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Updated: May 3, 2026

In vivo and in vitro Studies of Adaptor-clathrin Interaction
Published on: January 26, 2011
Structural and functional characterization of cargo-binding sites on the μ4-subunit of adaptor protein complex 4
Breyan H Ross1, Yimo Lin1, Esteban A Corales1
1Instituto de Fisiología, Facultad de Medicina, and Centro de Investigación Sur-Austral en Enfermedades del Sistema Nervioso, Universidad Austral de Chile, Valdivia, Chile.
Abstract:
Adaptor protein (AP) complexes facilitate protein trafficking by playing key roles in the selection of cargo molecules to be sorted in post-Golgi compartments. Four AP complexes (AP-1 to AP-4) contain a medium-sized subunit (μ1-μ4) that recognizes YXXØ-sequences (Ø is a bulky hydrophobic residue), which are sorting signals in transmembrane proteins. A conserved, canonical region in μ subunits mediates recognition of YXXØ-signals by means of a critical aspartic acid. Recently we found that a non-canonical YXXØ-signal on the cytosolic tail of the Alzheimer's disease amyloid precursor protein (APP) binds to a distinct region of the μ4 subunit of the AP-4 complex. In this study we aimed to determine the functionality of both binding sites of μ4 on the recognition of the non-canonical YXXØ-signal of APP. We found that substitutions in either binding site abrogated the interaction with the APP-tail in yeast-two hybrid experiments. Further characterization by isothermal titration calorimetry showed instead loss of binding to the APP signal with only the substitution R283D at the non-canonical site, in contrast to a decrease in binding affinity with the substitution D190A at the canonical site. We solved the crystal structure of the C-terminal domain of the D190A mutant bound to this non-canonical YXXØ-signal. This structure showed no significant difference compared to that of wild-type μ4. Both differential scanning fluorimetry and limited proteolysis analyses demonstrated that the D190A substitution rendered μ4 less stable, suggesting an explanation for its lower binding affinity to the APP signal. Finally, in contrast to overexpression of the D190A mutant, and acting in a dominant-negative manner, overexpression of μ4 with either a F255A or a R283D substitution at the non-canonical site halted APP transport at the Golgi apparatus. Together, our analyses support that the functional recognition of the non-canonical YXXØ-signal of APP is limited to the non-canonical site of μ4.
Insights
Adaptor protein complex AP-4 recognizes the Alzheimer's precursor protein (APP) via a non-canonical binding site on its μ4 subunit. This distinct interaction is crucial for proper APP transport, highlighting a specific mechanism in protein trafficking.
Area of Science:
- Cell Biology
- Molecular Biology
- Protein Trafficking
Background:
- Adaptor protein (AP) complexes mediate protein sorting in post-Golgi compartments.
- AP complexes utilize medium subunits (μ1-μ4) to recognize YXXØ sorting signals in transmembrane proteins.
- A canonical binding site in μ subunits recognizes YXXØ-signals via an aspartic acid residue.
Purpose of the Study:
- To investigate the functionality of both canonical and non-canonical binding sites of the μ4 subunit in recognizing the non-canonical YXXØ-signal of amyloid precursor protein (APP).
Main Methods:
- Yeast-two hybrid experiments to assess binding interactions.
- Isothermal titration calorimetry to quantify binding affinity.
- Crystal structure determination of a μ4 mutant bound to the APP signal.
- Differential scanning fluorimetry and limited proteolysis to evaluate protein stability.
- Overexpression studies to analyze functional impact on APP transport.
Main Results:
- Substitutions in either the canonical or non-canonical binding site abrogated APP-tail interaction in yeast-two hybrid assays.
- Only the non-canonical site substitution (R283D) completely abolished binding, while the canonical site substitution (D190A) decreased binding affinity.
- The D190A mutation destabilized the μ4 subunit, explaining reduced binding affinity.
- Overexpression of μ4 mutants at the non-canonical site halted APP transport at the Golgi apparatus.
Conclusions:
- Functional recognition of the non-canonical YXXØ-signal of APP by the μ4 subunit is primarily mediated by its non-canonical binding site.
- This specific interaction is essential for regulating APP transport through the Golgi apparatus.
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