Responses to Ice Formation and Reasons of Frost Injury in Potato Leaves

GM crops Pub Date : 2022-10-06 DOI:10.3390/crops2040026
Matthias Stegner, O. Buchner, Tanja Schäfernolte, Andreas Holzinger, G. Neuner
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Abstract

Potato leaves are ice-tolerant but are frost-damaged at −3 °C. Freezing occurs in two steps, a first non-destructive freezing event and a second independent lethal event. Localization of ice, and whether cells freeze-dehydrate after the first freezing event remains unknown. The cause of frost damage during the second freezing event lacks experimental evidence. Cytological responses of mesophyll cells were examined during ice formation using cryo-microscopic techniques after high-pressure freeze-fixation and freeze-substitution. CO2 gas exchange on frozen leaves revealed functional responses, but also frost damage. After the first freezing event, gas exchange was uninterrupted. Consequently, intercellular spaces are free of ice, and ice may be restricted to xylem vessels. The cellular shape of the mesophyll cells was unchanged, cells did not freeze-dehydrate but were supercooled. When thawed after the first freezing event, leaves were initially photoinhibited but regained photosynthesis. During the second freezing event, cells froze intracellularly, and some palisade parenchyma cells remained intact for a prolonged time. Intracellular ice caused complete destruction of cells, and chloroplasts became invisible at the light microscopic level. When thawed after the second freezing, leaves were unable to regain photosynthesis. Consequently, freezing avoidance is the only viable strategy for potatoes to survive frost.
马铃薯叶片对结冰的响应及霜冻伤害的原因
马铃薯叶片耐冰,但在−3°C时被霜冻损坏。冻结分两个步骤发生,第一个非破坏性冻结事件和第二个独立的致命事件。冰的定位,以及细胞是否在第一次冻结事件后冷冻脱水仍然未知。二次冻害发生的原因缺乏实验证据。在高压冷冻固定和冷冻替代后,利用冷冻显微镜技术观察了叶肉细胞在冰形成过程中的细胞学反应。冰冻叶片的CO2气体交换不仅反映了功能反应,也反映了霜冻损害。在第一次冻结事件后,气体交换不间断。因此,细胞间隙没有冰,冰可能仅限于木质部导管。叶肉细胞的细胞形态保持不变,细胞没有被冷冻脱水,而是被过冷处理。在第一次冻结事件后解冻,叶片最初受到光抑制,但恢复了光合作用。在第二次冻结过程中,细胞在细胞内冻结,一些栅栏薄壁细胞在较长时间内保持完整。细胞内结冰导致细胞完全破坏,叶绿体在光镜下变得不可见。当第二次冻结后解冻时,叶子无法恢复光合作用。因此,避免冰冻是马铃薯在霜冻中生存的唯一可行策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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