釉质发育过程中釉原蛋白的翻译后加工及基质组装的变化
Posttranslational Amelogenin Processing and Changes in Matrix Assembly during Enamel Development.
作者信息
Pandya Mirali, Lin Tiffani, Li Leo, Allen Michael J, Jin Tianquan, Luan Xianghong, Diekwisch Thomas G H
机构信息
Texas A&M Center for Craniofacial Research and Diagnosis, Dallas, TX, United States.
UCLA School of Dentistry, Los Angeles, CA, United States.
出版信息
Front Physiol. 2017 Oct 17;8:790. doi: 10.3389/fphys.2017.00790. eCollection 2017.
The extracellular tooth enamel matrix is a unique, protein-rich environment that provides the structural basis for the growth of long and parallel oriented enamel crystals. Here we have conducted a series of and studies to characterize the changes in matrix shape and organization that take place during the transition from ameloblast intravesicular matrices to extracellular subunit compartments and pericrystalline sheath proteins, and correlated these changes with stages of amelogenin matrix protein posttranslational processing. Our transmission electron microscopic studies revealed a 2.5-fold difference in matrix subunit compartment dimensions between secretory vesicle and extracellular enamel protein matrix as well as conformational changes in matrix structure between vesicles, stippled materials, and pericrystalline matrix. Enamel crystal growth in organ culture demonstrated granular mineral deposits associated with the enamel matrix framework, dot-like mineral deposits along elongating initial enamel crystallites, and dramatic changes in enamel matrix configuration following the onset of enamel crystal formation. Atomic force micrographs provided evidence for the presence of both linear and hexagonal/ring-shaped full-length recombinant amelogenin protein assemblies on mica surfaces, while nickel-staining of the N-terminal amelogenin N92 His-tag revealed 20 nm diameter oval and globular amelogenin assemblies in N92 amelogenin matrices. Western blot analysis comparing loosely bound and mineral-associated protein fractions of developing porcine enamel organs, superficial and deep enamel layers demonstrated (i) a single, full-length amelogenin band in the enamel organ followed by 3 kDa cleavage upon entry into the enamel layer, (ii) a close association of 8-16 kDa C-terminal amelogenin cleavage products with the growing enamel apatite crystal surface, and (iii) a remaining pool of N-terminal amelogenin fragments loosely retained between the crystalline phases of the deep enamel layer. Together, our data establish a temporo-spatial correlation between amelogenin protein processing and the changes in enamel matrix configuration that take place during the transition from intracellular vesicle compartments to extracellular matrix assemblies and the formation of protein coats along elongating apatite crystal surfaces. In conclusion, our study suggests that enzymatic cleavage of the amelogenin enamel matrix protein plays a key role in the patterning of the organic matrix framework as it affects enamel apatite crystal growth and habit.
细胞外牙釉质基质是一种独特的、富含蛋白质的环境,为长而平行排列的牙釉质晶体生长提供结构基础。在此,我们进行了一系列[具体研究内容缺失]研究,以表征从成釉细胞内泡状基质向细胞外亚基隔室和晶周鞘蛋白转变过程中基质形状和组织的变化,并将这些变化与釉原蛋白基质蛋白翻译后加工阶段相关联。我们的透射电子显微镜研究显示,分泌小泡与细胞外牙釉质蛋白基质之间的基质亚基隔室尺寸存在2.5倍差异,以及小泡、点状物质和晶周基质之间的基质结构构象变化。器官培养中的牙釉质晶体生长显示,与牙釉质基质框架相关的颗粒状矿物质沉积、沿伸长的初始牙釉质微晶的点状矿物质沉积,以及牙釉质晶体形成开始后牙釉质基质构型的显著变化。原子力显微镜图像为云母表面存在线性和六边形/环形全长重组釉原蛋白蛋白组装体提供了证据,而N端釉原蛋白N92组氨酸标签的镍染色显示N92釉原蛋白基质中有直径20 nm的椭圆形和球形釉原蛋白组装体。蛋白质印迹分析比较发育中的猪牙釉质器官、牙釉质表层和深层的松散结合和与矿物质相关的蛋白质部分,结果表明:(i)牙釉质器官中有一条单一的全长釉原蛋白条带,进入牙釉质层后有3 kDa的切割;(ii)8 - 16 kDa的C端釉原蛋白切割产物与生长中的牙釉质磷灰石晶体表面密切相关;(iii)在深层牙釉质层的晶相之间松散保留着剩余的N端釉原蛋白片段池。总之,我们的数据建立了釉原蛋白加工与牙釉质基质构型变化之间的时空相关性,这些变化发生在从细胞内泡状隔室向细胞外基质组装转变以及沿伸长的磷灰石晶体表面形成蛋白包被的过程中。总之,我们的研究表明,釉原蛋白牙釉质基质蛋白的酶促切割在有机基质框架的图案化中起关键作用,因为它影响牙釉质磷灰石晶体的生长和习性。