Martinez-Avila Olga M, Wu Shenping, Cheng Yifan, Lee Robert, Khan Feroz, Habelitz Stefan
Department of Preventative and Restorative Dental Sciences, University of California, San Francisco, CA 94143-0758, USA.
Eur J Oral Sci. 2011 Dec;119 Suppl 1(Suppl 1):75-82. doi: 10.1111/j.1600-0722.2011.00907.x.
Self-assembly of amelogenin plays a key role in controlling enamel biomineralization. Recently, we generated self-aligning nanoribbons of amelogenin in water-in-oil emulsions stabilized by the full-length protein (rH174). Here, we tested the hypothesis that the hydrophilic C-terminus is critical for self-assembly of amelogenin into nanoribbons. The self-assembled structures of two amelogenin cleavage products, rH163 and rH146, were compared with structures of rH174 at different pH values and degrees of saturation using atomic force microscopy, electron microscopy, and dynamic light scattering. We observed that the number density of rH174 nanoribbons increased significantly when the initial pH was raised from 4.5 to 5.6. Nanoribbons, as well as unique helical nanostructures, were also readily observed when amelogenin rH146 was used, but showed little tendency for parallel alignment and did not bundle into fibrils like rH174. In contrast, rH163 rarely formed nanoribbons but predominantly assembled into nanospheres under the same conditions. We conclude that the presence of a hydrophilic C-terminus may not be a prerequisite for nanoribbon formation but may be critical for ribbon alignment and subsequent fibril formation. These results highlight the contribution of the hydrophobic domain in the self-assembly of elongated structures of amelogenins. Molecular mechanisms governing these processes based on the formation of reverse micelles are discussed.
釉原蛋白的自组装在控制牙釉质生物矿化过程中起着关键作用。最近,我们在由全长蛋白(rH174)稳定的油包水乳液中生成了自排列的釉原蛋白纳米带。在此,我们检验了这样一个假设,即亲水性C末端对于釉原蛋白自组装成纳米带至关重要。使用原子力显微镜、电子显微镜和动态光散射,比较了两种釉原蛋白裂解产物rH163和rH146在不同pH值和饱和度下的自组装结构与rH174的结构。我们观察到,当初始pH值从4.5提高到5.6时,rH174纳米带的数量密度显著增加。当使用釉原蛋白rH146时,也很容易观察到纳米带以及独特的螺旋纳米结构,但几乎没有平行排列的趋势,也不会像rH174那样聚集成纤维。相比之下,在相同条件下,rH163很少形成纳米带,主要组装成纳米球。我们得出结论,亲水性C末端的存在可能不是纳米带形成的先决条件,但可能对带的排列和随后的纤维形成至关重要。这些结果突出了疏水结构域在釉原蛋白细长结构自组装中的作用。讨论了基于反胶束形成的控制这些过程的分子机制。