Physical Chemistry Division, CSIR-National Chemical Laboratory, Mr. Homi Bhaba Road, Pune 411008, India.
Biophys Chem. 2013 Dec 31;184:108-15. doi: 10.1016/j.bpc.2013.09.008. Epub 2013 Oct 30.
Spontaneous adsorption of the Aβ peptide on the surface of a single-walled carbon nanotube, resulting in the prevention of its intrinsic propensity to form collapsed states, could be a plausible means to hinder the peptide's initial nucleation and self-assembly. We report here the effects of sharply reducing both aromatic and hydrophobic character within the peptide's central hydrophobic core on its free and surface behavior. In such an altered peptide, complete surface adsorption is found to induce, rather than prevent, the adsorbed peptide's collapse. The weakened surface interactions of the central hydrophobic core allow its greater translational mobility on the surface, thereby facilitating interactions that lead to compaction. Both the adsorption and the subsequent collapse are accompanied by a loss of surface hydration in the modified peptide. We further find that such a two-step dewetting leads to hydration levels comparable to that obtained after compaction of the free peptide. These insights may be leveraged for designing molecular surfaces for disrupting intrinsic Aβ behavior.
Aβ 肽在单壁碳纳米管表面的自发吸附,防止了其固有倾向于形成塌陷状态,这可能是阻止肽初始成核和自组装的一种合理手段。我们在这里报告了在肽的中心疏水区内显著降低芳香性和疏水性对其游离和表面行为的影响。在这种改变的肽中,发现完全表面吸附会诱导而不是阻止吸附肽的塌陷。中心疏水区的较弱表面相互作用允许其在表面上更大的平移流动性,从而促进导致压缩的相互作用。在修饰肽中,吸附和随后的塌陷都伴随着表面水合作用的丧失。我们进一步发现,这种两步去湿导致的水合水平与游离肽压缩后获得的水合水平相当。这些见解可用于设计破坏内在 Aβ 行为的分子表面。