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Updated: Apr 27, 2026

Analysis of Endocytic Uptake and Retrograde Transport to the Trans-Golgi Network Using Functionalized Nanobodies in Cultured Cells
Published on: February 21, 2019
JMY is involved in anterograde vesicle trafficking from the trans-Golgi network
Kai Schlüter1, Dieter Waschbüsch2, Moritz Anft1
1Institute for Molecular Cell Biology, University of Münster, Schlossplatz 5, 48149 Münster, Germany.
Abstract:
Junction-mediating and regulatory protein (JMY) was originally identified as a transcriptional co-factor in the p53-response to DNA damage. Aside from this nuclear function, recent years have uncovered an additional function of JMY, namely in cytoskeleton remodelling and actin assembly. The C-terminus of JMY comprises a canonical VCA-module, the sequence signature of Arp2/3 complex activators. Furthermore, tandem repeats of 3 WH2 (V, or more recently also W) domains render JMY capable of Arp2/3 independent actin assembly. The motility promoting cytoplasmic function of JMY is abrogated upon DNA-damage and nuclear translocation of JMY. To address the precise cellular function of JMY in cellular actin rearrangements, we have searched for potential new interaction partners by mass spectrometry. We identified several candidates and correlated their localization with the subcellular dynamics of JMY. JMY is localized to dynamic vesiculo-tubular structures throughout the cytoplasm, which are decorated with actin and Arp2/3 complex. Moreover, JMY partially colocalizes and interacts with VAP-A, which is involved in vesicle-based transport processes. Finally, overexpression of JMY results in Golgi dispersal by loss from the trans-site and affects VSV-G transport. These analyses, together with biochemical experiments, indicate that JMY drives vesicular trafficking in the trans-Golgi region and at ER-membrane contact sites (MCS), distinct from other Arp2/3 activators involved in vesicle transport processes such as the related WHAMM or WASH.
Insights
Junction-mediating and regulatory protein (JMY) acts in actin assembly and cellular transport. This study reveals JMY
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Junction-mediating and regulatory protein (JMY) is known as a nuclear transcriptional co-factor.
- Recent findings highlight JMY's cytoplasmic role in cytoskeleton remodeling and actin assembly.
- JMY possesses a VCA-module for Arp2/3 complex activation and WH2 domains for independent actin assembly.
Purpose of the Study:
- To investigate the precise cellular function of JMY in actin rearrangements.
- To identify new JMY interaction partners and understand their subcellular localization.
- To elucidate JMY's role in vesicular transport.
Main Methods:
- Mass spectrometry was used to identify JMY interaction partners.
- Subcellular localization studies were performed to correlate protein dynamics.
- Biochemical experiments and overexpression studies were conducted.
Main Results:
- JMY localizes to dynamic cytoplasmic structures with actin and Arp2/3 complex.
- JMY interacts with VAP-A, a protein involved in vesicle transport.
- JMY overexpression causes Golgi dispersal and affects vesicular transport.
Conclusions:
- JMY drives vesicular trafficking in the trans-Golgi region and ER-membrane contact sites.
- JMY's function in vesicular transport is distinct from other Arp2/3 activators.
- JMY plays a crucial role in cellular actin dynamics and membrane trafficking.
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