. During this process, cargo mol-ecules are clustered and concentrated within the emerging coated pit. After coat assembly and membrane invagination, which is facilitated by BAR domain-containing proteins, vesicle fission is catalyzed by the recruitment and helical assembly of the GTPase dynamin at the neck of the burgeoning vesicle. Membrane scission requires the cooperative activity of dynamin with SH3 domain-containing proteins, many of which possess BAR domains and regulate the actin cytoskeleton. Actin is required for endocytosis in yeast and may have a regulatory role in mammalian cells. The actin-associated motor proteins myosin 1E and myosin VI are linked to the endocytic machinery via dynamin or synaptojanin and Dab2, respectively. During vesicle uncoating, primary endocytic vesicles may acquire Rab5, a small GTPase involved in transport to early endosomes and in early endosome docking and fusion. Primary endocytic vesicles are targeted to and fuse with early endosomes expressing phosphatidylinositol(3)-phosphate, PI(3)P, in a process dependent on Rab5 effector proteins and early endosomal SNAREs. Differential sorting of cargo destined for recycling (requiring Rab11 and possibly Rab4) or for late endosome/lysosomal degradation (requiring Rab7) can occur at the level of clathrin-coated pits and be com-pleted in early endosomal subdomains. Transport of cargo from early endosomes to the trans-Golgi network requires the retromer protein complex.
[1]
K. Cortese,et al.
The GTPase-Activating Protein GRAF1 Regulates the CLIC/GEEC Endocytic Pathway
,
2008,
Current Biology.
[2]
L. Hinrichsen,et al.
Endocytosis: clathrin-mediated membrane budding.
,
2007,
Current opinion in cell biology.
[3]
R. Puertollano.
Clathrin‐mediated transport: assembly required
,
2004
.
[4]
R. Puertollano.
Clathrin-mediated transport: assembly required. Workshop on Molecular Mechanisms of Vesicle Selectivity.
,
2004,
EMBO reports.
[5]
Lawrence M. Lifshitz,et al.
Sorting of EGF and transferrin at the plasma membrane and by cargo-specific signaling to EEA1-enriched endosomes
,
2008,
Journal of Cell Science.
[6]
P. Evans,et al.
Molecular Basis for the Sorting of the SNARE VAMP7 into Endocytic Clathrin-Coated Vesicles by the ArfGAP Hrb
,
2008,
Cell.
[7]
Harvey T. McMahon,et al.
Integrating molecular and network biology to decode endocytosis
,
2007,
Nature.
[8]
R. Puertollano.
Workshop on Molecular Mechanisms of Vesicle Selectivity
,
2004
.
[9]
V. Haucke,et al.
Clathrin-mediated endocytosis: membrane factors pull the trigger.
,
2001,
Trends in cell biology.
[10]
Satyajit Mayor,et al.
Pathways of clathrin-independent endocytosis
,
2007,
Nature Reviews Molecular Cell Biology.
[11]
Katharina Gaus,et al.
Shiga toxin induces tubular membrane invaginations for its uptake into cells
,
2007,
Nature.