Fluid Shear Stress Signal Transduction in Endothelium
Fluid Shear Stress Signal Transduction in Endothelium
批准号:
7784123
负责人:
Jun-Ichi Abe
金额:
$45.98万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2001
资助国家:
美国
项目状态:
已结题
起止时间:
2001-02-01 至 2014-03-31
关键词:
4-ethoxymethylene-2-phenyl-2-oxazoline-5-oneAbbreviationsAcuteAdhesionsAdhesivesAngioplastyAnti-Inflammatory AgentsAnti-inflammatoryApolipoprotein EApoptosisApoptoticAreaArterial Fatty StreakAtherosclerosisBindingBiological AvailabilityBlood VesselsBypassCardiacCardiovascular systemCatalytic DomainCause of DeathCell physiologyCellsCellular MorphologyDataDevelopmentDiseaseE-SelectinEmbryoEndothelial CellsEndotheliumEnzymesEventExtracellular Signal Regulated KinasesFamilyFigs - dietaryFunctional disorderGenetic ProgrammingGenetic TranscriptionGrantHumanIn VitroInflammationInflammatoryIntercellular adhesion molecule 1InterleukinsInterventionKnockout MiceLigandsLigaseLiquid substanceMAPK1 geneMAPK3 geneMAPK7 geneMAPK8 geneMediatingMediator of activation proteinMitogen-Activated Protein KinasesModelingMolecularMusMyocardial InfarctionNitric OxideNuclear ExportNuclear ExtractOperative Surgical ProceduresPathogenesisPathway interactionsPhenotypePhysiologicalPlayProliferatingProstaglandins IProtein Kinase CProtein p53RecurrenceRoleSignal TransductionSiteStrokeSumoylation PathwayTP53 geneTestingThioredoxinTumor Necrosis Factor ActivationTumor Necrosis Factor-alphaTumor Necrosis FactorsUbiquitinationUmbilical veinVascular Cell Adhesion Molecule-1atheroprotectivebasecaspase-3cytokineimprovedinhibitor/antagonistinsightmonocytenovelnovel strategiesnovel therapeutic interventionoxidized low density lipoproteinpreventprotein inhibitors of activated STATprotein kinase C zetapublic health relevanceshear stresstranscription factorubiquitin-protein ligasevascular inflammation
中文摘要
描述(由申请人提供):炎症有助于动脉粥样硬化的发展。与扰动和低流量区域(称为d-流量)相比,在与高剪切应力相关的稳定流量区域(称为s-流量)中,动脉粥样硬化减少。这一发现产生了这样的概念,即s-flow是动脉粥样硬化保护和d-flow是动脉粥样硬化促进。以前我们发现,s-flow激活内皮细胞(EC)中的MEK 5-ERK 5,并抑制肿瘤坏死因子(TNF)信号。使用一种新的MEK 5抑制剂,我们表明,ERK 5激活所需的s流介导的抑制TNF信号。从概念上讲,有两种方法可以改善EC功能障碍。最常见的方法是激活动脉粥样硬化保护机制,如增加全身一氧化氮。然而,我们认为,一个更优雅的方法是抑制动脉粥样硬化酮机制,发生独特的领域的d流。一些研究结果表明,PKC ζ依赖性信号转导代表了一种独特的动脉粥样硬化促进机制。1)PKCzeta通过刺激NF:B依赖性ICAM-1的表达,在被TNF激活时促进EC的粘附表型。2)PKCzeta活性在暴露于d-flow的EC中特异性增加。3)PKCzeta活性是EC中TNF介导的JNK和caspase-3激活所必需的。4)令人兴奋的初步数据显示,TNF和ONOO-通过激活PKCzeta,增强促凋亡转录因子p53的SUMO化。SUMO化途径类似于泛素化途径,但SUMO缀合涉及不同的酶,包括活化STAT(PIASy)家族的蛋白质抑制剂。我们的数据表明,PKCzeta激活PIASy SUMO E3连接酶活性,增加p53-SUMO,从而增加p53蛋白稳定性并增强p53的凋亡功能(图)。我们提出的主要假设是,PKCzeta激活EC在atheroprone区域抑制ERK 5依赖性转录活性和刺激p53-SUMO化,从而促进EC炎症和凋亡。为了定义限制PKCzeta依赖性信号事件的机制,我们提出了四个目标。目标1。显示PKC 6结合并磷酸化ERK 5,从而抑制ERK 5转录活性。目标二。基于激活的STAT y的蛋白质抑制剂(PIASy; SUMO连接酶)与PKCzeta增加p53-SUMO化、p53表达和EC凋亡相关的概念,定义PKCzeta作为p53激活剂的分子机制。目标3:基于d-flow刺激PKCzeta活化、p53核输出和EC凋亡的假设,表征s-flow和d-flow对PKCzeta、ERK 5、PIASy和p53功能的体外影响。目标4。显示PKCzeta和PIASy通过抑制ERK 5活性和刺激p53-SUMO化增强apoE-/-小鼠中的动脉粥样硬化。这些研究应该提供关于血流如何抑制血管炎症的见解,并促进新的治疗方法的发展,以限制动脉粥样硬化。
公共卫生相关性:中风和心脏病发作是美国的主要死亡原因。诸如旁路手术和血管成形术的干预治疗急性事件,但是有有限的疗法来预防称为动脉粥样硬化的潜在疾病。我们发现,在动脉粥样硬化斑块形成的部位,一种酶--蛋白激酶C-ζ--在血管中被强烈激活。在这里,我们将集中在新的方法来抑制这种酶的功能。阐明蛋白激酶C-zeta调节血管功能的特定途径将为开发预防动脉粥样硬化的新疗法提供基础。
英文摘要
DESCRIPTION (provided by applicant): Inflammation contributes to development of atherosclerosis. Atherosclerosis is decreased in regions of steady flow associated with high shear stress (termed s-flow), compared to regions of disturbed and low flow (termed d-flow). This finding has yielded the concept that s-flow is atheroprotective and d-flow is atheropromoting. Previously we showed that s-flow activated MEK5-ERK5 in endothelial cells (EC), and inhibited tumor necrosis factor (TNF) signaling. Using a novel MEK5 inhibitor we showed that ERK5 activation was required for s-flow- mediated inhibition of TNF signaling. Conceptually there are two ways to improve EC dysfunction. The most common approach has been to activate atheroprotective mechanisms such as increasing systemic nitric oxide. However, we believe that a more elegant approach is to inhibit the atheroprone mechanisms that occur uniquely in areas of d-flow. Several findings indicate that PKCzeta-dependent signaling represents a unique atheropromoting mechanism. 1) PKCzeta promotes the adhesive phenotype of EC when activated by TNF, via stimulation of NF:B-dependent ICAM-1 expression. 2) PKCzeta activity is specifically increased in EC exposed to d-flow. 3) PKCzeta activity is required for TNF-mediated JNK and caspase-3 activation in EC. 4) Exciting preliminary data show that TNF and ONOO-, via activation of PKCzeta, enhance SUMOylation of the pro- apoptotic transcription factor p53. The SUMOylation pathway is analogous to that of ubiquitination, but SUMO conjugation involves a different enzymes including the protein inhibitor of activated STAT (PIASy) family. Our data show that PKCzeta activates PIASy SUMO E3 ligase activity, increases p53-SUMO, which increases p53 protein stability and enhances the apoptotic function of p53 (Figure). The major hypothesis of our proposal is that PKCzeta activation in EC at atheroprone areas inhibits ERK5- dependent transcriptional activity and stimulates p53-SUMOylation, thereby promoting EC inflammation and apoptosis. To define mechanisms that limit PKCzeta-dependent signal events we propose four aims. Aim 1. Show that PKC6 binds and phosphorylates ERK5, thereby inhibiting ERK5 transcriptional activity. Aim 2. Define the molecular mechanisms by which PKCzeta functions as an activator for p53 based on the concept that protein inhibitor of activated STAT y (PIASy; SUMO ligase) associates with PKCzeta increasing p53- SUMOylation, p53 expression and EC apoptosis. Aim 3. Characterize the effects of s-flow and d-flow on PKCzeta, ERK5, PIASy, and p53 function in vitro based on the hypothesis that d-flow stimulates PKCzeta activation, p53 nuclear export, and EC apoptosis. Aim 4. Show that PKCzeta and PIASy augment atherosclerosis in the apoE-/- mouse by inhibiting ERK5 activity and stimulating p53-SUMOylation. These studies should provide insight on how flow inhibits vascular inflammation and facilitate development of new therapeutic approaches to limit atherosclerosis.
PUBLIC HEALTH RELEVANCE: Strokes and heart attacks are the leading cause of death in the US. Interventions such as bypass surgery and angioplasty treat acute events, but there are limited therapies to prevent the underlying disease termed atherosclerosis. We have found that an enzyme - protein kinase C-zeta - is powerfully activated in blood vessels at sites where atherosclerotic plaques develop. Here we will focus on novel approaches to inhibit the function of this enzyme. Elucidating the specific pathways by which protein kinase C-zeta modulates vessel function would provide the basis to develop new therapies to prevent atherosclerosis.
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会议论文
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海外基金