How the Golgi works: A cisternal progenitor model
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Summary
A possible model for transport of cargo through a tightly stacked Golgi that involves continual fusion and fission of stable, “like” subcompartments and provides a mechanism to grow the Golgi complex from a stable progenitor, in an ordered manner is described.
- Type
- article
- Published
- 2010-11-02
- Cited by
- 96
- References
- 38
- Access
- Open access
- OpenAlex
- https://openalex.org/W1996227803
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:37801526
Keywords
Golgi apparatus, Cell biology, Endocytic cycle, Compartment (ship), Secretory pathway
References
- TMF is a golgin that binds Rab6 and influences Golgi morphology
- Microtubules and the organization of the Golgi complex.
- Golgi maturation visualized in living yeast
- Multiple Rab GTPase binding sites in GCC185 suggest a model for vesicle tethering at the trans-Golgi.
- Transport through the Golgi apparatus by rapid partitioning within a two-phase membrane system.
- Rab GTPases as coordinators of vesicle traffic
- p37 is a p97 adaptor required for Golgi and ER biogenesis in interphase and at the end of mitosis.
- The coiled-coil membrane protein golgin-84 is a novel rab effector required for Golgi ribbon formation
- Cytoplasmic dynein participates in the centrosomal localization of the Golgi complex
- Procollagen Traverses the Golgi Stack without Leaving the Lumen of Cisternae: Evidence for Cisternal Maturation
- Group IV Phospholipase A2α Controls the Formation of Inter-Cisternal Continuities Involved in Intra-Golgi Transport
- GM130 and GRASP65-dependent lateral cisternal fusion allows uniform Golgi-enzyme distribution
- Distinct SNARE complexes mediating membrane fusion in Golgi transport based on combinatorial specificity
- Scale formation in algae.
- Dynamic transport of SNARE proteins in the Golgi apparatus.
- Live imaging of yeast Golgi cisternal maturation
- Megavesicles implicated in the rapid transport of intracisternal aggregates across the Golgi stack.
- Golgi coiled-coil proteins contain multiple binding sites for Rab family G proteins
- Rabs and their effectors: Achieving specificity in membrane traffic
- Analysis of the eukaryotic prenylome by isoprenoid affinity tagging.
Cited by
- Calcium around the Golgi apparatus: implications for intracellular membrane trafficking.
- Analysis of the Cell Cycle Regulated Golgi Dynamics in Mammalian Cells.
- Membranes in cells: transport and identity
- Role of phospholipid synthesis and phospholipase C in the regulation of diacylglycerol required for membrane trafficking at the Golgi complex
- Getting high on traffic
- Cellular and molecular biology of glycosphingolipid glycosylation
- Live cell visualization of Golgi membrane dynamics by super-resolution confocal live imaging microscopy.
- The Yeast Golgi Apparatus
- Small GTPase Rab2B and Its Specific Binding Protein Golgi-associated Rab2B Interactor-like 4 (GARI-L4) Regulate Golgi Morphology*
- Kinetically Distinct Sorting Pathways through the Golgi Exhibit Different Requirements for Arf1
- Golgi tubules: their structure, formation and role in intra-Golgi transport
- Harnessing the power of the endosome to regulate neural development
- Ric1-Rgp1 Complex Is a Guanine Nucleotide Exchange Factor for the Late Golgi Rab6A GTPase and an Effector of the Medial Golgi Rab33B GTPase*
- New components of the Golgi matrix
- Rab GTPase regulation of membrane identity
- Rab GTPase localization and Rab cascades in Golgi transport
- A Three-Stage Model of Golgi Structure and Function
- The Golgi in Cell Migration: Regulation by Signal Transduction and Its Implications for Cancer Cell Metastasis
- Insights into the insect salivary gland proteome: diet-associated changes in caterpillar labial salivary proteins.
- Retrograde vesicle transport in the Golgi
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