Abstract
We apply novel atomistic simulations based on potential energy surface exploration to investigate the constant force-induced unfolding of ubiquitin. At the experimentally-studied force clamping level of 100a €...pN, we find a new unfolding mechanism starting with the detachment between I 2 5 and I 2 3 involving the binding site of ubiquitin, the Ile44 residue. This new unfolding pathway leads to the discovery of new intermediate configurations, which correspond to the end-to-end extensions previously seen experimentally. More importantly, it demonstrates the novel finding that the binding site of ubiquitin can be responsible not only for its biological functions, but also its unfolding dynamics. We also report in contrast to previous single molecule constant force experiments that when the clamping force becomes smaller than about 300a €...pN, the number of intermediate configurations increases dramatically, where almost all unfolding events at 100a €...pN involve an intermediate configuration. By directly calculating the life times of the intermediate configurations from the height of the barriers that were crossed on the potential energy surface, we demonstrate that these intermediate states were likely not observed experimentally due to their lifetimes typically being about two orders of magnitude smaller than the experimental temporal resolution.
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CITATION STYLE
Cao, P., Yoon, G., Tao, W., Eom, K., & Park, H. S. (2015). The role of binding site on the mechanical unfolding mechanism of ubiquitin. Scientific Reports, 5. https://doi.org/10.1038/srep08757
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