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Somatic Stem Cells as Vectors to Deliver Biologically Active Molecules to the Inn

Somatic Stem Cells as Vectors to Deliver Biologically Active Molecules to the Inn
体干细胞作为载体将生物活性分子输送到旅馆
批准号:
7831780
负责人:
Eri Hashino
金额:
$41.54万
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-09-17 至 2011-08-31

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中文摘要
翻译
描述(由申请人提供):本申请涉及广泛的挑战领域(06)使能技术和特定的挑战主题,06-DC-102:开发和验证药物和分子递送至内耳的方法。本申请的主要目标是建立和验证一种稳健、安全和持久的递送方法,该方法使用体干细胞作为载体将生物活性分子转运到内耳中。体细胞干细胞,例如间充质干细胞和诱导多能干细胞代表了用于自体细胞移植疗法的有希望的材料来源。虽然这些干细胞可用于替代内耳中受损的细胞,但我们最近的研究表明,移植的成体干细胞表现出识别和迁移内耳中受损螺旋神经节神经元的显着能力。这种特性使得体干细胞成为一种独特的工具,可以选择性地将治疗剂递送到内耳中受损的细胞。在具体目标1中,我们将建立稳定表达高水平BDNF的间充质和诱导多能干细胞系。将通过创新的单细胞免疫印迹分析定量评估体外单个干细胞中BDNF的释放。在具体目标2中,将释放BDNF的间充质干细胞或诱导多能干细胞移植到听神经病动物模型的耳蜗中。这些干细胞在体内的迁移和植入将通过基于高分辨率显微内窥镜的成像系统和磁共振成像进行监测。此外,将通过荧光激活细胞分选和蛋白质印迹分析的组合来评估BDNF从体内移植的干细胞释放的时间变化。总之,这些实验将提供关于使用自体体干细胞将治疗剂递送到内耳中的可行性的第一组全面的信息,因此具有显著的临床意义。内耳包含复杂和敏感的结构,这对治疗干预提出了重大挑战。我们建议推进一种新方法的可行性,该方法使用患者来源的干细胞将治疗剂输送到内耳,其长期目标是使大部分患有严重感音神经性听力损失的患者受益。
英文摘要
DESCRIPTION (provided by applicant): This application addresses broad Challenge Area (06) Enabling Technologies and specific Challenge Topic, 06-DC-102: Develop and Validate Methods for Delivery of Drugs and Molecules to the Inner Ear. The primary goal of this application is to establish and validate a robust, safe and long-lasting delivery method using somatic stem cells as vectors to transport biologically active molecules into the inner ear. Somatic stem cells, such as mesenchymal stem cells and induced pluripotent stem cells represent a promising source of material for autologous cell transplantation therapies. While these stem cells can be used to replace damaged cells in the inner ear, our recent study has demonstrated that transplanted somatic stem cells exhibit remarkable abilities to identify and migrate towards damaged spiral ganglion neurons in the inner ear. This property makes somatic stem cells a unique tool to deliver therapeutic agents selectively to damaged cells in the inner ear. In Specific Aim 1, we will establish mesenchymal and induced pluripotent stem cell lines stably expressing high-level BDNF. Release of BDNF from individual stem cells in vitro will be quantitatively evaluated by innovative single cell immunoblot assays. In Specific Aim 2, mesenchymal or induced pluripotent stem cells releasing BDNF will be transplanted into the cochlea of an animal model of auditory neuropathy. Migration and engraftment of these stem cells in vivo will be monitored by a high-resolution microscopic- endoscope-based imaging system and magnetic resonance imaging. In addition, temporal changes in BDNF release from transplanted stem cells in vivo will be evaluated by a combination of fluorescence-activated cell sorting and Western blot analysis. Together, these experiments will provide the first comprehensive set of information regarding the feasibility of using autologous somatic stem cells to deliver therapeutic agents into the inner ear, and thus have significant clinical implications. The inner ear contains complex and sensitive structures, which present a significant challenge for therapeutic interventions. We propose to advance the feasibility of a novel method using patient-derived stem cells to deliver therapeutic agents to the inner ear, with the long-term goal of benefitting a large proportion of patients suffering from profound sensorineural hearing loss.
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Engineering High-Fidelity Human Cochlear Organoids
Engineering High-Fidelity Human Cochlear Organoids
Modeling Genetic Inner Ear Disorders with Human Pluripotent Stem Cells
Modeling Genetic Inner Ear Disorders with Human Pluripotent Stem Cells
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