Bioactive Materials for Stem Cell Control
Bioactive Materials for Stem Cell Control
批准号:
7387048
负责人:
Ravi S. Kane
金额:
$25.0万
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:
2008-09-05 至 2010-08-31
关键词:
AddressBehaviorBiocompatible MaterialsBiologicalBiologyBiomedical EngineeringBiomimeticsCell Differentiation processCell ProliferationCell physiologyCellular biologyComplexDevelopmentDevelopmental Cell BiologyDimensionsEngineeringErinaceidaeHybridsLigandsLiposomesMediatingMedicineMitogensMolecular BiologyNatural regenerationNeuronal DifferentiationPersonal SatisfactionRoleSignal PathwaySignal TransductionStem cellsStructure-Activity RelationshipSurfaceSynthesis ChemistrySystemTissue Engineeringcell behaviordesigndosagefluidityin vivonerve stem cellnotch proteinnovelreceptorscaffoldstem cell fate
中文摘要
描述(由申请人提供):干细胞在体内生活在一个复杂的微环境中,这些微环境中存在许多调节其行为和功能的信号因子,了解这些因子如何影响干细胞的命运是细胞和发育生物学的主要挑战。因此,设计控制细胞行为的策略对于从发育到成年的干细胞生物学基础研究以及干细胞在组织工程和再生中的应用都是至关重要的。这项提议的目的是设计新的生物材料,调节和控制干细胞的行为。具体来说,这些定义明确的仿生配体和表面将控制调节神经干细胞(NSCs)分化或增殖的信号通路的激活。我们选择NSCs作为一种有效的细胞系统来研究干细胞控制的基本生物学机制,探索其生物医学潜力,并评估混合生物合成材料在培养中控制干细胞多种功能的前景。NSC有丝分裂原Sonic hedgehog和Notch配体Delta将被移植到可溶性脂质体和合成表面,以调节细胞的增殖和分化。本提案将探讨这些合成细胞效应物的构效关系。效应物的效价、尺寸、流动性和剂量对受体聚集、信号转导、细胞增殖和细胞分化的影响将被研究。我们的具体目标是:1;目的:研究显示Sonic hedgehog基因或Delta基因的可溶脂质体是否能控制NSC功能。2. 分析Sonic hedgehog和Delta功能化仿生表面是否能有效调节NSC行为。
英文摘要
DESCRIPTION (provided by applicant): Stem cells in vivo reside in a complex microenvironment that presents them with numerous signaling factors that regulate their behavior and functions, and understanding how these factors influence stem cell fate is a major challenge of cell and developmental biology. Designing strategies to control cell behavior is therefore critical for both fundamental studies of stem cell biology from development through adulthood, as well as for applications of stem cells in tissue engineering and regeneration. The objective of this proposal is to design novel biomaterials that modulate and control stem cell behavior. Specifically, these well-defined, biomimetic ligands and surfaces will control the activation of signaling pathways that regulate the differentiation or proliferation of neural stem cells (NSCs). We have chosen NSCs as an effective cellular system to investigate the basic biological mechanisms of stem cell control, to explore their biomedical potential, and to evaluate the promise of hybrid biological-synthetic materials for controlling the multitude functions of a stem cell in culture. The NSC mitogen Sonic hedgehog and the Notch ligand Delta will be grafted onto both soluble liposomes and synthetic surfaces to modulate cell proliferation and differentiation. This proposal will explore the structure-activity relationships of these synthetic cellular effectors. The effects of effector valency, dimensions, fluidity, and dosage on receptor clustering, signal transduction, cell proliferation, and cell differentiation will be studied. Our Specific Aims are: 1. To determine whether synthetic soluble liposome constructs displaying Sonic hedgehog or Delta can control NSC function. 2. To analyze whether biomimetic surfaces functionalized with Sonic hedgehog or Delta can effectively regulate NSC behavior.
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