Stem Cells of the Developing Human Neocortex
Stem Cells of the Developing Human Neocortex
批准号:
8235784
负责人:
ARNOLD KRIEGSTEIN
金额:
$33.42万
依托单位国家:
美国
项目类别:
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-04-01 至 2016-03-31
关键词:
AffectAreaAutistic DisorderBehaviorBiological ModelsBrainCell CycleCell MaintenanceCell divisionCellsCentrosomeCerebral cortexCommitComplexCortical MalformationDefectDevelopmentDiseaseEpilepsyFiberFoundationsGeneticGenetic TechniquesHumanIntegrinsLabelLightMicrocephalyModelingMolecularMolecular GeneticsMothersNatural regenerationNeocortexNerve RegenerationNeurodevelopmental DisorderNeurogliaNeuronal DifferentiationNeuronsPatternPopulationPregnancyPrimatesProcessProductionPropertyRadialResearchResearch Project GrantsRodentRoleSchizophreniaSecond Pregnancy TrimesterSignal TransductionSiteSliceSolidStem cellsStructureSystemTestingTherapeuticTimeTissuesTransplantationVentricularcell behaviorcell typecellular imagingcognitive functiondaughter cellfiber cellinnovationlissencephalymigrationmultipotent cellneocorticalnerve stem cellnervous system disorderneurogenesisnotch proteinnovelpublic health relevanceself-renewalstemstem cell therapysubventricular zone
中文摘要
描述(由申请人提供):人类大脑中进化程度最高的结构是新皮层,负责人类特有的高级认知功能。尽管它很重要,但很少有人研究人类新皮层是如何发育的,特别是在大多数神经发生发生的时期,即怀孕的第二个三个月。我们最近的特点是一个独特的人口神经干细胞(oRG细胞)在发展中的人类新皮层负责大部分皮层神经元的生产。这些细胞位于被称为外室管膜下区(OSVZ)的脑胚区。值得注意的是,在啮齿动物中没有发现OSVZ,这意味着使用啮齿动物作为模型系统来理解人类新皮层发育具有显著的局限性。本研究的目的是进一步了解OSVZ祖细胞促进人类新皮层发育的机制,重点关注四个领域:1)oRG细胞的起源及其神经干细胞特性; 2)在神经发生过程中维持oRG细胞身份和自我更新的细胞和分子机制; 3)oRG细胞子细胞进行扩增分裂以增加神经元产生; 4)OSVZ祖细胞促进人类新皮层发育的机制。以及4)oRG细胞如何被需要用于新皮层中神经元亚型的产生和正确分层。随着创新的方法,如细胞标记和克隆分析,细胞行为的实时成像,以及器官型切片培养中的分子遗传技术,拟议的研究旨在为理解人类新皮层发育提供坚实的新基础。这一框架对于正确理解具有遗传或发育起源的人类神经系统疾病至关重要,这些疾病包括从无脑畸形和小头畸形等皮质畸形到癫痫、自闭症和精神分裂症等更微妙的缺陷。了解皮层神经元产生的正确发育顺序对于神经系统疾病的细胞再生或移植治疗也很重要。
公共卫生相关性:人类大脑皮层是人类大脑中进化程度最高的结构,是人类特有的高级认知功能的场所。这项研究调查了人类皮层发育的细胞和分子机制,重点是啮齿动物中没有描述的独特的神经干细胞群。更好地了解人类大脑皮层的大小和复杂性如何增长,可以揭示各种各样的神经发育障碍,从包括小头畸形和无脑畸形在内的大脑皮层畸形到自闭症和精神分裂症等更微妙的疾病。
英文摘要
DESCRIPTION (provided by applicant): The most highly evolved structure in the human brain is the neocortex, which is responsible for the higher cognitive functions unique to humans. Despite its importance, little research has been done to understand how the human neocortex develops, especially during the period when most neurogenesis takes place, the second trimester of gestation. We have recently characterized a unique population of neural stem cells (oRG cells) in the developing human neocortex responsible for the majority of cortical neuron production. These cells reside in a germinal region known as the outer subventricular zone (OSVZ). Notably, the OSVZ is not found in the rodent, implying that using the rodent as a model system to understand human neocortical development has significant limitations. The aim of the proposed research is to further understand the mechanisms by which OSVZ progenitor cells contribute to human neocortical development, focusing on four areas: 1) the origin of oRG cells and their neural stem cell properties; 2) the cellular and molecular mechanisms that maintain oRG cell identity and self-renewal during neurogenesis; 3) the amplifying divisions that oRG cell daughters undergo to increase neuronal production; and 4) how oRG cells are required for the production and correct layering of neuronal subtypes in the neocortex. With innovative approaches such as cell labeling and clonal analysis, real-time imaging of cellular behaviors, and molecular genetic techniques in organotypic slice-cultures, the proposed research aims to provide a solid new foundation for understanding human neocortical development. This framework will be essential to correctly understand human neurological diseases that have genetic or developmental origins, ranging from cortical malformations such as lissencephaly and microcephaly to more subtle defects like epilepsy, autism, and schizophrenia. Knowing the proper developmental sequences by which cortical neurons are generated will also be important for cellular regeneration or transplantation therapies for neurological diseases.
PUBLIC HEALTH RELEVANCE: The human cerebral cortex is the most highly evolved structure in the human brain and is the site of higher cognitive functions unique to the human species. This study investigates the cellular and molecular mechanisms of human cortex development, focusing on a unique population of neural stem cells not described in rodents. A better understanding of how the human cortex has grown in size and complexity could shed light on a wide assortment of neurodevelopmental disorders, ranging from cortical malformations including microcephaly and lissencephaly to more subtle diseases such as autism and schizophrenia.
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