Understanding the mechanical stability and architecture of viral proteins can provide valuable information about their biological function, but it remains a significant biophysical challenge. This study employs single-molecule force spectroscopy (SMFS) to investigate the multi-domain architecture of the Orsay virus {delta} protein, which lacks repeat structures and exhibits weak unfolding peaks. We engineered a construct using titin (I27)4 domains as an internal molecular ruler, enabling us to bracket the {delta} protein peaks to determine domain length and identify unfolding forces with an atomic force microscope (AFM). To address limitations of one-dimensional (1D) force distributions in resolving overlapping structural states, we created a two-dimensional (2D) mechano-structural signature map. By plotting kinetic stability (unfolding force F) against physical structural footprint (domain length L), we distinguished distinct unfolding domains, successfully separating degenerate 1D data into two statistically distinct populations corresponding to the {delta} proteins internal domain (I) and C-terminal domain (C). This label-free method provides the first mechanical evidence of the {delta} proteins multi-domain architecture. It establishes a robust, multi-dimensional framework for decoding the mechanics of complex biomolecular assemblies in their native state.
Kiang, C.-H., Deem, C. S., Wijeratne, S., Lin, T.-C., Chen, H., Du, L., Tao, Y.
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