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Advanced manufacturing of a bioprosthetic collagen heart valve

Advanced manufacturing of a bioprosthetic collagen heart valve
生物假体胶原蛋白心脏瓣膜的先进制造
批准号:
10258425
负责人:
Adam Walter Feinberg
金额:
$25.54万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2021
资助国家:
美国
项目状态:
已结题
起止时间:
2021-04-01 至 2022-03-31

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中文摘要
翻译
心血管疾病是美国、欧洲和日本的主要死亡原因,由广泛的 一系列的病理变化。最常见的手术之一是心脏瓣膜置换术,当 瓣膜因返流而失效或在心动周期内不能完全打开。原因包括先天性 缺陷、钙化和脱垂,但无论来源如何,修复瓣膜和外科手术的选择有限。 治疗主要集中在替换上。据估计,每年有超过15万名患者 接受心脏瓣膜置换手术,平均每次手术费用约为200,000美元,相当于花费300亿美元 医疗保健系统。心脏瓣膜市场在过去十年中持续增长,原因是 与心脏瓣膜置入术相关的外科和微创技术。然而,当前的阀门 在适合性、生物学性能、耐用性和手术程序方面代表了一些折衷,具有独特的 与当前机械和生物瓣膜相关的优点和缺点。在这 我们的目标是利用先进的制造方法开发一种新的生物人工心脏瓣膜 它具有机械瓣膜的耐用性,生物瓣膜的非凝血性,以及 微创经导管分娩,以及定制适合任何患者的解剖结构的能力。要做到这一点 FluidForm,Inc.将与卡内基梅隆大学合作开发一种新的自由形式可逆嵌入 悬浮水凝胶(新鲜)3D打印心脏瓣膜使用I型胶原重建板层和 天然瓣膜中各向异性细胞外基质(ECM)结构。我们的初步数据显示,新鲜的3D 印刷术可以用来制造完全由胶原蛋白制成的功能性三叶心脏瓣膜,并可以支持 短时间内的生理流速和压力。在这里,我们将通过以下方式提高阀门性能 通过两项研究重建天然瓣叶的胶原纤维排列和力学性能 目标。首先,我们将演示I型胶原的新鲜3D打印可以重现胶原纤维 平均取向相差10%的天然主动脉瓣叶不同层间的构筑 角度。其次,我们将证明新鲜的3D打印胶原蛋白瓣膜可以被设计成具有放射状 周向弹性模数、非线性应力-应变响应、蠕变和疲劳寿命在75%以内 主动脉瓣的小叶。第一阶段概念验证的成功将为第二阶段SBIR项目提供坚实的基础 这将在模拟体外血流系统中验证完整的新鲜打印的生物假体主动脉瓣 在临床前绵羊模型中评估血液相容性和生物学的人体压力和流速 回应。
英文摘要
Cardiovascular disease is a leading cause of death in the US, Europe and Japan and is comprised of a wide range of pathologies. One of the most common procedures is heart valve replacement and is required when the valve fails due to regurgitation or is unable to open fully during the cardiac cycle. Causes include congenital defects, calcification and prolapse, but regardless of origin there are limited options to repair valves and surgical treatments are focused primarily on replacement. It is estimated that each year more than 150,000 patients receive heart valve replacements at a mean cost of ~$200,000 per procedure, corresponding to >$30B cost to the healthcare system. The heart valve market has continued to grow over the past decade due to advances in surgical and minimally-invasive technologies associated with heart valve placement. However, current valves represent some compromise in fit, biological performance, durability and surgical procedure, with unique advantages and disadvantages associated with current mechanical and bioprosthetic heart valves. In this proposal our objective is to develop a new bioprosthetic heart valve using advanced manufacturing approaches that has the durability of mechanical valves, the non-thrombogenicity of biologic valves, the soft deformability for minimally-invasive transcatheter delivery, and the ability to custom fit the anatomy of any patient. To do this FluidForm, Inc in collaboration with Carnegie Mellon University will develop a new freeform reversible embedding of suspended hydrogels (FRESH) 3D printed heart valve using collagen type I that recreates the laminar and anisotropic extracellular matrix (ECM) architecture in native valves. Our preliminary data shows that FRESH 3D printing can be used to manufacture functional tri-leaflet heart valves entirely from collagen and can support physiologic flow rates and pressure for short periods of time. Here we will improve valve performance by recreating the collagen fiber arrangement and mechanical properties in native valve leaflets via two research aims. First, we will demonstrate that FRESH 3D printing of collagen type I can recreate the collagen fiber architecture in the different layers of the native aortic valve leaflets with <10% difference in mean orientation angle. Second, we will prove that FRESH 3D printed collagen valve leaflets can be engineered to have radial and circumferential elastic modulus, non-linear stress-strain response, creep, and fatigue life within 75% of native aortic valve leaflets. Phase I proof-of-concept success will provide a strong foundation for a Phase II SBIR project that will validate the complete FRESH printed, bioprosthetic aortic valve in an in vitro flow system that simulates human pressure and flow rate and in a pre-clinical ovine model to assess hemocompatibility and biological response.
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Bioprinted Human Ventricles for In Vitro Modeling of Cardiac Arrhythmias
  • 批准号:
    10325795
  • 项目类别:
  • 资助金额:
    $22.86万
  • 财政年份:
    2021
  • 负责人:
    Adam Walter Feinberg
  • 依托单位:
ECM Shrink Wrapped Human Cardiomyocytes and Endothelial Cells to Accelerate Myocardial Regeneration
  • 批准号:
    9924688
  • 项目类别:
  • 资助金额:
    $17.67万
  • 财政年份:
    2019
  • 负责人:
    Adam Walter Feinberg
  • 依托单位:
Human Myocardium Engineered Using Developmentally-Inspired Protein Scaffolds
  • 批准号:
    8355924
  • 项目类别:
  • 资助金额:
    $215.27万
  • 财政年份:
    2012
  • 负责人:
    Adam Walter Feinberg
  • 依托单位:
海外基金