Aichmayer B, Margolis H C, Sigel R, Yamakoshi Y, Simmer J P, Fratzl P
Max Planck Institute of Colloids and Interfaces, Potsdam, Germany.
J Struct Biol. 2005 Sep;151(3):239-49. doi: 10.1016/j.jsb.2005.06.007.
Proteins with predominantly hydrophobic character called amelogenins play a key role in the formation of the highly organized enamel tissue by forming nanospheres that interact with hydroxyapatite crystals. In the present investigation, we have studied the temperature and pH-dependent self-assembly of two recombinant mouse amelogenins, rM179 and rM166, the latter being an engineered version of the protein that lacks a 13 amino acid hydrophilic C-terminus. It has been postulated that this hydrophilic domain plays an important role in controlling the self-assembly behavior of rM179. By small-angle X-ray and neutron scattering, as well as by dynamic light scattering, we observed the onset of an aggregation of the rM179 protein nanospheres at pH 8. This behavior of the full-length recombinant protein is best explained by a core-shell model for the nanospheres, where hydrophilic and negatively charged side chains prevent the agglomeration of hydrophobic cores of the protein nanospheres at lower temperatures, while clusters consisting of several nanospheres start to form at elevated temperatures. In contrast, while capable of forming nanospheres, rM166 shows a very different aggregation behavior resulting in the formation of larger precipitates just above room temperature. These results, together with recent observations that rM179, unlike rM166, can regulate mineral organization in vitro, suggest that the aggregation of nanospheres of the full-length amelogenin rM179 is an important step in the self-assembly of the enamel matrix.
具有主要疏水特性的蛋白质牙釉蛋白,通过形成与羟基磷灰石晶体相互作用的纳米球,在高度有序的牙釉质组织形成中起关键作用。在本研究中,我们研究了两种重组小鼠牙釉蛋白rM179和rM166的温度和pH依赖性自组装,后者是一种缺乏13个氨基酸亲水C末端的工程化蛋白版本。据推测,这个亲水区在控制rM179的自组装行为中起重要作用。通过小角X射线和中子散射以及动态光散射,我们观察到rM179蛋白纳米球在pH 8时开始聚集。全长重组蛋白的这种行为最好用纳米球的核壳模型来解释,其中亲水和带负电荷的侧链在较低温度下防止蛋白纳米球疏水核心的团聚,而由几个纳米球组成的聚集体在升高的温度下开始形成。相比之下,虽然rM166能够形成纳米球,但它表现出非常不同的聚集行为,在略高于室温时形成更大的沉淀物。这些结果,连同最近的观察结果,即与rM166不同,rM179可以在体外调节矿物质组织,表明全长牙釉蛋白rM179纳米球的聚集是牙釉质基质自组装中的重要一步。