Contact of cis-Golgi with ER exit sites executes cargo capture and delivery from the ER.

PubWeight™: 0.98‹?› | Rank: Top 15%

🔗 View Article (PMC 3996532)

Published in Nat Commun on April 14, 2014

Authors

Kazuo Kurokawa1, Michiyo Okamoto1, Akihiko Nakano2

Author Affiliations

1: Live Cell Molecular Imaging Research Team, RIKEN Center for Advanced Photonics, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan.
2: 1] Live Cell Molecular Imaging Research Team, RIKEN Center for Advanced Photonics, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan [2] Department of Biological Sciences, Graduate School of Science, The University of Tokyo, Hongo, Bunkyo-ku, Tokyo 113-0033, Japan.

Articles citing this

Vesicles versus Tubes: Is Endoplasmic Reticulum-Golgi Transport in Plants Fundamentally Different from Other Eukaryotes? Plant Physiol (2015) 1.22

TFG clusters COPII-coated transport carriers and promotes early secretory pathway organization. EMBO J (2015) 0.92

TFG Promotes Organization of Transitional ER and Efficient Collagen Secretion. Cell Rep (2016) 0.89

Three-dimensional and immune electron microscopic analysis of the secretory pathway in Saccharomyces cerevisiae. Histochem Cell Biol (2016) 0.89

Tango1 spatially organizes ER exit sites to control ER export. J Cell Biol (2017) 0.83

Herpes simplex virus 1 Us3 deletion mutant is infective despite impaired capsid translocation to the cytoplasm. Viruses (2015) 0.81

TANGO1 assembles into rings around COPII coats at ER exit sites. J Cell Biol (2017) 0.81

The Road not Taken: Less Traveled Roads from the TGN to the Plasma Membrane. Membranes (Basel) (2015) 0.80

Molecular mechanisms of Sar/Arf GTPases in vesicular trafficking in yeast and plants. Front Plant Sci (2014) 0.80

Sar1 localizes at the rims of COPII-coated membranes in vivo. J Cell Sci (2016) 0.78

Microscopy-based Saccharomyces cerevisiae complementation model reveals functional conservation and redundancy of N-terminal acetyltransferases. Sci Rep (2016) 0.76

An inducible ER-Golgi tether facilitates ceramide transport to alleviate lipotoxicity. J Cell Biol (2016) 0.76

COPI is essential for Golgi cisternal maturation and dynamics. J Cell Sci (2016) 0.75

Sec24C/D-isoform-specific sorting of the preassembled ER-Golgi Q-SNARE complex. Mol Biol Cell (2016) 0.75

Spatial and Functional Aspects of ER-Golgi Rabs and Tethers. Front Cell Dev Biol (2016) 0.75

Live-cell visualization of excitation energy dynamics in chloroplast thylakoid structures. Sci Rep (2016) 0.75

ER arrival sites for COPI vesicles localize to hotspots of membrane trafficking. EMBO J (2016) 0.75

Articles cited by this

Global analysis of protein localization in budding yeast. Nature (2003) 33.22

A monomeric red fluorescent protein. Proc Natl Acad Sci U S A (2002) 21.56

Novel chromophores and buried charges control color in mFruits. Biochemistry (2006) 4.64

Initial docking of ER-derived vesicles requires Uso1p and Ypt1p but is independent of SNARE proteins. EMBO J (1998) 3.99

SED5 encodes a 39-kD integral membrane protein required for vesicular transport between the ER and the Golgi complex. J Cell Biol (1992) 3.79

The organization of endoplasmic reticulum export complexes. J Cell Biol (1996) 3.32

Golgi maturation visualized in living yeast. Nature (2006) 3.29

De novo formation of transitional ER sites and Golgi structures in Pichia pastoris. Nat Cell Biol (2002) 3.16

Live imaging of yeast Golgi cisternal maturation. Nature (2006) 3.03

Organization of the ER-Golgi interface for membrane traffic control. Nat Rev Mol Cell Biol (2013) 2.89

Ubiquitin-dependent regulation of COPII coat size and function. Nature (2012) 2.88

TANGO1 facilitates cargo loading at endoplasmic reticulum exit sites. Cell (2009) 2.58

TRAPPI tethers COPII vesicles by binding the coat subunit Sec23. Nature (2007) 2.42

SEC7 encodes an unusual, high molecular weight protein required for membrane traffic from the yeast Golgi apparatus. J Biol Chem (1988) 2.35

The dynamics of golgi protein traffic visualized in living yeast cells. Mol Biol Cell (1998) 2.29

A cytoskeleton-related gene, uso1, is required for intracellular protein transport in Saccharomyces cerevisiae. J Cell Biol (1991) 2.17

TFG-1 function in protein secretion and oncogenesis. Nat Cell Biol (2011) 2.13

Multi-protein complexes in the cis Golgi of Saccharomyces cerevisiae with alpha-1,6-mannosyltransferase activity. EMBO J (1998) 1.91

Selection of axial growth sites in yeast requires Axl2p, a novel plasma membrane glycoprotein. Genes Dev (1996) 1.75

Rer1p, a retrieval receptor for endoplasmic reticulum membrane proteins, is dynamically localized to the Golgi apparatus by coatomer. J Cell Biol (2001) 1.67

Mechanisms of COPII vesicle formation and protein sorting. FEBS Lett (2007) 1.59

Sequential interactions with Sec23 control the direction of vesicle traffic. Nature (2011) 1.57

Brefeldin A-inhibited guanine nucleotide-exchange activity of Sec7 domain from yeast Sec7 with yeast and mammalian ADP ribosylation factors. Proc Natl Acad Sci U S A (1998) 1.54

Expression of the yeast plasma membrane [H+]ATPase in secretory vesicles. A new strategy for directed mutagenesis. J Biol Chem (1991) 1.50

ER exit sites--localization and control of COPII vesicle formation. FEBS Lett (2009) 1.25

The inactive form of a yeast casein kinase I suppresses the secretory defect of the sec12 mutant. Implication of negative regulation by the Hrr25 kinase in the vesicle budding from the endoplasmic reticulum. J Biol Chem (1999) 1.17

Requirements for transitional endoplasmic reticulum site structure and function in Saccharomyces cerevisiae. Mol Biol Cell (2010) 1.10

The highly conserved COPII coat complex sorts cargo from the endoplasmic reticulum and targets it to the golgi. Cold Spring Harb Perspect Biol (2013) 1.08

The yeast GRASP Grh1 colocalizes with COPII and is dispensable for organizing the secretory pathway. Traffic (2010) 1.07

High-curvature domains of the ER are important for the organization of ER exit sites in Saccharomyces cerevisiae. J Cell Sci (2012) 1.03

Live cell visualization of Golgi membrane dynamics by super-resolution confocal live imaging microscopy. Methods Cell Biol (2013) 0.97

cis-Golgi proteins accumulate near the ER exit sites and act as the scaffold for Golgi regeneration after brefeldin A treatment in tobacco BY-2 cells. Mol Biol Cell (2012) 0.91

Cis-Golgi cisternal assembly and biosynthetic activation occur sequentially in plants and algae. Traffic (2013) 0.90

Inhibition of TFG function causes hereditary axon degeneration by impairing endoplasmic reticulum structure. Proc Natl Acad Sci U S A (2013) 0.89