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体外和体内发现釉原蛋白纳米带的简要历史。

A Brief History of the Discovery of Amelogenin Nanoribbons In Vitro and In Vivo.

机构信息

Department of Preventative and Restorative Dental Sciences, School of Dentistry, University of California, San Francisco, CA, USA.

Division of Pure and Applied Biochemistry, Center of Applied Life Science, Lund University, Lund, Sweden.

出版信息

J Dent Res. 2021 Dec;100(13):1429-1433. doi: 10.1177/00220345211043463. Epub 2021 Oct 6.

Abstract

Without evidence for an organic framework, biological and biochemical processes observed during amelogenesis provided limited information on how extracellular matrix proteins control the development of the complex fibrous architecture of human enamel. Over a decade ago, amelogenin nanoribbons were first observed from recombinant proteins during in vitro mineralization experiments in our laboratory. In enamel from mice lacking the enzyme kallikrein 4 (KLK4), we later uncovered ribbon-like protein structures that matched the morphology, width, and thickness of the nanoribbons assembled by recombinant proteins. Interestingly, similar structures had already been described since the 1960s, when enamel sections from various mammals were demineralized and stained for transmission electron microscopy analysis. However, at that time, researchers were not aware of the ability of amelogenin to form nanoribbons and instead associated the filamentous nanostructures with possible imprints of mineral ribbons in the gel-like matrix of developing enamel. Further evidence for the significance of amelogenin nanoribbons for enamel development was stipulated when recent mineralization experiments succeeded in templating and orienting the growth of apatite ribbons along the protein nanoribbon framework. This article provides a brief historical review of the discovery of amelogenin nanoribbons in our laboratory in the context of reports by others on similar structures in the developing enamel matrix.

摘要

在没有有机框架证据的情况下,在釉质发生过程中观察到的生物和生化过程提供的信息有限,无法说明细胞外基质蛋白如何控制人类釉质复杂纤维结构的发育。十多年前,我们实验室在体外矿化实验中首次从重组蛋白中观察到釉原蛋白纳米带。后来,在缺乏激肽释放酶 4(KLK4)的小鼠的釉质中,我们发现了与重组蛋白组装的纳米带具有相同形态、宽度和厚度的带状蛋白结构。有趣的是,自 20 世纪 60 年代以来,类似的结构已经被描述过,当时从各种哺乳动物的釉质切片中脱矿并进行透射电子显微镜分析。然而,当时研究人员并不知道釉原蛋白形成纳米带的能力,而是将丝状纳米结构与发育中的釉质凝胶样基质中可能存在的矿物质带的印记联系起来。当最近的矿化实验成功地在蛋白纳米带框架上对磷灰石带进行模板化和定向生长时,釉原蛋白纳米带对釉质发育的重要性得到了进一步证实。本文简要回顾了我们实验室在其他研究人员关于发育中釉质基质中类似结构的报告背景下发现釉原蛋白纳米带的情况。

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Mechanisms of Enamel Mineralization Guided by Amelogenin Nanoribbons.牙釉蛋白纳米带引导的牙釉质矿化机制。
J Dent Res. 2021 Dec;100(13):1434-1443. doi: 10.1177/00220345211012925. Epub 2021 May 19.
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Protein nanoribbons template enamel mineralization.蛋白质纳米带模板牙釉质矿化。
Proc Natl Acad Sci U S A. 2020 Aug 11;117(32):19201-19208. doi: 10.1073/pnas.2007838117. Epub 2020 Jul 31.

本文引用的文献

1
Mechanisms of Enamel Mineralization Guided by Amelogenin Nanoribbons.牙釉蛋白纳米带引导的牙釉质矿化机制。
J Dent Res. 2021 Dec;100(13):1434-1443. doi: 10.1177/00220345211012925. Epub 2021 May 19.
3
Protein nanoribbons template enamel mineralization.蛋白质纳米带模板牙釉质矿化。
Proc Natl Acad Sci U S A. 2020 Aug 11;117(32):19201-19208. doi: 10.1073/pnas.2007838117. Epub 2020 Jul 31.
7
Materials engineering by ameloblasts.成釉细胞的材料工程
J Dent Res. 2015 Jun;94(6):759-67. doi: 10.1177/0022034515577963. Epub 2015 Mar 23.

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