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PMID: 19004523 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

The membrane-tubulating potential of amphiphysin 2/BIN1 is dependent on the microtubule-binding cytoplasmic linker protein 170 (CLIP-170).

European journal of cell biology ·Vol. 88 ·No. 2 ·2009-02-00 ·Pages 91-102

Meunier B, Quaranta M, Daviet L, Hatzoglou A, Leprince C

Abstract

Amphiphysins are BIN-amphiphysin-RVS (BAR) domain-containing proteins that influence membrane curvature in sites such as T-tubules in muscular cells, endocytic pits in neuronal as well as non-neuronal cells, and possibly cytoplasmic endosomes. This effect on lipid membranes is fulfilled by diverse amphiphysin 2/BIN1 isoforms, generated by alternative splicing and showing distinct structural and functional properties. In this study, our goal was to characterize the functional role of a ubiquitously expressed amphiphysin 2/BIN1 by the characterization of new molecular partners. We performed a two-hybrid screen with an isoform of amphiphysin 2/BIN1 expressed in HeLa cells. We identified CLIP-170 as an amphiphysin 2/BIN1-interacting molecule. CLIP-170 is a plus-end tracking protein involved in microtubule (MT) stability and recruitment of dynactin. The binding between amphiphysin 2/BIN1 and CLIP-170 is dependent on the N-terminal part of amphiphysin 2 (mostly the BAR domain) and an internal coiled-coil region of CLIP-170. This partnership was confirmed by GST pull-down assay and by co-immunoprecipitation in HeLa cells that express endogenous amphiphysin 2 (mostly isoforms 6, 9 and 10). When overexpressed in HeLa cells, amphiphysin 2/BIN1 leads to the formation of intracellular tubules which can closely align with MTs. After MT depolymerization by nocodazole, amphiphysin 2-stained tubules disappear, and reappear after nocodazole washout. Furthermore, depletion of CLIP-170 by RNAi induced a decrease in the proportion of cells with amphiphysin 2-stained tubules and an increase in the proportion of cells with no tubules. This result suggests the existence of a mechanistic link between the two types of tubules, which is likely to involve the +TIP protein, CLIP-170. Amphiphysin 2/BIN1 may be an anchoring point on membranes for CLIP-170, and consequently for MT. Then, the pushing force of polymerizing MT could help amphiphysin 2/BIN1 in its tubulation potential. We propose that amphiphysin 2/BIN1 participates in the tubulation of traffic intermediates and intracellular organelles first via its intrinsic tubulating potential and second via its ability to bind CLIP-170 and MT.

MeSH Terms
Cell Membrane/drug effects,metabolism Cell Surface Extensions/drug effects,metabolism Gene Expression Regulation/drug effects HeLa Cells Humans Intracellular Space/drug effects,metabolism Microtubule-Associated Proteins/chemistry,metabolism Microtubules/drug effects,metabolism Neoplasm Proteins/chemistry,metabolism Nerve Tissue Proteins/chemistry,genetics,metabolism Nocodazole/pharmacology Protein Binding/drug effects Protein Isoforms/chemistry,genetics,metabolism Protein Structure, Tertiary Protein Transport/drug effects Tubulin/metabolism Two-Hybrid System Techniques
Chemicals
Microtubule-Associated Proteins Neoplasm Proteins Nerve Tissue Proteins Protein Isoforms Tubulin amphiphysin cytoplasmic linker protein 170 Nocodazole
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Meunier Brigitte
Analysis of Signal Transduction Group, INSERM U830, Institut Curie, Paris, France.
Quaranta Muriel
Daviet Laurent
Hatzoglou Anastassia
Leprince Corinne
Article Info
Journal
European journal of cell biology
Abbr.
Eur J Cell Biol
ISSN
1618-1298
Published
2009-02-00
Epub
2008-00-12
Pages
91-102
Language
English
Region
Germany
NLM ID
7906240
Subset
IM
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