Molecular recognition at the protein-hydroxyapatite interface.

Patrick S Stayton, Gary P Drobny, Wendy J Shaw, Joanna R Long, Michele Gilbert
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引用次数: 117

Abstract

Proteins found in mineralized tissues act as nature's crystal engineers, where they play a key role in promoting or inhibiting the growth of minerals such as hydroxyapatite (bones/teeth) and calcium oxalate (kidney stones). Despite their importance in hard-tissue formation and remodeling, and in pathological processes such as stone formation and arterial calcification, there is little known of the protein structure-function relationships that govern hard-tissue engineering. Here we review early studies that have utilized solid-state NMR (ssNMR) techniques to provide in situ secondary-structure determination of statherin and statherin peptides on their biologically relevant hydroxyapatite (HAP) surfaces. In addition to direct structural study, molecular dynamics studies have provided considerable insight into the protein-binding footprint on hydroxyapatite. The molecular insight provided by these studies has also led to the design of biomimetic fusion peptides that utilize nature's crystal-recognition mechanism to display accessible and dynamic bioactive sequences from the HAP surface. These peptides selectively engage adhesion receptors and direct specific outside-in signaling pathway activation in osteoblast-like cells.

蛋白质-羟基磷灰石界面的分子识别。
在矿化组织中发现的蛋白质就像自然界的晶体工程师,它们在促进或抑制羟基磷灰石(骨骼/牙齿)和草酸钙(肾结石)等矿物质的生长方面起着关键作用。尽管它们在硬组织形成和重塑以及结石形成和动脉钙化等病理过程中很重要,但对控制硬组织工程的蛋白质结构-功能关系知之甚少。在此,我们回顾了利用固态核磁共振(ssNMR)技术在其生物相关的羟基磷灰石(HAP)表面上原位测定石蜡蛋白和石蜡蛋白肽二级结构的早期研究。除了直接的结构研究外,分子动力学研究为羟基磷灰石上的蛋白质结合足迹提供了相当大的见解。这些研究提供的分子洞察力也导致了仿生融合肽的设计,利用自然界的晶体识别机制,从HAP表面显示可接近的动态生物活性序列。这些多肽选择性地参与粘附受体,并在成骨细胞样细胞中直接特异性的外-内信号通路激活。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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