly with more yellow necrosis in the leaves. These findings suggested CsSUS3 participated in resisting hypoxic stress. Furthermore, the mechanism of CsSUS3 in resisting hypoxic stress was also discussed.
蔗糖合酶(SUS;EC 2.4.1.13)在糖代谢和非生物胁迫响应中发挥重要作用。但是,黄瓜(Cucumis sativus L.)中编码 SUS 的基因尚未得到很好的研究。在这里,我们分离了四个黄瓜蔗糖合酶基因(CsSUS)。其中,在根中高度表达的 CsSUS3 被选择用于进一步研究。免疫定位和亚细胞定位分析表明,CsSUS3 定位于细胞质和质膜中,主要存在于根中韧皮部的伴胞中。当受到淹水引起的缺氧胁迫时,根中 CsSUS3 的表达和 SUS 活性增加,特别是在侧根中;此外,可溶性 SUS 活性明显增加,但膜部分几乎不变。与野生型黄瓜相比,反义表达 CsSUS3 的转基因系对淹水更敏感。淹水 6 天后,转基因植株根中的 SUS 活性、可溶性糖和尿苷 5'-二磷酸葡萄糖(UDPG)含量以及 ATP/ADP 比值明显低于野生型植株。此外,转基因系生长速度较慢,叶片中出现更多的黄化坏死。这些发现表明 CsSUS3 参与了抵抗缺氧胁迫。此外,还讨论了 CsSUS3 抵抗缺氧胁迫的机制。