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Updated: Jun 27, 2025

Visualizing Clathrin-mediated Endocytosis of G Protein-coupled Receptors at Single-event Resolution via TIRF Microscopy
Published on: October 20, 2014
Intersectin1 promotes clathrin-mediated endocytosis by organizing and stabilizing endocytic protein interaction
Meiyan Jin1,2, Yuichiro Iwamoto1, Cyna Shirazinejad1
1Department of Molecular and Cell Biology, University of California, Berkeley, CA 94720, USA.
Insights
Intersectin-1 (ITSN1) organizes and stabilizes protein networks essential for clathrin-mediated endocytosis (CME). This scaffold protein is crucial for efficient CME site assembly and protein recruitment during the stabilization phase.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Clathrin-mediated endocytosis (CME) requires precise spatiotemporal coordination of numerous proteins at the plasma membrane.
- The multivalent scaffold protein intersectin-1 (ITSN1) has been implicated in endocytic processes, but its precise role remains debated.
Conclusions:
- ITSN1 acts as a crucial scaffold protein that organizes and stabilizes endocytic protein interaction networks, rather than solely initiating endocytosis.
- This study redefines the primary role of ITSN1 in CME, highlighting its importance in the multi-step organization of CME site assembly.
- Findings provide new insights into the dynamic assembly process of clathrin-mediated endocytosis.
Abstract:
During clathrin-mediated endocytosis (CME), dozens of proteins are recruited to nascent CME sites on the plasma membrane. Coordination of endocytic protein recruitment in time and space is important for efficient CME. Here, we show that the multivalent scaffold protein intersectin1 (ITSN1) promotes CME by organizing and stabilizing endocytic protein interaction networks. By live-cell imaging of genome-edited cells, we observed that endogenously labeled ITSN1 is recruited to CME sites shortly after they begin to assemble. Knocking down ITSN1 impaired endocytic protein recruitment during the stabilization stage of CME site assembly. Artificially locating ITSN1 to the mitochondria surface was sufficient to assemble puncta consisting of CME initiation proteins, including EPS15, FCHO, adaptor proteins, the AP2 complex and epsin1 (EPN1), and the vesicle scission GTPase dynamin2 (DNM2). ITSN1 can form puncta and recruit DNM2 independently of EPS15/FCHO or EPN1. Our work redefines ITSN1's primary endocytic role as organizing and stabilizing the CME protein interaction networks rather than a previously suggested role in initiation and provides new insights into the multi-step and multi-zone organization of CME site assembly.
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