课题基金 / 基金详情

Heparan Sulfate in Skeletal Development and Diseases

Heparan Sulfate in Skeletal Development and Diseases
硫酸乙酰肝素在骨骼发育和疾病中的作用
批准号:
9049450
负责人:
YU YAMAGUCHI
金额:
$42.9万
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-07-07 至 2019-03-31

项目摘要

项目成果

YU YAMAGUCHI的其他基金

相似基金

相关文献

中文摘要
翻译
描述(由申请人提供):多发性遗传性外生骨疣(MHE)是一种由EXT 1或EXT 2杂合突变引起的常染色体显性骨病,EXT 1或EXT 2共同编码硫酸乙酰肝素生物合成所必需的糖基转移酶。MHE是最常见的遗传性骨发育不良,被认为影响了数千名美国人。在目前的资助周期中,我们阐明了一个长期存在的关于MHE遗传机制的难题。具体而言,我们证明了通过随机条件性敲除模型的杂合性丢失导致基本上所有人类MHE表型的重演。基于这一成果和这些研究揭示的新问题,我们将进一步探索这种使人衰弱的疾病,目的是了解其完整的致病机制,并确定新的生物标志物和潜在的治疗靶点。我们提出以下目标。1.确定骨软骨瘤的起源:虽然我们的研究阐明了骨软骨瘤发生的遗传机制,但少数Ext1无效细胞发育成骨软骨瘤的细胞机制仍然几乎完全难以捉摸。其中一个关键的问题是骨软骨瘤是否起源于生长板软骨细胞或软骨膜。我们将进行软骨膜特异性Ext1敲除和缺乏Ext1的软骨膜祖细胞的分析来解决这个问题。2.确定对骨软骨瘤发生至关重要的受影响的信号通路:另一个关键问题是直接负责骨软骨瘤发生的缺陷信号通路是什么。基于强有力的初步证据,我们将集中在BMP途径,并确定是否异常的BMP信号转导是疾病的主要分子罪魁祸首。3.骨软骨瘤转录组的全基因组分析:我们将进行最先进的生物信息学研究,以确定定义骨软骨瘤的转录组变化。通过对RNA微阵列数据集应用加权基因共表达网络分析,我们将识别区分骨软骨瘤与正常软骨细胞的分子特征和潜在的遗传生物标志物,以预测MHE患者骨软骨瘤的未来严重程度和复发。
英文摘要
DESCRIPTION (provided by applicant): Multiple hereditary exostoses (MHE) is an autosomal dominant bone disorder caused by heterozygous mutations of EXT1 or EXT2, which jointly encode a glycosyltransferase essential for heparan sulfate biosynthesis. MHE is the most common genetic bone dysplasia and thought to affect several thousand Americans. During the current funding cycle, we elucidated a long- standing puzzle concerning the genetic mechanism of MHE. Specifically, we demonstrated that loss of heterozygosity modeled via stochastic conditional knockout results in the recapitulation of essentially all human MHE phenotypes. Based on this achievement and novel questions revealed by these studies, we will explore further this debilitating disease, with goals of understanding its complete pathogenic mechanism and identifying novel biomarkers and potential therapeutic targets. We propose the following aims. 1. Determine the origin of osteochondroma: While our studies elucidated the genetic mechanisms of osteochondromatogenesis, the cellular mechanisms by which a small number of Ext1 null cells develop into osteochondromas remains almost entirely elusive. One of the critical issues is whether osteochondromas are originated either from growth plate chondrocytes or from the perichondrium. We will perform perichondrium-specific Ext1 knockout and the analysis of perichondrial progenitor cells lacking Ext1 to address this issue. 2. Determine the affected signaling pathway that is critical for osteochondromatogenesis: Another critical issue is what is the defective signaling pathway directly responsible for osteochondromatogenesis. Based on strong preliminary evidence, we will focus on the BMP pathway and determine whether aberrant BMP signaling is the main molecular culprit underlying the disease. 3. Genome-wide analysis of osteochondroma transcriptome: We will perform a state-of-the-art bioinformatics study to determine transcriptomic changes that define osteochondroma. By applying the weighted gene coexpression network analysis on RNA microarray data sets, we will identify molecular signatures that distinguish osteochondroma from normal chondrocytes and potential genetic biomarkers to predict the future severity and recurrence of osteochondroma in MHE patients.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
Microglial heparan sulfate in the modulation of APOE function and neurodegeneration
Microglial heparan sulfate in the modulation of APOE function and neurodegeneration
Heparan sulfate in neurophysiology and neurological disorders
Heparan sulfate in neurophysiology and neurological disorders
海外基金