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Published on: May 24, 2014
Pex6 and ubiquitination regulate topological remodeling of the peroxisomal membrane protein Pex14
Takehiko Yasumitsu1, Yuichi Yagita2, Yukio Fujiki3
1Graduate School of Systems Life Sciences, Kyushu University, Fukuoka, Japan.
Insights
The Pex14 protein
Area of Science:
- Cell Biology
- Biochemistry
- Molecular Biology
Background:
- Peroxisomal protein import is crucial for cellular function.
- Pex14 mediates the docking of Pex5, a receptor for PTS1 cargo.
- The membrane orientation of Pex14's N-terminal domain was previously unclear.
Purpose of the Study:
- To investigate the role of AAA+ ATPase Pex6 in regulating Pex14's membrane topology.
- To understand the dynamic remodeling of Pex14 during protein import.
Main Methods:
- Immunofluorescence microscopy
- Protease protection assays
- Pharmacological inhibition of AAA+ ATPases and ubiquitin activation
Main Results:
- Pex14 N-terminus is lumen-oriented under normal conditions.
- Pex6 deficiency or AAA+ ATPase inhibition causes topological remodeling, exposing Pex14 to the cytoplasm.
- Inhibition of ubiquitin activation prevents this reorientation.
Conclusions:
- Pex14 undergoes reversible, ATP-dependent topological remodeling during Pex5 recycling.
- This remodeling acts as a molecular reset for the import complex.
- Pex6 and Pex5 ubiquitination coordinate structural organization of the import machinery.
Abstract:
Pex14 is a membrane peroxin that plays a central role in matrix protein import by mediating the docking of the cytosolic receptor Pex5, which delivers cargo harboring a peroxisome targeting signal 1. We previously reported the crystal structure of the conserved N-terminal domain of Pex14, which harbors the primary binding site for Pex5. However, the mechanistic contribution of this domain to the import process, particularly regarding its membrane orientation, remains unclear. In this study, we investigated the role of the AAA+ ATPase peroxin Pex6 in regulating the membrane topology of the Pex14 N-terminal domain. By a combination of immunofluorescence microscopy and protease protection assays, we show that the orientation of the Pex14 N terminus is dynamically modulated in an ATP- and ubiquitination-dependent topological remodeling. Under normal culture conditions, the N-terminal domain of Pex14 is oriented toward the peroxisomal lumen. Deficiency of Pex6 or its membrane-recruiting partner Pex26, as well as pharmacological inhibition of AAA+ ATPases, resulted in a marked topological remodeling, exposing the Pex14 N terminus to the cytoplasm. Conversely, inhibition of ubiquitin activation using MLN-7243 prevented this reorientation, likely by blocking Pex5 ubiquitination and its subsequent extraction from the membrane. These findings support a model in which Pex14 undergoes reversible, ATP-dependent topological remodeling during Pex5 recycling, functioning as a molecular reset mechanism for the docking-translocation complex. Our study reveals an additional mechanism of regulation in peroxisomal protein import and highlights the coordinated roles of Pex6 and Pex5 ubiquitination in maintaining the structural organization of the translocation machinery.
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