Characterization of DMP1 A Dentin Phosphoprotein
Characterization of DMP1 A Dentin Phosphoprotein
批准号:
7066062
负责人:
Anne George
金额:
$29.25万
依托单位国家:
美国
项目类别:
财政年份:
1996
资助国家:
美国
项目状态:
已结题
起止时间:
1996-06-01 至 2008-05-31
关键词:
DNA footprintingcell differentiationdentindentinogenesisextracellular matrix proteinsgel mobility shift assaygene expressiongenetic promoter elementglutathione transferasehydroxyapatitesimmunocytochemistrylaboratory mousemesenchymemolecular sitenucleic acid sequenceodontoblastsphosphoproteinsphosphorylationprotein localizationprotein structure functionregulatory genetissue /cell culture
中文摘要
描述(由申请人提供):在骨和牙本质生物矿化中,沉积的羟基磷灰石晶体的性质受到胶原模板以及非胶原酸性蛋白的精确控制。这些酸性蛋白质被认为在从头矿物成核、调节羟基磷灰石晶体大小及其形态中起着关键作用。酸性基质蛋白以有序的方式结合到羟基磷灰石的晶格中,从而使牙本质成为具有高拉伸强度的复合材料。胶原基质提供了矿物晶体形成的空间和环境。因此,牙本质形成是一个动态过程,涉及细胞和细胞外事件的级联反应。成牙本质细胞的分化和矿化牙本质基质的形成是细胞-细胞、细胞-基质、基质-基质等相互作用的结果。矿化过程中的问题在许多牙科病理中是明显的。牙科中成功的牙本质再生和修复依赖于将成牙本质细胞前体细胞募集到该部位的能力,随后是这些细胞的成熟过程、基质沉积和最终有机基质的矿化。牙本质基质蛋白1(dentin matrix protein 1,DMP1)是我们首先从矿化牙本质基质中克隆的一种细胞外基质蛋白。DMP1通常是具有高含量的天冬氨酸、谷氨酸和磷酸丝氨酸残基的聚阴离子,使其成为高度适合于钙结合的蛋白质。很少有人知道负责启动和调节这种矿化基质的机制。这项研究的目的是从DMP1的识别和定位到研究该蛋白表达的调控,以及其在矿化过程中的潜在参与。我们现在提出以下具体目标:(1)表征DMP1启动子并鉴定其上游3kb序列中参与细胞和组织特异性表达的特异性位点:(2)鉴定DMP1组成性过表达在胚胎间充质细胞向成牙本质细胞样细胞分化过程中的机制;(3)探讨DMP1作为羟基磷灰石成核剂的作用;(4)研究DMP1蛋白在牙本质基质中的分布,探讨DMP1在牙本质矿化过程中的作用。 了解矿化过程对于生物医学和牙科领域是重要的,因为正常生物矿化的破坏可以导致病理性矿化或脱矿过程。长期目标是了解DMP1在牙本质矿化中的调控机制。
英文摘要
DESCRIPTION (provided by applicant): In bone and dentin biomineralization, the nature of the hydroxyapatite crystals deposited are under the precise control of the collagen template as well as the noncollagenous acidic proteins. These acidic proteins have been postulated to play a critical role in de novo mineral nucleation, regulating hydroxyapatite crystal size as well as its morphology. Acidic matrix proteins are incorporated into the crystal lattice of hydroxyapatite in a well ordered manner, thus making dentin a composite with high tensile strength. The collagen matrix provides the space and milieu in which the mineral crystals are initiated. Therefore, dentinogenesis is a dynamic process that involves a cascade of cellular and extracellular events. Specific interactive events like cell-cell, cell-matrix and matrix-matrix are responsible for odontoblast differentiation and the assembly of the mineralized dentin matrix. Problems in the mineralization process are evident in a number of dental pathologies. Successful dentin regeneration and repair in dentistry relies on the ability to recruit odontoblast precursors to the site followed by maturation process of these cells, matrix deposition and ultimately mineralization of the organic matrix. Dentin matrix protein 1 (DMP1) is an extracellular matrix protein that was first cloned by us from the mineralized dentin matrix. DMP1 is typically polyanionic having a high content of aspartic, glutamic and phosphoserine residues making it a protein highly suitable for calcium binding. Very little is known about the mechanism responsible for initiation and regulation of this mineralized matrix. The objective of this proposed investigation is to move forward from the identification and localization of the DMP1 to the study of the regulation of the expression of the protein, and to its potential involvement in the mineralization process. We now propose the following specific aims: (1) To characterize the DMP1 promoter and to identify specific sites within the 3 kb upstream sequence that are involved in cell and tissue specific expression; (2) To identify the mechanisms involved during the differentiation of embryonic mesenchymal cells to odontoblast-like cells by constitutive overexpression of DMP1; (3) To demonstrate the role of DMP1 as a potential nucleator for hydroxyapatite formation; (4) To study the distribution of DMP1 protein in the dentin matrix and thus determine the functional role of DMP1 during the process of mineralization. Understanding the mineralization process is important to the biomedical and dentistry fields because the disruption of normal biomineralization can lead to pathological mineralization or demineralization process. The long-term goal is to understand the regulatory mechanism of DMP1 in dentin mineralization.
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