Because of proteins’ many degrees of conformational freedom, programming protein folding dynamics, overall elasticity, and motor functions remains an elusive objective. Instead, smaller and simpler objects, such as synthetic foldamers, may be amenable to design. However, little is known about their mechanical performance. Here, we show that reducing molecular size may not compromise mechanical properties. We report that helical aromatic oligoamides as small as 1 nm possess outstanding elasticity and outperform most natural helices. Using single-molecule force spectroscopy, we characterize their folding trajectories and intermediate states. We show that they cooperatively and reversibly unwind at high forces. They extend up to 3.8 times their original length and rewind against considerable forces on a timescale of 10 μs. Pulling and relaxing cycles follow the same trace up to a very high loading rate, indicating that the mechanical energy accumulated during the stretching does not dissipate and is immediately reusable.

Devaux F., Li X., Sluysmans D., Maurizot V., Bakalis E., Zerbetto F., et al. (2021). Single-molecule mechanics of synthetic aromatic amide helices: Ultrafast and robust non-dissipative winding. CHEM, 7, 1-14 [10.1016/j.chempr.2021.02.030].

Single-molecule mechanics of synthetic aromatic amide helices: Ultrafast and robust non-dissipative winding

Bakalis E.;Zerbetto F.;
2021

Abstract

Because of proteins’ many degrees of conformational freedom, programming protein folding dynamics, overall elasticity, and motor functions remains an elusive objective. Instead, smaller and simpler objects, such as synthetic foldamers, may be amenable to design. However, little is known about their mechanical performance. Here, we show that reducing molecular size may not compromise mechanical properties. We report that helical aromatic oligoamides as small as 1 nm possess outstanding elasticity and outperform most natural helices. Using single-molecule force spectroscopy, we characterize their folding trajectories and intermediate states. We show that they cooperatively and reversibly unwind at high forces. They extend up to 3.8 times their original length and rewind against considerable forces on a timescale of 10 μs. Pulling and relaxing cycles follow the same trace up to a very high loading rate, indicating that the mechanical energy accumulated during the stretching does not dissipate and is immediately reusable.
2021
Devaux F., Li X., Sluysmans D., Maurizot V., Bakalis E., Zerbetto F., et al. (2021). Single-molecule mechanics of synthetic aromatic amide helices: Ultrafast and robust non-dissipative winding. CHEM, 7, 1-14 [10.1016/j.chempr.2021.02.030].
Devaux F.; Li X.; Sluysmans D.; Maurizot V.; Bakalis E.; Zerbetto F.; Huc I.; Duwez A.-S.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/819909
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