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Published on: September 29, 2019
Structural determinants governing S100A4-induced isoform-selective disassembly of nonmuscle myosin II filaments
Bence Kiss1, Lajos Kalmár2,3, László Nyitray1
1Department of Biochemistry, Eötvös Loránd University, Budapest, Hungary.
Abstract:
The Ca(2+) -binding protein S100A4 interacts with the C terminus of nonmuscle myosin IIA (NMIIA) causing filament disassembly, which is correlated with an increased metastatic potential of tumor cells. Despite high sequence similarity of the three NMII isoforms, S100A4 discriminates against binding to NMIIB. We searched for structural determinants of this selectivity. Based on paralog scanning using phage display, we identified a single position as major determinant of isoform selectivity. Reciprocal single amino acid replacements showed that at position 1907 (NMIIA numbering), the NMIIA/NMIIC-specific alanine provides about 60-fold higher affinity than the NMIIB-specific asparagine. The structural background of this can be explained in part by a communication between the two consecutive α-helical binding segments. This communication is completely abolished by the Ala-to-Asn substitution. Mutual swapping of the disordered tailpieces only slightly affects the affinity of the NMII chimeras. Interestingly, we found that the tailpiece and position 1907 act in a nonadditive fashion. Finally, we also found that the higher stability of the C-terminal coiled-coil region of NMIIB also discriminates against interaction with S100A4. Our results clearly show that the isoform-selective binding of S100A4 is determined at multiple levels in the structure of the three NMII isoforms and the corresponding functional elements of NMII act synergistically with one another resulting in a complex interaction network. The experimental and in silico results suggest two divergent evolutionary pathways: NMIIA and NMIIB evolved to possess S100A4-dependent and -independent regulations, respectively.
Insights
The calcium-binding protein S100A4 selectively binds nonmuscle myosin IIA (NMIIA) over NMIIB. A single amino acid at position 1907 is key to this selectivity, influencing tumor cell metastasis.
Area of Science:
- Molecular biology
- Cellular biophysics
- Structural biology
Background:
- S100A4 protein binds the C terminus of nonmuscle myosin IIA (NMIIA), disassembling its filaments.
- NMIIA filament disassembly correlates with increased tumor cell metastatic potential.
- S100A4 exhibits isoform-selective binding, discriminating against NMIIB despite high sequence similarity.
Purpose of the Study:
- To identify the structural determinants responsible for S100A4's selective binding to NMIIA over NMIIB.
- To elucidate the molecular mechanisms underlying this isoform selectivity.
Main Methods:
- Phage display for paralog scanning to identify key binding positions.
- Reciprocal single amino acid replacement experiments to test binding affinity.
- In silico analysis to understand structural communication and stability.
- Construction and testing of NMII chimera constructs.
Main Results:
- A single amino acid position (1907) was identified as a major determinant of isoform selectivity.
- The NMIIA/NMIIC-specific alanine at position 1907 confers approximately 60-fold higher affinity than the NMIIB-specific asparagine.
- Communication between α-helical binding segments is crucial and abolished by the Ala-to-Asn substitution.
- Tailpiece swapping had minor effects, and tailpiece and position 1907 acted nonadditively.
- Higher stability of the NMIIB C-terminal coiled-coil region also contributes to discrimination.
Conclusions:
- S100A4 isoform selectivity is determined by multiple structural levels and synergistic functional elements within NMII isoforms.
- NMIIA and NMIIB have evolved distinct regulatory pathways, with NMIIA being S100A4-dependent and NMIIB being S100A4-independent.
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