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中文摘要
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描述(由申请人提供):该项目旨在开发Orion显微镜系统,这是一种高度创新的软件/硬件组合产品,将有助于使用延时视频显微镜(TLVM)对体外神经元前体迁移和神经突生长的动态进行自动化调查。为了实现这一目标,Orion显微镜系统将联合收割机与MBF最近开发并获得专利的两种创新显微镜硬件设备相结合:(i)可移动扩展显微镜物镜设备,以及(ii)双物镜显微镜设置。Orion显微镜系统将首次允许研究人员同时使用两个显微镜物镜(使用荧光照明)检查组织培养物,并可以在XYZ方向上相互独立地移动物镜。该系统将有助于揭示有关神经元前体和神经突生长的新发现。哺乳动物脑的发育依赖于神经元前体的广泛迁移。需要更好地了解发育中大脑中神经元前体迁移的调节(和纠正干扰),以开发预防和治疗各种神经和神经精神疾病的新方法,如儿童期发作的癫痫,自闭症,精神分裂症,注意力缺陷多动障碍,无脑畸形,以及在HIV-1感染儿童中观察到的神经和神经行为后遗症。此外,更好地了解神经突生长的动力学(特别是受损神经突生长的校正)已经成为开发新的治疗策略以对抗神经退行性疾病(例如阿尔茨海默病、帕金森病、亨廷顿病和NeuroAIDS)的重要方面。为了研究神经元前体迁移和轴突生长的动力学,研究人员通常在体外分离的神经元培养物或脑的器官型切片培养物上进行TLVM,检查单视野。有几种软件和组合软件/硬件产品可帮助研究者进行此类研究。然而,这些产品都不包含以下功能,这些功能在神经元前体迁移和神经突生长动力学的高级自动化分析中被认为是关键的:(i)在低放大率下在大型组织培养物内的许多显微镜视野中识别和跟踪迁移的神经元前体和生长的神经突,同时,(ii)在高放大率下确定所鉴定的迁移神经元前体的不同迁移模式或生长神经突的细微变化。这将为理解神经元在大脑发育、重组和退化过程中的动态行为开辟新的视野,对于神经科学研究和预防或对抗上述疾病的新型治疗策略的开发具有高度相关性。因此,Orion显微镜系统的开发代表了超越最先进技术的明显进步,为神经科学研究界和整个社会带来了巨大的好处。
英文摘要
DESCRIPTION (provided by applicant): This project aims at developing the Orion microscope system, a highly innovative combined software/hardware product, which will facilitate automated investigations of dynamics of migration of neuronal precursors and neurite outgrowth in vitro using time-lapse video-microscopy (TLVM). To achieve this goal, the Orion microscope system will combine novel software with two innovative microscope hardware devices that were recently developed and patented by MBF: (i) movable Extended Microscope Objective devices, and (ii) a dual- objective microscope setup. The Orion microscope system will allow investigators, for the first time, to inspect a tissue culture with two microscope objectives simultaneously (using fluorescence illumination), with the possibility of moving the objectives in XYZ directions independent of each other. This system will help uncover new discoveries about neuronal precursors and neurite outgrowth. The development of the mammalian brain is dependent on extensive migration of neuronal precursors. There is need for a better understanding of the regulation of (and correction of disturbed) migration of neuronal precursors in the developing brain, in order to develop novel approaches for preventing and treating various neurological and neuropsychiatric disorders such as childhood-onset epilepsy, autism, schizophrenia, attention deficit hyperactivity disorder, lissencephaly, and the neurologic and neurobehavioral sequelae seen in children with HIV-1 infection. Furthermore, better insights into the dynamics of neurite outgrowth (and particularly the correction of impaired neurite outgrowth) have become an important aspect in the development of novel therapeutic strategies to combat neurodegenerative disorders such as Alzheimer's disease, Parkinson's disease, Huntington's disease, and NeuroAIDS. To study the dynamics of neuronal precursor migration and neurite outgrowth, investigators usually perform TLVM on dissociated neuron cultures or organotypic slice cultures of the brain in vitro, inspecting single fields-of-view. Several software and combined software/hardware products exist to assist investigators in such studies. However, none of these products comprise the following functionality that is considered critical in advanced, automated analyses of the dynamics of migration of neuronal precursors and neurite outgrowth: (i) identifying and follow up migrating neuronal precursors and growing neurites across many microscopic fields-of-view within large tissue cultures at low magnification and, simultaneously, (ii) determining the different modes of migration of the identified migrating neuronal precursors or subtle changes in growing neurites at high magnification. This will open new horizons in understanding the dynamic behaviors of neurons during development, re-organization, and degeneration of the brain, with high relevance for both neuroscience research and the development of novel therapeutic strategies to prevent or combat the aforementioned disorders. Accordingly, the development of the Orion microscope system represents clear progress beyond the state-of-the-art, with great benefits for the neuroscience research community and society in general.
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Microscope system for large scale optical imaging of neuronal activity using kilohertz frame rates
  • 批准号:
    10541683
  • 项目类别:
  • 资助金额:
    $99.89万
  • 财政年份:
    2022
  • 负责人:
    JACOB R GLASER
  • 依托单位:
System for Volumetric 2-photon Imaging of Neuroactivity Using Light Beads Microscopy
  • 批准号:
    10755027
  • 项目类别:
  • 资助金额:
    $99.98万
  • 财政年份:
    2022
  • 负责人:
    JACOB R GLASER
  • 依托单位:
System for Volumetric 2-photon Imaging of Neuroactivity Using Light Beads Microscopy
  • 批准号:
    10603310
  • 项目类别:
  • 资助金额:
    $45.0万
  • 财政年份:
    2022
  • 负责人:
    JACOB R GLASER
  • 依托单位:
Microscope system for large scale optical imaging of neuronal activity using kilohertz frame rates
  • 批准号:
    10384932
  • 项目类别:
  • 资助金额:
    $99.53万
  • 财政年份:
    2022
  • 负责人:
    JACOB R GLASER
  • 依托单位: