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Autoinhibition in the Signal Transducer CIN85 Modulates B Cell Activation
Daniel Sieme1, Michael Engelke2, Nasrollah Rezaei-Ghaleh3,4
1Department for NMR-based Structural Biology, Max Planck Institute for Multidisciplinary Sciences, Am Fassberg 11, 37077 Göttingen, Germany.
Insights
A newly discovered intramolecular interaction in CIN85 protein regulates B cell receptor signaling condensates. This finding reveals how CIN85 valency modulation impacts B cell activation and calcium mobilization.
Area of Science:
- Molecular Biology
- Cellular Signaling
- Biochemistry
Background:
- B cell receptor (BCR) signaling relies on protein organization within phase-separated condensates.
- Key proteins like SLP65 and CIN85 form these condensates via interactions between Src homology 3 (SH3) domains and proline-rich motifs (PRMs).
- The precise conformational dynamics governing these condensates and their role in BCR signaling remain unclear.
Purpose of the Study:
- To investigate the structural basis of SLP65/CIN85 condensate formation.
- To identify novel interactions within CIN85 that regulate its function in BCR signaling.
- To elucidate how protein conformation impacts B cell activation.
Main Methods:
- High-resolution nuclear magnetic resonance (NMR) spectroscopy to study protein conformation.
- Analysis of multidomain protein constructs and flexible linker regions.
- B cell culture experiments to assess signaling dynamics.
Main Results:
- Identified a previously unknown intramolecular interaction between CIN85's C-terminal SH3 domain (SH3C) and an adjacent PRM.
- Demonstrated that phosphorylation of a nearby serine residue dynamically modulates this intramolecular interaction, affecting CIN85's valency.
- Confirmed the interaction's critical role in SLP65/CIN85 condensate formation, CIN85 membrane recruitment, and calcium mobilization in B cells.
Conclusions:
- The intramolecular SH3C:PRM interaction in CIN85 is a key regulatory mechanism.
- This interaction dynamically controls CIN85 valency, impacting condensate formation and B cell signaling.
- Findings provide insights into the molecular basis of BCR signal transduction regulation.
Abstract:
Signal transduction by the ligated B cell antigen receptor (BCR) depends on the preorganization of its intracellular components, such as the effector proteins SLP65 and CIN85 within phase-separated condensates. These liquid-like condensates are based on the interaction between three Src homology 3 (SH3) domains and the corresponding proline-rich recognition motifs (PRM) in CIN85 and SLP65, respectively. However, detailed information on the protein conformation and how it impacts the capability of SLP65/CIN85 condensates to orchestrate BCR signal transduction is still lacking. This study identifies a hitherto unknown intramolecular SH3:PRM interaction between the C-terminal SH3 domain (SH3C) of CIN85 and an adjacent PRM. We used high-resolution nuclear magnetic resonance (NMR) experiments to study the flexible linker region containing the PRM and determined the extent of the interaction in multidomain constructs of the protein. Moreover, we observed that the phosphorylation of a serine residue located in the immediate vicinity of the PRM regulates this intramolecular interaction. This allows for a dynamic modulation of CIN85's valency toward SLP65. B cell culture experiments further revealed that the PRM/SH3C interaction is crucial for maintaining the physiological level of SLP65/CIN85 condensate formation, activation-induced membrane recruitment of CIN85, and subsequent mobilization of Ca2+. Our findings therefore suggest that the intramolecular interaction with the adjacent disordered linker is effective in modulating CIN85's valency both in vitro and in vivo. This therefore constitutes a powerful way for the modulation of SLP65/CIN85 condensate formation and subsequent B cell signaling processes within the cell.
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