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真核微藻内质网的超微结构

Ultrastructure of the Endoplasmic Reticulum in Eukaryotic Microalgae.

作者信息

Goodenough Ursula, Roth Robyn

机构信息

Department of Biology, Washington University, St. Louis, Missouri, USA.

Center for Cellular Imaging, Washington University School of Medicine, St. Louis, Missouri, USA.

出版信息

J Eukaryot Microbiol. 2025 Sep-Oct;72(5):e70030. doi: 10.1111/jeu.70030.

Abstract

The endoplasmic reticulum (ER) is a large and highly dynamic component of the eukaryotic endomembrane system. In eukaryotic microalgae, it plays six distinct roles: (1) It envelopes the chromatin to form the nucleus. (2) It forms cisternae in the cytoplasm, some of which scaffold the synthesis of proteins destined for incorporation into membranes or for secretion. (3) It associates with Golgi cisternae to scaffold the synthesis of glycosylated proteins. (4) It associates with the plasma membrane to mediate the synthesis and secretion of hydrophobic molecules. (5) It mediates the synthesis of cytoplasmic lipid bodies. (6) In lineages harboring complex plastids of red algal ancestry, it forms the chloroplast ER, which envelops the primary chloroplast envelope. In this review, these systems are illustrated using the quick-freeze deep-etch electron microscopy (QFDEEM) technique, which lifts up the topological configurations adopted by this gossamer system. A key finding is that in all the complex microalgae examined except dinoflagellates, the inner nuclear envelope membrane associates directly with the plastid-contiguous membrane of the chloroplast ER at foci designated as chloroplast-nuclear junctions. These junctions may play a role in regulating the maintenance and physiology of the complex organelles.

摘要

内质网(ER)是真核生物内膜系统中一个庞大且高度动态的组成部分。在真核微藻中,它发挥着六个不同的作用:(1)它包裹染色质形成细胞核。(2)它在细胞质中形成潴泡,其中一些为注定要整合到膜中或分泌的蛋白质合成提供支架。(3)它与高尔基体潴泡结合,为糖基化蛋白的合成提供支架。(4)它与质膜结合,介导疏水分子的合成和分泌。(5)它介导细胞质脂质体的合成。(6)在具有红藻祖先复杂质体的谱系中,它形成叶绿体内质网,包裹初级叶绿体包膜。在本综述中,使用快速冷冻深蚀刻电子显微镜(QFDEEM)技术展示了这些系统,该技术揭示了这个薄纱般系统所采用的拓扑结构。一个关键发现是,在除甲藻外的所有被研究的复杂微藻中,内核膜在被称为叶绿体 - 核连接点的位点直接与叶绿体内质网的质体相邻膜相连。这些连接点可能在调节复杂细胞器的维持和生理功能中发挥作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d2e2/12309347/78a3e097d07c/JEU-72-e70030-g005.jpg

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