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3D combinatorial microenvironments for effective cell based therapy

3D combinatorial microenvironments for effective cell based therapy
用于有效细胞治疗的 3D 组合微环境
批准号:
8281574
负责人:
Ali Khademhosseini
金额:
$67.82万
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-08-01 至 2014-04-30

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项目成果

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中文摘要
翻译
描述(由申请人提供):心力衰竭是唯一一种发病率和发病率持续上升的心血管疾病,成为患者和医疗保健系统的巨大负担。目前治疗心力衰竭的方法一直集中在通过靶向相关的神经体液因素来减缓疾病的进展。在成功改善预后的同时,发病率和死亡率仍居高不下。由于功能性心肌细胞的丧失对心力衰竭的发展和进展有重要作用,针对丢失的心肌细胞再生的治疗干预措施保留了巨大的医学前景。为了达到这一目标,近年来,基于细胞的心脏再生治疗引起了人们的极大兴趣,这些细胞类型包括骨骼肌成肌细胞、骨髓源性干细胞和内源性心脏干细胞/祖细胞。然而,到目前为止,真正的心脏再生尚未实现,这在很大程度上是由于植入时细胞的显著损失,以及在敌对和病变的心肌中存活的细胞无法分化为所需的细胞类型。因此,最大化细胞植入、存活和分化仍然是治疗性心脏再生的最大障碍。我们认为,移植细胞的存活能力下降可能是由于在局部微环境或微环境中未能与周围的细胞外基质(ECM)网络建立联系。因此,我们假设,在移植的干细胞和细胞外基质之间建立3D形式的联系,以模拟滋养细胞的生态位,不仅将显著改善植入,而且还将促进功能分化。在这里,我们的目标是使用一种利用组合方法开发的系统来系统地操纵包裹移植干细胞的局部微环境,目标是优化瞬时细胞生态位,以促进分化,保护干细胞,并在植入期间和之后增强植入。实现真正的心脏再生是一个复杂而艰巨的目标,任何一个实验室都无法单独完成。因此,我们组建了一个研究团队,利用干细胞生物学、心肌生物学和生理学、生物材料科学、生物工程和分子成像等不同但互补的专业知识,设计了一个综合方案。我们的研究团队拥有长期和富有成效的记录,并将共同努力,通过最大化干细胞/祖细胞植入、存活和分化来实现治疗性心脏再生的最终目标。 与公共健康相关:心血管疾病仍然是发达国家最大的单一死亡原因,在美国夺走的生命比紧随其后的四大原因加起来还要多。在心血管疾病中,心力衰竭的发病率继续以惊人的速度上升。功能性心肌细胞的丧失是心力衰竭发生和发展的关键。因此,以修复和/或再生丢失的心肌细胞为目标的医疗干预具有巨大的希望。为了实现这一目标,近年来,基于细胞的心脏再生疗法引起了人们的极大兴趣。然而,到目前为止,真正的心脏再生还没有实现,这主要是由于植入时细胞的大量损失,以及存活的细胞无法在恶劣的和有疾病的微环境中分化为所需的细胞类型。我们建议的主要目标是最大化细胞植入、存活和分化。从我们的建议中获得的数据将对实现治疗性心脏再生的最终目标做出重大贡献。
英文摘要
DESCRIPTION (provided by applicant): Heart failure is the only cardiovascular disease in which prevalence and incidence continue to rise, becoming a tremendous burden for both patients and the healthcare system. The current therapy for heart failure has been focused on the attenuation of the progression of the disease by targeting the neurohumoral factors involved. While successfully improving the prognosis, the morbidity and mortality remains high. Because the loss of functional cardiac muscle cells contributes significantly to the development and progression of heart failure, therapeutic interventions targeted at the regeneration of lost cardiac muscle cells retain enormous medical promise. Towards this goal, cell-based therapy for cardiac regeneration employing various cell types, ranging from skeletal myoblasts to bone marrow derived stem cells to endogenous cardiac stem/progenitor cells, has sparked tremendous interest in recent years. To date, however, true cardiac regeneration has not been achieved, owing largely to the significant loss of cells at the time of implantation and the inability of surviving cells to differentiate into desired cell types in a hostile and diseased myocardium. Maximizing cell engraftment, survival, and differentiation, therefore, remains the greatest hurdle towards therapeutic cardiac regeneration. It is suggested that the impaired survival of implanted cells can be attributed to failure of establishment of contact with the surrounding extracellular matrix (ECM) network in the local microenvironment or niche. Therefore, we hypothesize that establishing contact between implanted stem cells and ECM in a 3D format to mimic a nurturing cellular niche will not only significantly improve engraftment, but also promote functional differentiation. Herein, we aim to employ a system developed using combinatorial approaches to systematically manipulate the local microenvironment encapsulating implanted stem cells, with a goal towards optimizing a transient cellular niche to promote differentiation, to protect stem cells and to augment engraftment during and following implantation. Achieving true cardiac regeneration is a complex and over-arcing goal that any single laboratory would not be able to tackle alone. Therefore, we have assembled a team of investigators and designed an integrated proposal taking advantage of the diverse, yet complementary, expertise from stem cell biology, myocardial biology and physiology, biomaterial science, bioengineering to molecular imaging. Our investigator team has a longstanding and productive track record and will work together to achieve the ultimate goal of therapeutic cardiac regeneration by maximizing stem/progenitor cells engraftment, survival, and differentiation. PUBLIC HEALTH RELEVANCE: Cardiovascular disease remains the single greatest cause of death in developed countries, claiming more lives in the US than the four next leading causes combined. Among cardiovascular disease, the incidence of heart failure continues to rise at a staggering rate. The loss of functional cardiac cells is essential to the development and progression of heart failure. Medical interventions targeted at the repair and/or regeneration of lost cardiac cells, therefore, hold tremendous promise. Towards this goal, cell-based therapy for cardiac regeneration has sparked tremendous interest in recent years. To date, however, true cardiac regeneration has not been achieved, owing largely to the significant loss of cells at the time of implantation and the inability of surviving cells to differentiate into desired cell types in a hostile and diseased microenvironment. The major goal of our proposal is to maximize cell engraftment, survival, and differentiation. The data obtained from our proposal will contribute significantly towards achieving an ultimate goal of therapeutic cardiac regeneration.
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海外基金