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Updated: Aug 8, 2026

In vivo and in vitro Studies of Adaptor-clathrin Interaction
Published on: January 27, 2011
A dominant-negative clathrin mutant differentially affects trafficking of molecules with distinct sorting motifs in
S H Liu1, M S Marks, F M Brodsky
1The G.W. Hooper Foundation, Department of Microbiology and Immunology, University of California, San Francisco, California 94143-0552, USA.
Insights
Clathrin-coated vesicles (CCVs) mediate intracellular sorting by recognizing specific signals. This study reveals CCVs are crucial for targeting molecules like HLA-DM but not the HLA-DR-invariant chain complex directly from the TGN.
Area of Science:
- Cell Biology
- Molecular Biology
- Immunology
Background:
- Intracellular sorting relies on specific protein signals and transport machinery.
- Clathrin-coated vesicles (CCVs) are key mediators of protein trafficking within cells.
Purpose of the Study:
- To investigate the role of clathrin in intracellular sorting using a dominant-negative hub fragment.
- To determine the involvement of CCVs in the trafficking of specific immune complex components.
Main Methods:
- Expression of a dominant-negative clathrin hub fragment to inhibit clathrin function.
- Assessing the impact on transferrin and mannose-6-phosphate receptor trafficking.
- Analyzing the transport of HLA-DM and HLA-DR-invariant chain complexes.
Main Results:
- Hub expression blocked transferrin uptake and lysosomal delivery of proteins with specific sorting signals.
- HLA-DM export from the TGN was blocked by hub accumulation, indicating CCV involvement.
- HLA-DR-invariant chain complex transport from the TGN was independent of CCVs, but both complexes were internalized via CCVs from the cell surface.
Conclusions:
- CCVs play distinct roles in the TGN export of HLA-DM and HLA-DR-invariant chain complex.
- Tyrosine- and dileucine-based sorting signals mediate differential CCV packaging for functional segregation.
- Both complexes are internalized via CCVs from the cell surface for delivery to late endocytic compartments.
Abstract:
The role of clathrin in intracellular sorting was investigated by expression of a dominant-negative mutant form of clathrin, termed the hub fragment. Hub inhibition of clathrin-mediated membrane transport was established by demonstrating a block of transferrin internalization and an alteration in the intracellular distribution of the cation-independent mannose-6-phosphate receptor. Hubs had no effect on uptake of FITC-dextran, adaptor distribution, organelle integrity in the secretory pathway, or cell surface expression of constitutively secreted molecules. Hub expression blocked lysosomal delivery of chimeric molecules containing either the tyrosine-based sorting signal of H2M or the dileucine-based sorting signal of CD3gamma, confirming a role for clathrin-coated vesicles (CCVs) in recognizing these signals and sorting them to the endocytic pathway. Hub expression was then used to probe the role of CCVs in targeting native molecules bearing these sorting signals in the context of HLA-DM and the invariant chain (I chain) complexed to HLA-DR. The distribution of these molecules was differentially affected. Accumulation of hubs before expression of the DM dimer blocked DM export from the TGN, whereas hubs had no effect on direct targeting of the DR-I chain complex from the TGN to the endocytic pathway. However, concurrent expression of hubs, such that hubs were building to inhibitory concentrations during DM or DR-I chain expression, caused cell surface accumulation of both complexes. These observations suggest that both DM and DR-I chain are directly transported to the endocytic pathway from the TGN, DM in CCVs, and DR-I chain independent of CCVs. Subsequently, both complexes can appear at the cell surface from where they are both internalized by CCVs. Differential packaging in CCVs in the TGN, mediated by tyrosine- and dileucine-based sorting signals, could be a mechanism for functional segregation of DM from DR-I chain until their intended rendezvous in late endocytic compartments.
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