Transcriptional Control of Hematopoiesis
Transcriptional Control of Hematopoiesis
批准号:
7742075
负责人:
BARBARA L. KEE
金额:
$39.0万
依托单位:
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:
2009-07-22 至 2014-06-30
关键词:
AddressAnemiaAutoimmunityB-LymphocytesBHLH ProteinBiological AssayBone MarrowBone Marrow TransplantationCell DeathCell LineageCell physiologyCellsCollaborationsDNA BindingDataDefectDerivation procedureDevelopmentDiseaseE proteinEquilibriumFamilyFoundationsGene TargetingGenesGoalsHematopoiesisHematopoieticHematopoietic SystemHematopoietic stem cellsHome environmentImmuneIndividualInvertebratesLeadLifeLymphoidLymphomaMaintenanceModelingMolecularMultipotent Stem CellsMusMyelogenousNatural regenerationPathway interactionsPlayProcessProductionPropertyProteinsReceptor Protein-Tyrosine KinasesResearchRoleSignal PathwaySpecificityStem Cell DevelopmentStem cellsT-Cell LymphomaT-LymphocyteTCF3 geneTestingTherapeutic InterventionTranscriptional RegulationTransforming Growth FactorsTransplantationVertebratesbasebone morphogenic proteinchemotherapeutic agentclinically relevantdesigneffective therapygene functioninsightleukemialeukemia/lymphomaleukemic stem cellmRNA Expressionmembermigrationpreventprogramspublic health relevancereconstitutionresearch studyself-renewalstem cell biologystem cell nichetranscription factor
中文摘要
描述(申请人提供):生物学中两个悬而未决的问题是干细胞自我更新是如何控制的,以及具有多个分化选项的细胞如何受到单一发育命运的限制。造血系统是研究这些问题的一个很好的模型,因为它来自于干细胞库,在一生中至少维持着八种不同的细胞谱系的产生。这一模式也具有临床意义,因为造血干细胞是骨髓移植的基础,而这一发育程序中的错误可能会导致严重的疾病,如免疫缺陷或白血病。因此,要设计有效的治疗方法来干预疾病并预测治疗干预对造血发育的影响,我们需要从机制上了解控制造血的因素。E蛋白转录因子是脊椎动物和无脊椎动物细胞命运的重要调节因子,与多种参与造血干细胞发育和功能的蛋白质相互作用。尽管如此,E蛋白在造血干细胞或早期造血细胞命运决定中的作用直到最近才被证明。我们已经确定,由E2A基因编码的E蛋白是维持造血干细胞正常生长所必需的,它们支持最初的多能祖细胞向淋巴系分化。在这项应用的目标1中,我们提出了实验来检验E2A蛋白在移植后的骨髓再生过程中促进HSC自我更新的假设。我们还将测试假设,即E2A缺乏的HSC未能适当地定位于HSC生态位和/或未能保留在该生态位内。在目标2中,我们将检验淋巴规范需要E蛋白同源二聚体的假设,并将确定控制同源二聚体形成的机制。在解决这些假设时,我们将对造血干细胞功能和向淋巴系分化的分子机制有重要的了解。此外,由于E蛋白拮抗剂可以受到信号通路的调节,例如转化生长因子-21或骨形态发生蛋白,我们的结果可能揭示这些途径影响造血的机制。与公共卫生相关:对造血的异常控制是许多疾病的根本原因,包括免疫缺陷、贫血、自身免疫和白血病或淋巴瘤。我们研究的目标是确定控制造血的分子机制,特别强调向淋巴系分化。我们的研究将揭示E蛋白转录因子维持造血干细胞功能和促进向淋巴系分化的机制。
英文摘要
DESCRIPTION (provided by applicant): Two outstanding questions in biology are how stem cell self-renewal is controlled and how a cell with multiple differentiation options becomes restricted to a single developmental fate. The hematopoietic system is an excellent model to study these questions owing to its derivation from a pool of stem cells that maintains production of at least eight distinct cell lineages throughout life. This model is also clinically relevant because HSCs are the foundation for bone marrow transplantation and mistakes in this developmental program can lead to severe disease such as immune deficiency or leukemia. Therefore, to design effective therapies to intervene in disease and to predict the effects of therapeutic intervention on hematopoietic development we need to gain a mechanistic understanding of the factors that control hematopoiesis. The E protein transcription factors are essential regulators of cell fate in vertebrates and invertebrates and interact with multiple proteins implicated in hematopoietic stem cell (HSC) development and function. Nonetheless, a role for E proteins in HSCs or in early hematopoietic cell fate decisions has only recently been demonstrated. We have determined that the E proteins encoded by the E2A gene are required for proper maintenance of HSCs and they support the initial specification of multipotent progenitors toward the lymphoid lineages. In Aim 1 of this application we propose experiments to test the hypothesis that E2A proteins promote HSC self-renewal during regeneration of bone marrow following transplantation. We will also test the hypothesis that E2A- deficient HSCs fail to home appropriately to the HSC niche and/or fail to be retained within the niche. In Aim 2 we will test the hypothesis that lymphoid specification requires E protein homodimers and we will determine the mechanisms controlling homodimers formation. In addressing these hypotheses we will gain important insight into the molecular mechanisms underlying hematopoietic stem cell function and differentiation toward the lymphoid lineages. Moreover, since E protein antagonists can be modulated by signaling pathways, for example transforming growth factor-21 or bone morphogenic proteins, our results may reveal mechanisms by which these pathways can influence hematopoiesis. PUBLIC HEALTH RELEVANCE: Aberrant control of hematopoiesis is the underlying cause of many diseases including immune deficiency, anemia, autoimmunity and leukemia or lymphoma. The goal of our research is to determine the molecular mechanisms that control hematopoiesis with a particular emphasis on differentiation toward the lymphoid lineages. Our study will reveal the mechanisms by which E protein transcription factors maintain hematopoietic stem cell function and promote differentiation toward the lymphoid lineages.
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会议论文
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