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貉藻的精细结构:利用冷冻技术通过电子显微镜阐明水生食肉植物独特的生活方式。

Fine structure of Aldrovanda vesiculosa L: the peculiar lifestyle of an aquatic carnivorous plant elucidated by electron microscopy using cryo-techniques.

作者信息

Atsuzawa Kimie, Kanaizumi Daiki, Ajisaka Mizuki, Kamada Tasuku, Sakamoto Kimie, Matsushima Hisashi, Kaneko Yasuko

机构信息

Comprehensive Analysis Center for Science, Saitama University, Saitama 338-8570, Japan.

Graduate School of Science and Engineering, Saitama University, Saitama 338-8570, Japan.

出版信息

Microscopy (Oxf). 2020 Jul 30;69(4):214-226. doi: 10.1093/jmicro/dfaa019.

DOI:10.1093/jmicro/dfaa019
PMID:32328650
Abstract

The aquatic carnivorous plant Aldrovanda vesiculosa L. is critically endangered worldwide; its peculiar lifestyle raises many questions and poses problems both intriguing on their own and relevant to conservation. While establishing a culture system for its propagation and restoring its natural habitat in Hozoji pond in Saitama, Japan, we conducted ultrastructural observations to examine the various aspects of Aldrovanda's way of life. Electron microscopic observation in combination with cryo-techniques produced novel information which could not be obtained by other methods. Some of the results are: phosphorous is stored in petiole cells of turions during winter; mucilaginous guides are provided for pollen tubes in parietal placental ovaries; storage of potassium in the vicinity of the midrib of carnivorous leaves may contribute to the rapid closing of the carnivorous leaves; dynamic sequential changes of the ultrastructure of digestive glands are involved in the synthesis and secretion of digestive enzymes, including protease and acid phosphatase. These results should contribute significantly to our understanding of Aldrovanda and the detailed mechanisms of its life.

摘要

水生食肉植物貉藻(Aldrovanda vesiculosa L.)在全球范围内极度濒危;其独特的生活方式引发了许多问题,这些问题本身既引人入胜又与保护相关。在日本埼玉县的法住寺池塘建立其繁殖培养系统并恢复其自然栖息地的过程中,我们进行了超微结构观察,以研究貉藻生活方式的各个方面。电子显微镜观察与低温技术相结合产生了通过其他方法无法获得的新信息。部分结果如下:冬季磷储存在块茎的叶柄细胞中;在侧膜胎座子房为花粉管提供了黏液引导;食肉叶中脉附近储存钾可能有助于食肉叶的快速关闭;消化腺超微结构的动态顺序变化参与了包括蛋白酶和酸性磷酸酶在内的消化酶的合成和分泌。这些结果应能极大地增进我们对貉藻及其生命详细机制的理解。

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