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1
Traffic of human α-mannosidase in plant cells suggests the presence of a new endoplasmic reticulum-to-vacuole pathway without involving the Golgi complex.人α-甘露糖苷酶在植物细胞中的运输表明存在一种新的内质网到液泡途径,而不涉及高尔基体复合体。
Plant Physiol. 2013 Apr;161(4):1769-82. doi: 10.1104/pp.113.214536. Epub 2013 Feb 28.
2
Identification of the protein storage vacuole and protein targeting to the vacuole in leaf cells of three plant species.三种植物叶片细胞中蛋白质储存液泡的鉴定及蛋白质向液泡的靶向运输
Plant Physiol. 2004 Feb;134(2):625-39. doi: 10.1104/pp.103.030635. Epub 2004 Jan 15.
3
Protein domains involved in assembly in the endoplasmic reticulum promote vacuolar delivery when fused to secretory GFP, indicating a protein quality control pathway for degradation in the plant vacuole.与内质网组装相关的蛋白结构域与分泌型 GFP 融合后可促进液泡运输,这表明植物液泡中存在一种用于降解的蛋白质质量控制途径。
Mol Plant. 2008 Nov;1(6):1067-76. doi: 10.1093/mp/ssn066.
4
Dynamic response of prevacuolar compartments to brefeldin a in plant cells.植物细胞中前液泡区室对布雷菲德菌素A的动态响应。
Plant Physiol. 2006 Dec;142(4):1442-59. doi: 10.1104/pp.106.090423. Epub 2006 Oct 13.
5
The GTPase ARF1p controls the sequence-specific vacuolar sorting route to the lytic vacuole.GTP酶ARF1p控制着特定序列的液泡分选途径,通向溶酶体液泡。
Plant Cell. 2003 May;15(5):1242-56. doi: 10.1105/tpc.010140.
6
Analysis of Golgi-Mediated Protein Traffic in Plant Cells.植物细胞中高尔基体介导的蛋白质运输分析
Methods Mol Biol. 2017;1662:75-86. doi: 10.1007/978-1-4939-7262-3_6.
7
Plant N-glycan processing enzymes employ different targeting mechanisms for their spatial arrangement along the secretory pathway.植物N-聚糖加工酶在分泌途径中沿其空间排列采用不同的靶向机制。
Plant Cell. 2006 Nov;18(11):3182-200. doi: 10.1105/tpc.105.036400. Epub 2006 Nov 30.
8
Vacuolar protein sorting mechanisms in plants.植物液泡蛋白分选机制。
FEBS J. 2013 Feb;280(4):979-93. doi: 10.1111/febs.12092. Epub 2013 Jan 11.
9
A vacuolar sorting domain may also influence the way in which proteins leave the endoplasmic reticulum.液泡分选结构域也可能影响蛋白质离开内质网的方式。
Plant Cell. 2001 Sep;13(9):2021-32. doi: 10.1105/tpc.000533.
10
Unconventional pathways of secretory plant proteins from the endoplasmic reticulum to the vacuole bypassing the Golgi complex.植物蛋白从内质网到液泡的非传统分泌途径绕过高尔基体复合。
Plant Signal Behav. 2013 Aug;8(8). doi: 10.4161/psb.25129. Epub 2013 Jun 3.

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1
Unconventional Pathways of Protein Secretion: Mammals . Plants.蛋白质分泌的非常规途径:哺乳动物、植物
Front Cell Dev Biol. 2022 Apr 28;10:895853. doi: 10.3389/fcell.2022.895853. eCollection 2022.
2
Biomarker identification of isolated compartments of the cell wall, cytoplasm and vacuole from the internodal cell of characean .轮藻节间细胞细胞壁、细胞质和液泡分离区室的生物标志物鉴定
PeerJ. 2021 Feb 17;9:e10930. doi: 10.7717/peerj.10930. eCollection 2021.
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Lysosomal and vacuolar sorting: not so different after all!溶酶体与液泡分选:终究并非如此不同!
Biochem Soc Trans. 2016 Jun 15;44(3):891-7. doi: 10.1042/BST20160050.
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Vacuolar targeting of recombinant antibodies in Nicotiana benthamiana.重组抗体在本氏烟草中的液泡靶向
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Molecular Composition of Plant Vacuoles: Important but Less Understood Regulations and Roles of Tonoplast Lipids.植物液泡的分子组成:液泡膜脂质的重要但了解较少的调控及作用
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Unconventional protein secretion in plants: a critical assessment.植物非常规蛋白质分泌:批判性评估。
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9
Delivering of proteins to the plant vacuole--an update.将蛋白质递送到植物液泡——更新。
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10
ER and vacuoles: never been closer.内质网和空泡:从未如此接近。
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本文引用的文献

1
Transport and processing of the glycosylated precursor of Concanavalin A in jack-bean.菜豆中伴刀豆球蛋白 A 的糖基化前体的运输和加工。
Planta. 1987 Feb;170(2):217-24. doi: 10.1007/BF00397891.
2
Transport and posttranslational processing of the vacuolar enzyme α-mannosidase in jack-bean cotyledons.液泡酶α-甘露糖苷酶在兵豆子叶中的运输和翻译后加工。
Planta. 1988 May;174(2):271-82. doi: 10.1007/BF00394781.
3
Mechanisms and concepts paving the way towards a complete transport cycle of plant vacuolar sorting receptors.为植物液泡分选受体的完整运输循环铺平道路的机制和概念。
Plant Cell. 2012 May;24(5):1714-32. doi: 10.1105/tpc.112.095679. Epub 2012 May 8.
4
A new type of compartment, defined by plant-specific Atg8-interacting proteins, is induced upon exposure of Arabidopsis plants to carbon starvation.在拟南芥植物暴露于碳饥饿时,会诱导一种新型隔室,其由植物特异性 Atg8 相互作用蛋白定义。
Plant Cell. 2012 Jan;24(1):288-303. doi: 10.1105/tpc.111.093112. Epub 2012 Jan 17.
5
Production of active human glucocerebrosidase in seeds of Arabidopsis thaliana complex-glycan-deficient (cgl) plants.在拟南芥复合糖缺乏(cgl)植物的种子中生产活性人葡萄糖脑苷脂酶。
Glycobiology. 2012 Apr;22(4):492-503. doi: 10.1093/glycob/cwr157. Epub 2011 Nov 7.
6
Human α-mannosidase produced in transgenic tobacco plants is processed in human α-mannosidosis cell lines.转烟草植物中产生的人α-甘露糖苷酶在人α-甘露糖苷贮积症细胞系中进行加工。
Plant Biotechnol J. 2011 Dec;9(9):1061-73. doi: 10.1111/j.1467-7652.2011.00630.x. Epub 2011 Jun 7.
7
Delivery of prolamins to the protein storage vacuole in maize aleurone cells.玉米糊粉细胞中醇溶蛋白向蛋白贮藏液泡的转运。
Plant Cell. 2011 Feb;23(2):769-84. doi: 10.1105/tpc.110.082156. Epub 2011 Feb 22.
8
Plant RMR proteins: unique vacuolar sorting receptors that couple ligand sorting with membrane internalization.植物 RMR 蛋白:将配体分拣与膜内化相偶联的独特液泡分拣受体。
FEBS J. 2011 Jan;278(1):59-68. doi: 10.1111/j.1742-4658.2010.07923.x. Epub 2010 Nov 16.
9
Entamoeba histolytica: identification and partial characterization of alpha-mannosidase activity.溶组织内阿米巴:α-甘露糖苷酶活性的鉴定和部分特性分析。
Exp Parasitol. 2010 Apr;124(4):459-65. doi: 10.1016/j.exppara.2009.12.014. Epub 2010 Jan 4.
10
Vacuolar sorting receptors (VSRs) and secretory carrier membrane proteins (SCAMPs) are essential for pollen tube growth.液泡分拣受体 (VSRs) 和分泌载体膜蛋白 (SCAMPs) 对于花粉管生长是必不可少的。
Plant J. 2010 Mar;61(5):826-38. doi: 10.1111/j.1365-313X.2009.04111.x. Epub 2009 Dec 15.

人α-甘露糖苷酶在植物细胞中的运输表明存在一种新的内质网到液泡途径,而不涉及高尔基体复合体。

Traffic of human α-mannosidase in plant cells suggests the presence of a new endoplasmic reticulum-to-vacuole pathway without involving the Golgi complex.

机构信息

Istituto di Genetica Vegetale, Consiglio Nazionale delle Ricerche, 06128 Perugia, Italy.

出版信息

Plant Physiol. 2013 Apr;161(4):1769-82. doi: 10.1104/pp.113.214536. Epub 2013 Feb 28.

DOI:10.1104/pp.113.214536
PMID:23449646
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3613454/
Abstract

The transport of secretory proteins from the endoplasmic reticulum to the vacuole requires sorting signals as well as specific transport mechanisms. This work is focused on the transport in transgenic tobacco (Nicotiana tabacum) plants of a human α-mannosidase, MAN2B1, which is a lysosomal enzyme involved in the turnover of N-linked glycoproteins and can be used in enzyme replacement therapy. Although ubiquitously expressed, α-mannosidases are targeted to lysosomes or vacuoles through different mechanisms according to the organisms in which these proteins are produced. In tobacco cells, MAN2B1 reaches the vacuole even in the absence of mannose-6-phosphate receptors, which are responsible for its transport in animal cells. We report that MAN2B1 is targeted to the vacuole without passing through the Golgi complex. In addition, a vacuolar targeting signal that is recognized in plant cells is located in the MAN2B1 amino-terminal region. Indeed, when this amino-terminal domain is removed, the protein is retained in the endoplasmic reticulum. Moreover, when this domain is added to a plant-secreted protein, the resulting fusion protein is partially redirected to the vacuole. These results strongly suggest the existence in plants of a new type of vacuolar traffic that can be used by leaf cells to transport vacuolar proteins.

摘要

分泌蛋白从内质网运输到液泡需要分拣信号和特定的运输机制。这项工作主要集中在转人α-甘露糖苷酶 MAN2B1 的转基因烟草(Nicotiana tabacum)植物中的运输上,该酶是一种溶酶体酶,参与 N-连接糖蛋白的周转,可以用于酶替代疗法。尽管α-甘露糖苷酶普遍表达,但根据产生这些蛋白质的生物体的不同,它们通过不同的机制被靶向到溶酶体或液泡。在烟草细胞中,MAN2B1 甚至在没有负责其在动物细胞中运输的甘露糖-6-磷酸受体的情况下也被靶向到液泡。我们报告说,MAN2B1 被靶向到液泡而不经过高尔基体复合物。此外,在植物细胞中识别的液泡靶向信号位于 MAN2B1 的氨基末端区域。事实上,当去除这个氨基末端结构域时,该蛋白被保留在内质网中。此外,当将这个结构域添加到植物分泌的蛋白质中时,所得的融合蛋白部分被重新定向到液泡。这些结果强烈表明,植物中存在一种新的液泡运输类型,叶细胞可以利用这种类型来运输液泡蛋白。