首页> 外文期刊>Plant and Cell Physiology >Changes in Cytosolic ATP Levels and Intracellular Morphology during Bacteria-Induced Hypersensitive Cell Death as Revealed by Real-Time Fluorescence Microscopy Imaging
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Changes in Cytosolic ATP Levels and Intracellular Morphology during Bacteria-Induced Hypersensitive Cell Death as Revealed by Real-Time Fluorescence Microscopy Imaging

机译:实时荧光显微镜成像揭示细菌诱导的超敏细胞死亡过程中胞质ATP水平和细胞内形态的变化。

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摘要

Hypersensitive cell death is known to involve dynamic remodeling of intracellular structures that uses energy released during ATP hydrolysis. However, the relationship between intracellular structural changes and ATP levels during hypersensitive cell death remains unclear. Here, to visualize ATP dynamics directly in real time in individual living plant cells, we applied a genetically encoded Förster resonance energy transfer (FRET)-based fluorescent ATP indicator, ATeam1.03-nDA, for plant cells. Intracellular ATP levels increased approximately 3 h after inoculation with the avirulent strain DC3000/avrRpm1 of Pseudomonas syringae pv. tomato (Pst), which was accompanied by the simultaneous disappearance of transvacuolar strands and appearance of bulb-like structures within the vacuolar lumen. Approximately 5 h after bacterial inoculation, the bulb-like structures disappeared and ATP levels drastically decreased. After another 2 h, the large central vacuole was disrupted. In contrast, no apparent changes in intracellular ATP levels were observed in the leaves inoculated with the virulent strain Pst DC3000. The Pst DC3000/avrRpm1-induced hypersensitive cell death was strongly suppressed by inhibiting ATP synthesis after oligomycin A application within 4 h after bacterial inoculation. When the inhibitor was applied 7 h after bacterial inoculation, cell death was unaffected. These observations show that changes in intracellular ATP levels correlate with intracellular morphological changes during hypersensitive cell death, and that ATP is required just before vacuolar rupture in response to bacterial infection.
机译:已知超敏细胞死亡涉及利用ATP水解过程中释放的能量的细胞内结构的动态重塑。然而,细胞内结构变化与超敏细胞死亡过程中ATP水平之间的关系仍不清楚。在这里,为了直接在单个活植物细胞中实时可视化ATP动态,我们为植物细胞应用了基于遗传编码的Förster共振能量转移(FRET)的荧光ATP指示剂ATeam1.03-nD / nA。接种丁香假单胞菌pv的无毒力菌株DC3000 / avrRpm1后,细胞内ATP水平升高约3小时。番茄(Pst),伴有液泡腔内空泡股的同时消失和球状结构的出现。细菌接种后约5小时,球状结构消失,ATP水平急剧下降。再过2小时后,大的中央液泡被破坏。相反,在用强毒株Pst DC3000接种的叶片中未观察到细胞内ATP水平的明显变化。 Pst DC3000 / avrRpm1诱导的超敏细胞死亡通过在细菌接种后4小时内应用寡霉素A后抑制ATP合成而得到强烈抑制。当细菌接种后7小时施用抑制剂时,细胞死亡不受影响。这些观察结果表明,细胞内ATP水平的变化与超敏细胞死亡过程中细胞内形态的变化相关,并且在液泡破裂以响应细菌感染之前需要ATP。

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    《Plant and Cell Physiology》 |2012年第10期|p.1768-1775|共8页
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    1Photonic Bioimaging Section, Research Center for Cooperative Projects, Hokkaido University, Kita-15 Nishi-7, Kita-ku, Sapporo, 060-8638 Japan 2Department of Bomolecular Science and Engineering, The Institute of Scientific and Industrial Research, Osaka University, Mihogaoka 8-1, Ibaraki, Osaka, 567-0047 Japan 3The Hakubi Project, Kyoto University, Yoshida-Ushinomiya-cho, Sakyo-ku, Kyoto, 606-8302 Japan 4Department of Applied Chemistry, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo, 113-8656 Japan;

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