KSR and regulators of RAS signaling in C elegans
KSR and regulators of RAS signaling in C elegans
批准号:
7643342
负责人:
Meera Sundaram
金额:
$30.92万
依托单位国家:
美国
项目类别:
财政年份:
2000
资助国家:
美国
项目状态:
已结题
起止时间:
2000-04-01 至 2011-06-30
关键词:
AffectAnimalsBindingBinding ProteinsBiologicalBiological ModelsBypassCaenorhabditis elegansCell membraneDevelopmentDevelopmental ProcessDuct (organ) structureEndocytosisEnhancersEnsureFundingGenesGeneticGenetic ModelsGoalsHumanMEKsMalignant NeoplasmsMediatingMembraneModelingPathway interactionsPatternPhosphorylationPhosphotransferasesPlayProcessProteinsRNA InterferenceRegulationResearchResearch PersonnelRoleScaffolding ProteinSignal TransductionSignaling ProteinSiteSpecificityTestingTherapeuticTissuesUbiquitin-Conjugating EnzymesUbiquitinationbasecell fate specificationdesignin vivoinhibitor/antagonistmutantparalogous genepreventprotein transportrab GTP-Binding Proteinsraf Kinasesreceptorresponsescaffoldtraffickingtumorigenesis
中文摘要
描述(由申请人提供):Ras刺激的Raf/MEK/ERK激酶级联在正常动物发育和癌症中起关键作用。多种不为人知的机制确保了这一级联仅在其应该出现的时间和地点才出现。越来越多的证据表明,通过支架对信号蛋白进行区室化是这种调节的重要组成部分。本研究采用C. elegans作为遗传模型系统,以识别Raf/MEK/ERK信号转导的新调节因子并了解它们的功能。在之前的资助期间(04/01/00至3/31/05),我们证明了支架KSR在MEK/ERK激活中的重要和广泛作用,并且我们表明支架CNK促进Raf激活的特定步骤。我们还确定了多种其他保守的,但以前未研究的基因产物,与KSR-1合作,以促进某些下游反应,这种信号级联。在下一个资助期内,我们将专注于几组这些基因产物,以了解信号蛋白的区室化如何控制信号传播和特异性。在目标1中,我们将测试KSR-1和KSR-2旁系同源物之间的固有功能差异是否有助于组织特异性反应。在目标2中,我们将确定支架CNK-1及其结合伴侣KIC-1在Raf激活和定位中的作用。膜移位和内吞是Raf激活和失活的关键步骤,我们将测试CNK-1和KIC-1参与这些过程的模型。在目标3中,我们将确定保守的泛素结合(E2)酶在Ras信号传导和支架功能中的作用。我们将测试E2调节KSR或CNK支架或其他信号蛋白的运输和定位的模型,并确定其作用机制。在目标4中,我们将继续进行正向遗传和基于RNAi的筛选,以寻找新的Ras通路调节剂,并选择那些最有可能与KSR、CNK和/或我们的E2蛋白一起发挥作用的调节剂进行进一步研究。我们的研究有望揭示Ras通路调控的新方面,并阐明信号区室化的机制和生物学意义。Ras或Raf的异常信号传导是人类癌症的最常见原因之一。从长远来看,对Raf/MEK/ERK调节的详细了解将允许合理设计治疗方法来治疗此类癌症。
英文摘要
DESCRIPTION (provided by applicant): The Ras-stimulated Raf/MEK/ERK kinase cascade plays critical roles in normal animal development and cancer. Multiple poorly understood mechanisms ensure that this cascade is active only when and where it should be. Increasing evidence suggests that compartmentalization of signaling proteins by scaffolds is an important component of such regulation. Our research uses C. elegans as a genetic model system to identify new regulators of Raf/MEK/ERK signaling and understand how they function. During the previous funding period (04/01/00 to 3/31/05), we demonstrated the essential and widespread role of the scaffold KSR in MEK/ERK activation, and we showed that the scaffold CNK promotes a specific step of Raf activation. We also identified multiple other conserved, but previously unstudied, gene products that cooperate with KSR-1 to promote certain downstream responses to this signaling cascade. In the next funding period, we will focus on several sets of these gene products to understand how compartmentalization of signaling proteins controls signal propagation and specificity. In Aim 1, we will test if inherent functional differences between the KSR-1 and KSR-2 paralogs contribute to tissue-specific responses. In Aim 2, we will determine the role of the scaffold CNK-1 and its binding partner KIC-1 in Raf activation and localization. Membrane translocation and endocytosis are key steps in Raf activation and de-activation, and we will test the model that CNK-1 and KIC-1 are involved in these processes. In Aim 3, we will determine the role of a conserved ubiquitin conjugating (E2) enzyme in Ras signaling and scaffold function. We will test the model that this E2 regulates trafficking and localization of the KSR or CNK scaffolds, or of other signaling proteins, and we will identify the mechanism by which it acts. In Aim 4, we will continue both forward genetic and RNAi-based screens for new Ras pathway regulators, and choose for further study those mostly likely to function with KSR, CNK and/or our E2 protein. Our studies are expected to reveal new aspects of Ras pathway regulation and clarify the mechanisms and biological relevance of signaling compartmentalization. Aberrant signaling by Ras or Raf is 1 of the most frequent causes of human cancers. In the long term, a detailed understanding of Raf/MEK/ERK regulation will allow the rational design of therapeutic approaches to treat such cancers.
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