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Crystallization and low-resolution structure solution of the SALM3-PTPσ synaptic adhesion complex
Sudeep Karki1, Tommi Kajander1
1Institute of Biotechnology, Helsinki Institute of Life Sciences, University of Helsinki, Viikinkaari 1, 00014 Helsinki, Finland.
Summary
Synaptic adhesion molecules like SALM3 and PTPσ form a 2:2 complex crucial for brain synapse development. This study determined the mouse SALM3-PTPσ complex structure, confirming previous findings and aiding understanding of cognitive disorders.
Area of Science:
- Neuroscience
- Structural Biology
- Molecular Biology
Background:
- Synaptic adhesion molecules organize neuronal networks and regulate synapse development and maintenance.
- Synaptic adhesion-like molecules (SALMs) and leukocyte common antigen-related receptor protein tyrosine phosphatases (LAR-PTPs) are key adhesion protein families.
- Dysfunction in these molecules is linked to cognitive disorders like autism spectrum disorders and schizophrenia.
Purpose of the Study:
- To determine the molecular structure of the mouse SALM3-PTPσ complex.
- To verify the formation of a 2:2 trans-heterotetrameric complex.
- To validate previous small-angle X-ray scattering (SAXS) based solution structure models.
Main Methods:
- Protein expression and purification of mouse SALM3 and PTPσ.
- Crystallization trials and optimization.
- X-ray crystallography to determine the initial 6.5 Å resolution structure.
Main Results:
- Successfully expressed and purified the mouse SALM3-PTPσ complex.
- Obtained crystals and determined an initial structure at 6.5 Å resolution.
- Confirmed the formation of a 2:2 trans-heterotetrameric complex, consistent with previous SAXS data and the SALM5-PTPδ complex structure.
Conclusions:
- The crystal structure validates the previously reported SAXS-based solution structure of the SALM3-PTPσ complex.
- The findings reinforce the conserved 2:2 complex architecture across different SALM-PTP interactions.
- This structural information is vital for understanding the role of SALM-PTP interactions in synaptic function and cognitive disorders.

