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Nanotechnology & human stem cells: Applications in cardiogenesis and neurogenesis.

机译:纳米技术与人类干细胞:在心脏发生和神经发生中的应用。

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摘要

Human stem cell research holds an unprecedented promise to revolutionize the way we approach medicine and healthcare in general, moving us from a position of mostly addressing the symptoms to a state where treatments can focus on removing the underlying causes of a condition. Stem cell research can shed light into normal developmental pathways, as we are beginning to replicate them in a petri dish and can also be used to model diseases and abnormal conditions. Direct applications can range from finding cures for single or multigene diseases to demonstrating that we can replace these genes with a normal copy. We can even begin to model lifelong conditions such as aging by iPSC technology by relying on fetal, young, adult, and centenarian populations to provide insights into the process. We have also begun to understand the microenvironment in which specific cell populations reside. Being able to replicate the chemical, physical mechanical, and spatial needs of those cells, research groups are successfully generating full organs using cadaver scaffolds of heart and kidney, and there is promising research to reach the same success with other organs, such as the liver, and pancreas. Advances in those areas open an enormous potential to study organs, organoids, organ valves, tubes or other functional elements such as beating cardiomyocytes in vitro.;There is also the need to evaluate the whole genome of induced and differentiated cells, with its myriad of interacting pathways. Bioinformatics can help our understanding of embryogenesis, organ differentiation and function. It can also help optimize our stem cell and bio-scaffold tools to advance closer to functional organs and tissues. Such a combination approach will also include pluripotency evaluation and multi-lineage differentiation, as well as platforms that may assist in cell therapies: 3D structures, micro-ribbons, directed patterning to name a few. There is now a clearer path forward with stem cell research than was ever before possible. My research has made fundamental contributions to the stem cell field by detailed analysis of uniformly generated 3D stem cell intermediates that are embryoid bodies. I have also contributed to the derivation of the first fully characterized ethnically diverse induced pluripotent stem cells from minority populations (ED-iPSCs), and advances in generating functional beating cardiomyocytes in vitro to aid cardiomyoplasty therapies. My work has also explored scaffolds for directing neural cell assembly or encouraging self-assembly for applications in CNS neurodegeneration, addiction, and spinal cord injury. These contributions to the field are outlined in my Specific Aims below and detailed in the chapters of my thesis.
机译:人类干细胞研究具有空前的希望,它将彻底改变我们对待医学和医疗保健的方式,使我们从主要解决症状的位置发展到可以集中精力消除潜在病因的治疗状态。随着我们开始在培养皿中复制干细胞,干细胞研究可以阐明正常的发育途径,也可以用于模拟疾病和异常状况。直接应用范围从寻找单基因或多基因疾病的治愈方法到证明我们可以用正常拷贝替代这些基因。我们甚至可以通过依靠胎儿,年轻人,成人和百岁老人的人口来提供对这一过程的见识,从而开始通过iPSC技术对诸如衰老之类的终生条件进行建模。我们也已经开始了解特定细胞种群所处的微环境。由于能够复制这些细胞的化学,物理机械和空间需求,研究小组正在使用心脏和肾脏的尸体支架成功生成完整的器官,并且有希望的研究能够与其他器官(例如肝脏)取得同样的成功和胰腺。这些领域的进展为研究器官,类器官,器官瓣膜,试管或其他功能性元素(例如体外跳动的心肌细胞)提供了巨大的潜力。还需要评估诱导和分化细胞的整个基因组,其无数的相互作用的途径。生物信息学可以帮助我们了解胚胎发生,器官分化和功能。它还可以帮助优化我们的干细胞和生物支架工具,使其更接近功能器官和组织。这种组合方法还将包括多能性评估和多谱系分化,以及可能有助于细胞疗法的平台:3D结构,微带,定向图案等。现在,干细胞研究比以往任何时候都更清晰。通过对均匀生成的3D干细胞中间体即胚状体的详细分析,我的研究对干细胞领域做出了根本性贡献。我还为从少数族群(ED-iPSC)衍生出第一个具有完全特征的种族多样化的诱导多能干细胞做出了贡献,并在体外产生功能性跳动心肌细胞以辅助心肌成形术的治疗方面取得了进展。我的工作还探索了用于指导神经细胞组装或鼓励自我组装的支架,以用于中枢神经系统神经变性,成瘾和脊髓损伤。这些对领域的贡献在下面的“具体目标”中进行了概述,并在论文的各章中进行了详细介绍。

著录项

  • 作者

    Tomov, Martin L.;

  • 作者单位

    State University of New York at Albany.;

  • 授予单位 State University of New York at Albany.;
  • 学科 Biomedical engineering.;Bioinformatics.;Nanotechnology.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 208 p.
  • 总页数 208
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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