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Plant Physiology 148:673-683 (2008) © 2008 American Society of Plant Biologists Sorting and Anterograde Trafficking at the Golgi Apparatus1Center for Plant Protein Distribution System, Division of Molecular and Life Sciences, Pohang University of Science and Technology, Pohang 790–784, Korea
In general, the basic principles of trafficking systems in plant cells appear to be similar to those in animal and yeast cells, indicating that trafficking mechanisms are highly conserved throughout all eukaryotes (Jurgens, 2004
Newly synthesized organellar proteins are delivered to their respective organelles by a complex mechanism of transport. Secretory proteins, along with proteins destined for the central lytic vacuole, protein storage vacuole (PSV), plasma membrane, or endosomes, are initially sorted at translation when they are cotranslationally translocated into the endoplasmic reticulum (ER; Crowley et al., 1994
The Golgi apparatus plays a pivotal role in the sorting of proteins destined for various post-Golgi compartments (Jurgens, 2004
Seed storage proteins are also transported from the Golgi apparatus to the PSV (Jiang and Rogers, 1998 -tonoplast intrinsic protein ( -TIP; Jiang and Rogers, 1998
Proteins destined for the plasma membrane as well as secretory proteins are sorted at the TGN and then transported to their final destinations (Jurgens, 2004
Another intriguing role of the TGN in plant cells is that it functions as the early endosome, an organelle that is involved in endocytosis (for details, see review by Lam et al., 2007
Finally, anterograde trafficking is balanced by retrograde trafficking originating from various post-Golgi compartments and moving to the Golgi apparatus (for details, see review by Jurgens, 2004
In plant cells, sorting motifs of soluble lytic vacuolar proteins at the Golgi apparatus have been studied extensively. Aleurain, a Cys protease found in aleurone in barley (Hordeum vulgare), and sporamin, a tuber storage protein in sweet potato (Ipomoea batatas), have been widely used as model proteins to study trafficking to the central lytic vacuole (Holwerda et al., 1990
In addition to the NPIR-type ssVSD, other motifs can direct proteins to the central vacuole. These motifs include the C-terminal propeptide (CTPP), which functions as a PSV sorting signal for several storage proteins localized to the PSV (Neuhaus and Rogers, 1998
The saposin-like plant-specific insert present in barley and soybean (Glycine max) aspartic proteinases may also function as a vacuolar sorting signal (Tormakangas et al., 2001
In contrast to soluble proteins, the sorting signals of membrane proteins are largely unknown. Proteomics approaches have been used to identify a large number of vacuolar membrane proteins (Carter et al., 2004
The sorting motifs of PSV proteins have been identified. Three different types of sorting motifs have been identified: the CTPP, the internal physical and structural vacuolar sorting determinants (psVSDs), and the ssVSD (Neuhaus and Rogers, 1998
The internal psVSD is not as thoroughly characterized, but two different subgroups have been identified, based on their biochemical properties. One type of psVSD may be composed of multiple internal domains that form a higher order structure to function as a sorting determinant, as observed with legumin, in which multiple domains appear to act as vacuolar sorting signals (Saalbach et al., 1991
In addition to these CTPP and psVSD sorting signals for PSV proteins, an ssVSD-type sorting motif has been identified in ricin and the 2S albumin of castor bean and in glycinin group I subunit A1aB1b and group II subunit A3B4 of soybean (Frigerio et al., 2001
The large number of sorting motifs that have been identified in a wide variety of proteins leads to questions about the nature of the sorting receptors that recognize these sorting motifs. Among the three types of sorting motifs found in soluble proteins, lytic vacuolar proteins preferentially use the ssVSD, whereas PSV proteins use the sorting motifs CTPP and psVSD. This difference in the use of sorting motifs may stem from differences in the sorting mechanisms and/or sorting receptors. One possibility is that VSRs may recognize multiple ssVSD-type sorting motifs in a variety of lytic vacuolar proteins despite differences in the amino acid sequences of ssVSDs (Ahmed et al., 2000
The search for vacuolar sorting receptors led to the identification of an 80-kD protein called BP80 (Kirsch et al., 1994
Paris et al. (1997)
The functional significance of VSR/BP80 in vacuolar trafficking has been demonstrated. In protoplasts, overexpression of a VSR/BP80 mutant, in which the luminal domain was replaced with GFP, caused secretion of a soluble vacuolar protein (daSilva et al., 2005
The sorting receptors for PSV proteins are less well characterized. In Arabidopsis, RMR is a sorting receptor primarily localized to the PVC (Jiang et al., 2000
The VSRs bound to cargo proteins at the TGN must be packaged into CCVs. However, the detailed mechanism by which this occurs remains poorly understood. Since the biological role of VSRs is most similar to that of yeast Vps10 and animal MPR (Dintzis et al., 1994 -ear containing Arf binding (GGA; Nakatsu and Ohno, 2003 motif. In VSR/BP80, the YXX motif of VSR-PS1 in pea binds in vitro to Arabidopsis µA, a homolog of the µ-adaptin of AP in animal cells (Happel et al., 2004
Animal cells and yeast contain another type of adaptor protein, the monomeric GGA adaptors (Bonifacino, 2004
Plant cells also contain a protein that is homologous to
In addition to these adaptor proteins and their interacting proteins, many proteins implicated in anterograde trafficking from the TGN have been identified and characterized at the molecular level. These include SNAREs such as AtVTI11, AtVTI12, SYP51, SYP61, AtSYP41, and AtSYP42 (Bassham and Raikhel, 1998
ADL6/DRP2A (for Arabidopsis dynamin-like protein 6/dynamin-related protein 2A) and its interacting proteins have been shown to play a role in the TGN for the central lytic vacuolar trafficking pathways. Dynamin, a large GTPase, functions in severing the neck of the coated bud from the plasma membrane as a vesicle during endocytosis (Ungewickell and Hinrichsen, 2007
The TGN-localized small GTPase-related proteins, including Arf1 and Arf1-related proteins, as well as Rabs and Rab-related proteins, also play critical roles in anterograde trafficking. Originally, Arf1 was shown to play a role in the recruitment of COPI components to the Golgi apparatus for retrograde trafficking from the Golgi apparatus to the ER (Roth, 1999
Another class of proteins that play important roles at the TGN with respect to protein trafficking includes the TGN-localized V-ATPase isoform VHA-a1 and the chloride transporter AtCLC-d, which control the luminal pH of the TGN (Dettmer et al., 2006
Another important player that influences protein trafficking from the TGN to the vacuole is the retromer. VPS29 and VPS35, two of the five retromer components, are necessary for efficient targeting of PSV proteins in seeds, which suggests that the retromer may play a role in the recycling of cargo receptors, likely VSRs, to the TGN (Shimada et al., 2006
Recently, a large number of proteins involved in protein trafficking were identified and characterized at the molecular level, which has been instrumental for depicting the molecular mechanisms of protein trafficking at various steps in trafficking in plant cells. However, the mechanisms of action of these newly identified molecules are not fully understood. For example, we still lack an understanding of the trafficking of most membrane proteins to the tonoplast of the central vacuole and to the plasma membrane as well as of the secretion of cell wall materials. In certain cases, recent studies have demonstrated the presence of trafficking routes from and to the Golgi apparatus with very few factors involved in these pathways. In other cases, such as proteins with Epsin/ap180 N-terminal homology domains, the plant cell proteins have homology to proteins found in animal cells and yeast, but the precise role of the protein in plants has not yet been confirmed (Holstein and Oliviusson, 2005
Another exciting development is the discovery that protein trafficking is intimately linked to many different biological processes, such as plant development, biotic and abiotic responses, and hormone-mediated signaling. During plant development, the physiological conditions of plant cells may require changes in protein trafficking, which may produce cell type-specific conditions in trafficking. In addition, protein trafficking is modulated in response to environmental challenges such as infection by pathogens and abiotic stresses. In fact, the overall rate of protein trafficking has been shown to change in response to pathogen infection (Hardham et al., 2008 Received June 17, 2008; accepted July 28, 2008; published October 8, 2008.
1 This work was supported by grants from the Creative Research Program of the Ministry of Education, Science and Technology, by Biogreen21 (grant no. 20070401–034–026–008–03–001) of the Rural Development Administration and Agricultural Research and Planning Center, Ministry of Agriculture, Forestry and Foods, and by the Core Research Fund of Pohang University of Science and Technology, Korea. The author responsible for distribution of materials integral to the findings presented in this article in accordance with the policy described in the Instructions for Authors (www.plantphysiol.org) is: Inhwan Hwang (ihhwang{at}postech.ac.kr). www.plantphysiol.org/cgi/doi/10.1104/pp.108.124925 * E-mail ihhwang{at}postech.ac.kr.
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