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Structural and dynamic characterization of the C-terminal tail of ErbB2: Disordered but not random
Louise Pinet1, Ying-Hui Wang2, Célia Deville3
1Institut de Chimie des Substances Naturelles, CNRS UPR2301, Université Paris-Saclay, Gif-sur-Yvette, France; Department of Biochemistry, University of Zurich, Zurich, Switzerland.
Abstract:
ErbB2 (or HER2) is a receptor tyrosine kinase overexpressed in some breast cancers and associated with poor prognosis. Treatments targeting the receptor extracellular and kinase domains have greatly improved disease outcome in the last 20 years. In parallel, the structures of these domains have been described, enabling better mechanistic understanding of the receptor function and targeted inhibition. However, the ErbB2 disordered C-terminal cytoplasmic tail (CtErbB2) remains very poorly characterized in terms of structure, dynamics, and detailed functional mechanism. Yet, it is where signal transduction is triggered via phosphorylation of tyrosine residues and carried out via interaction with adaptor proteins. Here, we report the first description, to our knowledge, of the ErbB2 disordered tail at atomic resolution using NMR, complemented by small-angle x-ray scattering. We show that although no part of CtErbB2 has any fully populated secondary or tertiary structure, it contains several transient α-helices and numerous transient polyproline II helices, populated up to 20 and 40%, respectively, and low but significant compaction. The presence of some structural elements suggests, along the lines of the results obtained for EGFR (ErbB1), that they may have a functional role in ErbB2's autoregulation processes. In addition, the transient formation of polyproline II helices is compliant with previously suggested interactions with SH3 domains. All in all, our in-depth structural study opens perspectives in the mechanistic understanding of ErbB2.
Insights
The ErbB2 (HER2) disordered tail, crucial for cancer signaling, was structurally characterized for the first time. Despite lacking stable structure, it exhibits transient helices, offering new insights into ErbB2 regulation and drug targeting.
Area of Science:
- Biochemistry
- Structural Biology
- Cancer Research
Background:
- ErbB2 (HER2) is a receptor tyrosine kinase overexpressed in breast cancer, linked to poor prognosis.
- Targeted therapies against ErbB2 extracellular and kinase domains have improved outcomes.
- The ErbB2 C-terminal cytoplasmic tail (CtErbB2) is critical for signal transduction but poorly understood structurally.
Purpose of the Study:
- To characterize the structure and dynamics of the ErbB2 disordered tail (CtErbB2) at atomic resolution.
- To elucidate the functional implications of CtErbB2's structural features.
- To provide a mechanistic understanding of ErbB2 signaling.
Main Methods:
- Nuclear Magnetic Resonance (NMR) spectroscopy for atomic-resolution structural data.
- Small-angle X-ray scattering (SAXS) for overall structural insights.
- Analysis of transient secondary structure elements and protein compaction.
Main Results:
- CtErbB2 lacks stable secondary or tertiary structure.
- Identified transient alpha-helices (up to 20%) and polyproline II helices (up to 40%).
- Observed low but significant compaction, suggesting functional roles in autoregulation and interactions with SH3 domains.
Conclusions:
- The study provides the first atomic-resolution structural insights into the ErbB2 disordered tail.
- Transient structural elements in CtErbB2 may play roles in ErbB2 autoregulation and protein interactions.
- These findings open new avenues for understanding ErbB2 signaling mechanisms and developing targeted therapies.
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