Atapaththu K S S, Miyagi A, Atsuzawa K, Kaneko Y, Kawai-Yamada M, Asaeda T
Department of Environmental Science and Technology, Saitama University, Sakura-Ku, Saitama, Japan.
Comprehensive Analysis Center for Science, Saitama University, Sakura-Ku, Saitama, Japan.
Plant Biol (Stuttg). 2015 Sep;17(5):997-1004. doi: 10.1111/plb.12346. Epub 2015 Jul 14.
The interactions between macrophytes and water movement are not yet fully understood, and the causes responsible for the metabolic and ultrastructural variations in plant cells as a consequence of turbulence are largely unknown. In the present study, growth, metabolism and ultrastructural changes were evaluated in the aquatic macrophyte Elodea nuttallii, after exposure to turbulence for 30 days. The turbulence was generated with a vertically oscillating horizontal grid. The turbulence reduced plant growth, plasmolysed leaf cells and strengthened cell walls, and plants exposed to turbulence accumulated starch granules in stem chloroplasts. The size of the starch granules increased with the magnitude of the turbulence. Using capillary electrophoresis-mass spectrometry (CE-MS), analysis of the metabolome found metabolite accumulation in response to the turbulence. Asparagine was the dominant amino acid that was concentrated in stressed plants, and organic acids such as citrate, ascorbate, oxalate and γ-amino butyric acid (GABA) also accumulated in response to turbulence. These results indicate that turbulence caused severe stress that affected plant growth, cell ultrastructure and some metabolic functions of E. nuttallii. Our findings offer insights to explain the effects of water movement on the functions of aquatic plants.
大型植物与水流运动之间的相互作用尚未完全明晰,而由湍流导致的植物细胞代谢和超微结构变化的成因在很大程度上也尚不明确。在本研究中,对水生大型植物伊乐藻(Elodea nuttallii)暴露于湍流30天后的生长、代谢和超微结构变化进行了评估。湍流由垂直振荡的水平网格产生。湍流抑制了植物生长,使叶片细胞发生质壁分离并强化了细胞壁,暴露于湍流中的植物在茎叶绿体中积累了淀粉粒。淀粉粒的大小随湍流强度的增加而增大。利用毛细管电泳-质谱联用(CE-MS)技术对代谢组进行分析,发现代谢产物因湍流而积累。天冬酰胺是在受胁迫植物中富集的主要氨基酸,柠檬酸、抗坏血酸、草酸和γ-氨基丁酸(GABA)等有机酸也因湍流而积累。这些结果表明,湍流造成了严重胁迫,影响了伊乐藻的植物生长、细胞超微结构和一些代谢功能。我们的研究结果为解释水流运动对水生植物功能的影响提供了见解。