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1
Golgi apparatus analyzed by cryo-electron microscopy.经冷冻电子显微镜分析的高尔基氏体。
Histochem Cell Biol. 2013 Oct;140(4):369-81. doi: 10.1007/s00418-013-1136-3. Epub 2013 Aug 18.
2
A three-stage model of Golgi structure and function.高尔基体结构与功能的三阶段模型。
Histochem Cell Biol. 2013 Sep;140(3):239-49. doi: 10.1007/s00418-013-1128-3. Epub 2013 Jul 24.
3
Cargo trafficking between endosomes and the trans-Golgi network.内体与反式高尔基体网络之间的货物运输。
Histochem Cell Biol. 2013 Sep;140(3):307-15. doi: 10.1007/s00418-013-1125-6. Epub 2013 Jul 14.
4
The many routes of Golgi-dependent trafficking.高尔基体依赖性运输的多种途径。
Histochem Cell Biol. 2013 Sep;140(3):251-60. doi: 10.1007/s00418-013-1124-7. Epub 2013 Jul 12.
5
Golgi in copper homeostasis: a view from the membrane trafficking field.高尔基体在铜稳态中的作用:来自膜运输领域的观点
Histochem Cell Biol. 2013 Sep;140(3):285-95. doi: 10.1007/s00418-013-1123-8. Epub 2013 Jul 12.
6
The Golgi puppet master: COG complex at center stage of membrane trafficking interactions.高尔基体“幕后操纵者”:COG复合物在膜转运相互作用的核心舞台
Histochem Cell Biol. 2013 Sep;140(3):271-83. doi: 10.1007/s00418-013-1117-6. Epub 2013 Jul 10.
7
Plant TGNs: dynamics and physiological functions.植物反式高尔基体网络:动态变化与生理功能
Histochem Cell Biol. 2013 Sep;140(3):341-5. doi: 10.1007/s00418-013-1116-7. Epub 2013 Jul 6.
8
Accommodation of large cargo within Golgi cisternae.高尔基池内大货物的容纳。
Histochem Cell Biol. 2013 Sep;140(3):261-9. doi: 10.1007/s00418-013-1120-y. Epub 2013 Jul 3.
9
Golgi as an MTOC: making microtubules for its own good.高尔基体作为一个微管组织中心:为自身利益制造微管。
Histochem Cell Biol. 2013 Sep;140(3):361-7. doi: 10.1007/s00418-013-1119-4. Epub 2013 Jul 3.
10
Regulation of traffic and organelle architecture of the ER-Golgi interface by signal transduction.通过信号转导对内质网-高尔基体界面的物质运输和细胞器结构进行调控。
Histochem Cell Biol. 2013 Sep;140(3):297-306. doi: 10.1007/s00418-013-1118-5. Epub 2013 Jul 3.

在缺乏常驻蛋白 N-乙酰氨基葡萄糖转移酶 V 的情况下,高尔基器体积减小。

Reduction in Golgi apparatus dimension in the absence of a residential protein, N-acetylglucosaminyltransferase V.

出版信息

Histochem Cell Biol. 2014 Feb;141(2):153-64. doi: 10.1007/s00418-013-1146-1.

DOI:10.1007/s00418-013-1146-1
PMID:24078077
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4085668/
Abstract

Various proteins are involved in the generation and maintenance of the membrane complex known as the Golgi apparatus. We have used mutant Chinese hamster ovary (CHO) cell lines Lec4 and Lec4A lacking N-acetylglucosaminyltransferase V (GlcNAcT-V, MGAT5) activity and protein in the Golgi apparatus to study the effects of the absence of a single glycosyltransferase on the Golgi apparatus dimension. Quantification of immunofluorescence in serial confocal sections for Golgi α-mannosidase II and electron microscopic morphometry revealed a reduction in Golgi volume density up to 49 % in CHO Lec4 and CHO Lec4A cells compared to parental CHO cells. This reduction in Golgi volume density could be reversed by stable transfection of Lec4 cells with a cDNA encoding Mgat5. Inhibition of the synthesis of β1,6-branched N-glycans by swainsonine had no effect on Golgi volume density. In addition, no effect on Golgi volume density was observed in CHO Lec1 cells that contain enzymatically active GlcNAcT-V, but cannot synthesize β1,6-branched glycans due to an inactive GlcNAcT-I in their Golgi apparatus. These results indicate that it may be the absence of the GlcNAcT-V protein that is the determining factor in reducing Golgi volume density. No dimensional differences existed in cross-sectioned cisternal stacks between Lec4 and control CHO cells, but significantly reduced Golgi stack hits were observed in cross-sectioned Lec4 cells. Therefore, the Golgi apparatus dimensional change in Lec4 and Lec4A cells may be due to a compaction of the organelle.

摘要

各种蛋白质参与了被称为高尔基体的膜复合物的产生和维持。我们使用缺乏 N-乙酰葡萄糖胺转移酶 V(GlcNAcT-V,MGAT5)活性和高尔基体中蛋白质的突变型中国仓鼠卵巢(CHO)细胞系 Lec4 和 Lec4A 来研究单个糖基转移酶缺失对高尔基体大小的影响。通过对高尔基体α-甘露糖苷酶 II 的免疫荧光共聚焦切片进行定量分析和电子显微镜形态计量学分析,发现与亲本 CHO 细胞相比,CHO Lec4 和 CHO Lec4A 细胞的高尔基体体积密度降低了 49%。通过稳定转染 Lec4 细胞的 cDNA 编码 Mgat5,可逆转高尔基体体积密度的降低。用 swainsonine 抑制β1,6-分支 N-聚糖的合成对高尔基体体积密度没有影响。此外,在 CHO Lec1 细胞中也没有观察到对高尔基体体积密度的影响,CHO Lec1 细胞含有酶活性的 GlcNAcT-V,但由于其高尔基体中 GlcNAcT-I 无活性而不能合成β1,6-分支糖。这些结果表明,可能是 GlcNAcT-V 蛋白的缺失是降低高尔基体体积密度的决定因素。在 Lec4 和对照 CHO 细胞的横切 cisternal 堆叠之间不存在尺寸差异,但在横切 Lec4 细胞中观察到明显减少的高尔基体堆叠。因此,Lec4 和 Lec4A 细胞中高尔基体的尺寸变化可能是由于细胞器的紧缩。