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蜜腺薄壁组织细胞的细胞器膜之间的结构联系。

Structural associations between organelle membranes in nectary parenchyma cells.

机构信息

Department of Botany, Institute of Biosciences of Botucatu (IBB), São Paulo State University (UNESP), Botucatu, SP, Brazil.

Center of Electron Microscopy (CME), Institute of Biosciences of Botucatu (IBB), São Paulo State University (UNESP), Botucatu, SP, Brazil.

出版信息

Planta. 2018 May;247(5):1067-1076. doi: 10.1007/s00425-018-2844-7. Epub 2018 Jan 17.

DOI:10.1007/s00425-018-2844-7
PMID:29344723
Abstract

The close association between membranes and organelles, and the intense chloroplast remodeling in parenchyma cells of extrafloral nectaries occurred only at the secretion time and suggest a relationship with the nectar secretion. Associations between membranes and organelles have been well documented in different tissues and cells of plants, but poorly explored in secretory cells. Here, we described the close physical juxtaposition between membranes and organelles, mainly with chloroplasts, in parenchyma cells of Citharexylum myrianthum (Verbenaeceae) extrafloral nectaries under transmission electron microscopy, using conventional and microwave fixation. At the time of nectar secretion, nectary parenchyma cells exhibit a multitude of different organelle and membrane associations as mitochondria-mitochondria, mitochondria-endoplasmic reticulum, mitochondria-chloroplast, chloroplast-nuclear envelope, mitochondria-nuclear envelope, chloroplast-plasmalemma, chloroplast-chloroplast, chloroplast-tonoplast, chloroplast-peroxisome, and mitochondria-peroxisome. These associations were visualized as amorphous electron-dense material, a network of dense fibrillar material and/or dense bridges. Chloroplasts exhibited protrusions variable in shape and extension, which bring them closer to each other and to plasmalemma, tonoplast, and nuclear envelope. Parenchyma cells in the pre- and post-secretory stages did not exhibit any association or juxtaposition of membranes and organelles, and chloroplast protrusions were absent. Chloroplasts had peripheral reticulum that was more developed in the secretory stage. We propose that such subcellular phenomena during the time of nectar secretion optimize the movement of signaling molecules and the exchange of metabolites. Our results open new avenues on the potential mechanisms of organelle contact in parenchyma nectary cells, and reveal new attributes of the secretory cells on the subcellular level.

摘要

花外蜜腺的质膜和细胞器紧密关联以及叶绿体在其中的剧烈重塑仅发生在分泌时间,这表明它们与蜜腺分泌有关。在不同的植物组织和细胞中,质膜和细胞器之间的关联已有大量文献记载,但在分泌细胞中则研究甚少。在这里,我们在透射电子显微镜下使用常规和微波固定方法,描述了在 Citharexylum myrianthum(马鞭草科)花外蜜腺的质膜和细胞器(主要是叶绿体)在毗邻排列上的密切关系。在蜜腺分泌时,蜜腺薄壁细胞显示出多种不同的细胞器和膜的关联,如线粒体-线粒体、线粒体-内质网、线粒体-叶绿体、叶绿体-核膜、线粒体-核膜、叶绿体-质膜、叶绿体-叶绿体、叶绿体-液泡膜、叶绿体-过氧化物酶体和线粒体-过氧化物酶体。这些关联表现为无定形电子致密物质、密集纤维状物质网络和/或密集桥。叶绿体表现出形状和延伸可变的突起,使它们彼此靠近,并靠近质膜、液泡膜和核膜。在分泌前和分泌后的阶段,薄壁细胞没有显示任何质膜和细胞器的关联或毗邻,也没有叶绿体突起。叶绿体具有周边的网状结构,在分泌阶段更为发达。我们提出,在蜜腺分泌期间,这种亚细胞现象优化了信号分子的运动和代谢物的交换。我们的结果为质膜蜜腺细胞中细胞器接触的潜在机制开辟了新的途径,并揭示了分泌细胞在亚细胞水平上的新属性。

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