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低温扫描电子显微镜显示,抗寒种间杂交葡萄“Yamasachi”的越冬芽在过冷却过程中伴随着部分脱水。

Cryo-scanning electron microscopy reveals that supercooling of overwintering buds of freezing-resistant interspecific hybrid grape 'Yamasachi' is accompanied by partial dehydration.

机构信息

Obihiro University of Agricultural and Veterinary Medicine, Nishi 2-11, Inada-cho, Obihiro, Hokkaido 080-0834, Japan.

Obihiro University of Agricultural and Veterinary Medicine, Nishi 2-11, Inada-cho, Obihiro, Hokkaido 080-0834, Japan.

出版信息

J Plant Physiol. 2020 Oct;253:153248. doi: 10.1016/j.jplph.2020.153248. Epub 2020 Aug 9.

Abstract

Dormant compound buds of grapevines adapt to subfreezing temperatures through a freezing avoidance mechanism. One still-unclear question, however, is whether supercooled water in primordial cells of dormant grape buds are partially dehydrated under subfreezing temperatures. In this study, we used differential thermal analysis (DTA) and cryo-scanning electron microscopy (cryo-SEM) to look for partial dehydration of primordial cells of the freezing-resistant interspecific hybrid cultivar 'Yamasachi'. According to DTA, the freezing temperature of supercooled water in primary buds was not significantly affected by cooling rates between 2 and 5 °C/h; however, maintaining the bud temperature at -15 °C for 12 h followed by cooling at a rate of 5 °C/h depressed the freezing temperature. As revealed by cryo-SEM observation, many wrinkles were present on inner surfaces of walls and outer surfaces of plasma membranes of leaf primordial cells in dormant buds frozen to -15 °C. These results suggest the existence of partial dehydration in dormant-bud primordial cells under subfreezing temperatures. The apparent absence of extracellular ice crystals in bud primordial tissues under subfreezing temperatures suggests that Yamasachi dormant buds adapt to subfreezing temperatures by extraorgan freezing. When we coated primary buds with silicone oil to inhibit freeze dehydration of primordial cells, the freezing temperature of buds was slightly but significantly increased. This result suggests that the partial dehydration of cells promotes bud supercooling capability and has an important role in the freezing adaptation mechanism of grapevines.

摘要

休眠状态下的葡萄芽通过避冻机制适应冰点以下的温度。然而,一个仍未解决的问题是,在冰点以下的温度下,休眠葡萄芽原始细胞中的过冷水中是否部分脱水。在这项研究中,我们使用差示热分析(DTA)和冷冻扫描电子显微镜(cryo-SEM)来观察抗冻性种间杂种品种“Yamasachi”休眠芽原始细胞的部分脱水情况。根据 DTA,在 2 到 5°C/h 的冷却速率下,初级芽中超冷水的冻结温度没有受到显著影响;然而,将芽温度保持在-15°C 12 小时后,以 5°C/h 的冷却速率冷却会降低冻结温度。通过 cryo-SEM 观察发现,在冻结到-15°C的休眠芽叶原细胞的壁内表面和质膜外表面存在许多褶皱。这些结果表明,在冰点以下的休眠芽原始细胞中存在部分脱水现象。在冰点以下的芽原始组织中明显没有细胞外冰晶的存在,这表明 Yamasachi 休眠芽通过器官外冻结来适应冰点以下的温度。当我们用硅油覆盖初级芽以抑制原始细胞的冻结脱水时,芽的冻结温度略有但显著升高。这一结果表明,细胞的部分脱水促进了芽的过冷能力,在葡萄树的抗冻适应机制中具有重要作用。

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