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CAREER: Modeling Stem Cell Decision-Making During Vascularized Bone Development

CAREER: Modeling Stem Cell Decision-Making During Vascularized Bone Development
职业:在血管化骨发育过程中模拟干细胞决策
批准号:
1350554
负责人:
Warren Grayson
金额:
$40.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-05-15 至 2019-04-30

项目摘要

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中文摘要
翻译
1350554格雷森,沃伦l .供应带血管的骨移植物用于治疗性再生大的,不愈合的骨缺损仍然是一个巨大的未满足的临床需求,每年影响超过一百万的美国人。组织工程解决方案具有显著推进现有治疗方法的潜力。本研究的数据将用于显著改进再生医学工程功能血管化骨移植物的方法。这个CAREER项目的成果将被整合到PI教授的教育课程中,为学生提供进行尖端研究所需的工具,并提高对细胞和发育生物学的基本理解,因为它与组织工程有关。教育利益将扩大到国际学生,他们将通过密集的暑期实习接触到世界一流的研究环境。该奖项还将通过建立一个变革性实习项目,惠及“处境危险”的少数族裔高中生。本CAREER提案的总体目标是对干细胞在组织形成过程中向特定谱系的决定如何影响工程组织构建体的结构和形态有一个基本的理解。在细胞培养模型的血管化骨形成过程中,间充质干细胞分化为周细胞(用于稳定新生血管系统)和成骨细胞(用于沉积矿物质)。在培养过程中,成为周细胞或成骨细胞的决定随时间和空间的变化而变化。这两种细胞类型对于适当的组织组织的形成和维持都是至关重要的,但目前尚不清楚血管周围微环境如何影响干细胞进入这两种特定表型的谱系规范。通过将组织工程细胞培养模型与分子生物学技术相结合,可以探索调节复杂组织形成的复杂细胞命运决定。这一提议验证了一个假设,即调节间充质干细胞的周细胞/成骨细胞谱系作为空间(接近血管结构)和时间的功能,是形成综合血管网络和矿化骨沉积物的潜在基础。主要有三个研究目标:(i)确定细胞组成和生长因子输送对组织工程血管化骨的结构和组织的影响。(ii)评价生长因子浓度和空间梯度对组织结构的影响。(iii)研究周细胞和成骨细胞可塑性在介导血管化骨发育中的作用。该职业奖由CBET生物技术、生物化学和生物质工程项目颁发,由材料研究部生物材料项目和数学科学部数学生物学项目共同资助。
英文摘要
1350554 Grayson, Warren L.The supply of vascularized bone grafts for the therapeutic regeneration of large, non-healing bone defects remains a huge unmet clinical need affecting more than one million people in the US every year. Tissue engineering solutions have the potential to significantly advance currently available treatment methods. The data from this study will be utilized to significantly improve approaches to engineer functional vascularized bone grafts for regenerative medicine. Results from this CAREER project will be integrated into the educational curricula taught by the PI, providing students with the tools needed to perform cutting-edge research and improve fundamental understanding of cell and developmental biology as it pertains to tissue engineering. The educational benefit will be extended to international students who will be exposed to world-class research environments through intensive summer internships. The award will also benefit 'at-risk' minority high school students through the establishment of a transformative internship program.The overall objective of this CAREER proposal is to develop a fundamental understanding of how the decision of stem cells to commit to a particular lineage during tissue formation impacts the structure and morphology of engineered tissue constructs. During vascularized bone formation in cell culture models, mesenchymal stem cells differentiate into pericytes (to stabilize the nascent vasculature) and osteoblasts (to deposit mineral). This decision to become pericyte or osteoblasts varies as a function of both space and time in culture. Both cell types are critical for the formation and maintenance of the appropriate tissue organization yet it remains unclear how the perivascular microenvironment impacts the lineage specification of stem cells into either of these particular phenotypes. By combining tissue engineering cell-culture models with molecular biology techniques it is possible to explore the intricate cell-fate decisions that regulate complex tissue formation. This proposal tests the hypothesis that regulating the pericyte/osteoblast lineage commitment of mesenchymal stem cells as a function of space (proximity to vascular structures) and time underlies the potential to form integrated vascular networks and mineralized bone deposits. There are three primary research objectives: (i) Determine the effect of cell composition and growth factor delivery on the structure and organization of tissue engineered vascularized bone. (ii) Evaluate effect of growth factor concentration and spatial gradients on tissue structure. (iii) Investigate the role of pericyte and osteoblast plasticity in mediating vascularized bone development.This CAREER award by the Biotechnology, Biochemical, and Biomass Engineering Program of the CBET Division is co-funded by the Biomaterials Program of the Division of Materials Research and by the Mathematical Biology Program of the Division of Mathematical Sciences.
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国内基金
海外基金
Galaxy Analytical Modeling Evolution (GAME) and cosmological hydrodynamic simulations.
  • 批准号:
  • 项目类别:
    省市级项目
  • 资助金额:
    10.0万元
  • 批准年份:
    2025
  • 负责人:
    Antonios Katsianis
  • 依托单位: