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Updated: Aug 13, 2025

Reconstitution of Membrane-Tethered Minimal Actin Cortices on Supported Lipid Bilayers
Published on: July 12, 2022
VAP-A intrinsically disordered regions enable versatile tethering at membrane contact sites
Mélody Subra1, Manuela Dezi2, Joëlle Bigay1
1Université Côte d'Azur, Inserm, CNRS, Institut de Pharmacologie Moléculaire et Cellulaire, 660 route des lucioles, 06560 Valbonne, France.
Abstract:
Membrane contact sites (MCSs) are heterogeneous in shape, composition, and dynamics. Despite this diversity, VAP proteins act as receptors for multiple FFAT motif-containing proteins and drive the formation of most MCSs that involve the endoplasmic reticulum (ER). Although the VAP-FFAT interaction is well characterized, no model explains how VAP adapts to its partners in various MCSs. We report that VAP-A localization to different MCSs depends on its intrinsically disordered regions (IDRs) in human cells. VAP-A interaction with PTPIP51 and VPS13A at ER-mitochondria MCS conditions mitochondria fusion by promoting lipid transfer and cardiolipin buildup. VAP-A also enables lipid exchange at ER-Golgi MCS by interacting with oxysterol-binding protein (OSBP) and CERT. However, removing IDRs from VAP-A restricts its distribution and function to ER-mitochondria MCS. Our data suggest that IDRs do not modulate VAP-A preference toward specific partners but do adjust their geometry to MCS organization and lifetime constraints. Thus, IDR-mediated VAP-A conformational flexibility ensures membrane tethering plasticity and efficiency.
Insights
Vesicle-associated membrane protein-A (VAP-A) intrinsically disordered regions (IDRs) enable its flexible localization and function at diverse membrane contact sites (MCSs). IDRs adjust VAP-A geometry for efficient membrane tethering and lipid transfer.
Area of Science:
- Cell Biology
- Membrane Biology
- Protein Biochemistry
Background:
- Membrane contact sites (MCSs) are crucial for cellular lipid and metabolite transfer.
- Vesicle-associated membrane protein-A (VAP-A) is a key tethereing factor at ER-involved MCSs, interacting with FFAT motif proteins.
- The mechanism by which VAP-A adapts to diverse MCSs remains unclear.
Purpose of the Study:
- To investigate the role of VAP-A intrinsically disordered regions (IDRs) in its localization and function at different MCSs.
- To elucidate how VAP-A's structural flexibility contributes to MCS organization and lipid transfer dynamics.
Main Methods:
- Human cell culture and imaging techniques.
- Genetic manipulation of VAP-A, including IDR deletion.
- Biochemical assays to assess protein interactions and lipid transfer.
Main Results:
- VAP-A localization to ER-mitochondria and ER-Golgi MCSs depends on its IDRs.
- VAP-A, via IDRs, facilitates mitochondria fusion, lipid transfer, and cardiolipin buildup at ER-mitochondria MCSs.
- IDR removal restricts VAP-A function to ER-mitochondria MCSs, suggesting IDRs confer adaptability.
Conclusions:
- Intrinsically disordered regions of VAP-A are critical for its adaptability and function across various membrane contact sites.
- VAP-A's conformational flexibility, mediated by IDRs, ensures efficient and plastic membrane tethering.
- This study provides a model for how VAP-A utilizes IDRs to navigate diverse cellular membrane contact site environments.
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