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Updated: Dec 7, 2025

Nanopodia - Thin, Fragile Membrane Projections with Roles in Cell Movement and Intercellular Interactions
Published on: April 3, 2014
Open conformation of tetraspanins shapes interaction partner networks on cell membranes
Yihu Yang1, Xiaoran Roger Liu2, Zev J Greenberg3
1Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine, St. Louis, MO, USA.
Abstract:
Tetraspanins, including CD53 and CD81, regulate a multitude of cellular processes through organizing an interaction network on cell membranes. Here, we report the crystal structure of CD53 in an open conformation poised for partner interaction. The large extracellular domain (EC2) of CD53 protrudes away from the membrane surface and exposes a variable region, which is identified by hydrogen-deuterium exchange as the common interface for CD53 and CD81 to bind partners. The EC2 orientation in CD53 is supported by an extracellular loop (EC1). At the closed conformation of CD81, however, EC2 disengages from EC1 and rotates toward the membrane, thereby preventing partner interaction. Structural simulation shows that EC1-EC2 interaction also supports the open conformation of CD81. Disrupting this interaction in CD81 impairs the accurate glycosylation of its CD19 partner, the target for leukemia immunotherapies. Moreover, EC1 mutations in CD53 prevent the chemotaxis of pre-B cells toward a chemokine that supports B-cell trafficking and homing within the bone marrow, a major CD53 function identified here. Overall, an open conformation is required for tetraspanin-partner interactions to support myriad cellular processes.
Insights
Tetraspanins like CD53 and CD81 require an open conformation for partner interactions. This structural state is crucial for cellular processes, including B-cell trafficking and CD19 glycosylation in leukemia therapies.
Area of Science:
- Cell Biology
- Structural Biology
- Immunology
Background:
- Tetraspanins (e.g., CD53, CD81) are membrane proteins organizing cellular interactions.
- Their regulation of cellular processes is linked to their conformational states.
Purpose of the Study:
- Determine the structural basis of tetraspanin-partner interactions.
- Elucidate the role of tetraspanin conformation in cellular functions.
Main Methods:
- Crystal structure determination of CD53.
- Hydrogen-deuterium exchange mass spectrometry.
- Structural simulations.
- Functional assays involving B-cell chemotaxis and CD19 glycosylation.
Main Results:
- CD53 adopts an open conformation with its large extracellular domain (EC2) exposed for partner binding.
- CD81 exhibits a closed conformation where EC2 retracts, hindering interactions.
- EC1-EC2 interactions stabilize the open conformation in CD81.
- Disrupting CD81’s EC1-EC2 interaction impairs CD19 glycosylation.
- Mutations in CD53’s EC1 block pre-B cell chemotaxis.
Conclusions:
- An open conformation is essential for tetraspanin-partner interactions.
- Tetraspanin structure directly impacts crucial cellular functions like B-cell homing and protein modification.
- Findings offer insights into leukemia immunotherapies targeting CD19.
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