College of Resources and Environment, Huazhong Agricultural University, Wuhan 430070, China.
Institut für Mineralogie, University of Münster, 48149 Münster, Germany.
Langmuir. 2020 Mar 3;36(8):2102-2109. doi: 10.1021/acs.langmuir.9b02735. Epub 2020 Feb 19.
Amelotin (AMTN) as a matrix protein exerts a direct effect on biomineralization by modulating apatite (HAP) formation during the dental enamel maturation stage through the specific interaction of a potentially phosphorylated Ser-Ser-Glu-Glu-Leu (SSEEL) peptide fragment with calcium phosphate (Ca-P) surfaces. However, the roles of (non)phosphorylation of this evolutionarily conserved subdomain within AMTN remain poorly understood. Here, we show, by time-resolved atomic force microscopy (AFM) imaging of in situ HAP crystallization via the HPO-rich amorphous calcium phosphate (acidic ACP), the on/off switching of the phase transformation process through a nonphosphorylation-to-phosphorylation transition of the SSEEL motif. Using high-resolution transmission electron microscopy (HRTEM), we observed that the acidic ACP phase is stabilized by the phosphorylated SSEEL motif, delaying its transformation to HAP, whereas the nonphosphorylated counterpart promotes HAP formation by accelerating the dissolution-recrystallization of the acidic ACP substrate. Dynamic force spectroscopy measurements demonstrate greater binding energies of nonphosphorylated SSEEL to the acidic ACP substrate by the formation of molecular peptide-ACP bonding, explaining the enhanced dissolution of the acidic ACP substrate by stronger complexion with surface Ca ions. Our findings demonstrate direct evidence for the switching role of (non)phosphorylation of an evolutionarily conserved subdomain within AMTN in controlling the phase transition of growing enamel and designing tissue regeneration biomaterials.
釉基质蛋白(AMTN)作为一种基质蛋白,通过与磷酸钙(Ca-P)表面的特定相互作用,调节牙釉质成熟阶段中磷灰石(HAP)的形成,从而对生物矿化产生直接影响。该相互作用由一个可能被磷酸化的丝氨酸-丝氨酸-谷氨酸-谷氨酸-亮氨酸(SSEEL)肽片段介导。然而,AMTN 中这个进化上保守的亚结构域的(非)磷酸化作用的作用仍知之甚少。在这里,我们通过时间分辨原子力显微镜(AFM)对富含 HPO 的无定形磷酸钙(酸性 ACP)中 HAP 的原位结晶进行成像,展示了通过 SSEEL 基序的非磷酸化到磷酸化的转变,实现了相变过程的开/关切换。使用高分辨率透射电子显微镜(HRTEM),我们观察到酸性 ACP 相被磷酸化的 SSEEL 基序稳定,从而延迟了其向 HAP 的转变,而磷酸化的 SSEEL 基序则通过加速酸性 ACP 底物的溶解-再结晶来促进 HAP 的形成。动态力谱测量证明,非磷酸化的 SSEEL 通过形成分子肽-ACP 键,与酸性 ACP 底物具有更强的结合能,从而解释了更强的表面 Ca 离子络合对酸性 ACP 底物的增强溶解作用。我们的研究结果为 AMTN 中进化上保守的亚结构域的(非)磷酸化在控制生长牙釉质的相变和设计组织再生生物材料方面的开关作用提供了直接证据。