DESIGNED SCAFFOLD ARCHITECTURE AFFECTS BONE REGENERATION
DESIGNED SCAFFOLD ARCHITECTURE AFFECTS BONE REGENERATION
批准号:
6516579
负责人:
Scott J Hollister
金额:
$43.68万
依托单位国家:
美国
项目类别:
财政年份:
2000
资助国家:
美国
项目状态:
已结题
起止时间:
2000-09-15 至 2004-06-30
中文摘要
描述:(逐字)许多研究表明,生物材料
支架结构可以显著影响组织的结果,
通过影响血管化、组织向内生长和
最终组织结构功能。精确设计和
制造生物材料支架将增强对支架如何
影响组织再生并导致优化生物材料支架,
组织工程学
我们最近开发了基于图像的计算技术,
制备具有特定复合物的羟基磷灰石陶瓷支架,
内部微观结构和外部形状。初步研究是执行一项
对脚手架设计如何影响
小型猪下颌骨的血管化、组织长入和组织功能
模型本研究报告有三个具体目标:
具体目标1:验证支架结构影响早期
血管化和组织基质沉积
具体目标2:验证支架结构对骨的长期影响
结构和机械刚度
具体目标3:验证早期血管化和矿化导致
长期骨形成和足够的机械刚度
三种支架设计,正交圆形支柱,正交圆形支柱,
孔,和一个正交三角形孔,将在三个不同的构造
羟基磷灰石(HA)直径(3种设计x 3种扰动= 9种不同的
支架)。这些支架将被用来测试我们的具体目标,
小型猪下颌骨模型。将在第2周和第6周处死动物以检查
内部支架结构对细胞短期影响
分化和组织沉积。动物将在18和52时处死
检查长期的内部支架结构对组织的影响
结构和机械功能。这项研究的结果将有助于我们
通过计算设计优化生物材料支架性能,
通过组织工程治疗再生组织结构和功能。
英文摘要
DESCRIPTION: (verbatim) Numerous studies have indicated that the biomaterial
scaffold architecture can significantly influence the outcome of tissue
engineering treatments through effects on vascularization, tissue ingrowth and
final tissue structure function. The ability to precisely design and
manufacture biomaterial scaffolds would enhance understanding of how scaffolds
influence tissue regeneration and lead to optimized biomaterial scaffolds for
tissue engineering.
We have recently developed image based computational techniques for designing
and manufacturing hydroxyapatite ceramic scaffolds with specific complex
internal microstructure and external shape. A preliminary study is to perform a
more rigorous investigation into how scaffold design influences
vascularization, tissue ingrowth, and tissue function in a minipig mandible
model. The present study has three specific aims:
Specific Aim 1: Verify that scaffold architecture influences early
vascularization and tissue matrix deposition
Specific Aim 2: Verify that scaffold architecture influences long-term bone
structure and mechanical stiffness
Specific Aim 3: Verify that early vascularization and mineralization lead to
long-term bone formation and sufficient mechanical stiffness
Three scaffold designs, an orthogonal circular strut, an orthogonal circular
pore, and an orthogonal triangular pore, will be constructed at three different
diameters from hydroxyapatite (HA) (3 designs x 3 perturbations = 9 different
scaffolds). These scaffolds will be used to test our specific aims in the
minipig mandible model. Animals will be sacrificed at 2 and 6 weeks to examine
the short-term effects of internal scaffold architecture on cell
differentiation and tissue deposition. Animals will be sacrificed at 18 and 52
weeks to examine long-term internal scaffold architecture influence on tissue
structure and mechanical function. Results from this study will assist us in
optimizing biomaterial scaffold performance via computational design to enhance
regenerate tissue structure and function via tissue engineering treatments.
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海外基金