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Angiogenesis and Tumor Growth

Angiogenesis and Tumor Growth
血管生成和肿瘤生长
批准号:
10926581
负责人:
Giovanna Tosato
金额:
$88.56万
依托单位国家:
美国
项目类别:
财政年份:
--
资助国家:
美国
项目状态:
未结题
起止时间:
至
关键词:
2-tyrosineAcquired Immunodeficiency SyndromeAngiogenesis InhibitionAngiogenesis InhibitorsAngiogenic FactorAngiopoietin-2AntibodiesAreaBindingBiochemicalBiologicalBlood CellsBlood VesselsCancer ModelCell DeathCell Migration InductionCell SurvivalCell physiologyCellsCessation of lifeCharacteristicsClinicConsensusContact InhibitionDLEC1 geneDefectDependenceDevelopmentDominant-Negative MutationEndothelial Cell InhibitorEndothelial CellsEndothelial Growth Factors ReceptorEndotheliumEph Family ReceptorsEphrin B ReceptorEphrinsEpigenetic ProcessExperimental GeneticsFGF2 geneFibroblast Growth Factor Receptor 2GenerationsGeneticGoalsGrowthHemangiosarcomaHematopoiesisHeterogeneityHumanHuman Herpesvirus 4Human Herpesvirus 8Immune TargetingImmunoprecipitationIn VitroIndividualInfectionInvestigationKDR geneKaposi SarcomaKnowledgeLigand BindingLigandsLigationLinkLymphomaMAPK10 geneMalignant - descriptorMalignant NeoplasmsMass Spectrum AnalysisMediatingMediatorMembraneMetabolicMouse Cell LineMusNF-kappa BNeoplasm MetastasisNeuropilin-1NuclearNutrientOutcomeOxygenPTPN11 genePathway interactionsPeptidesPericytesPharmaceutical PreparationsPharmacotherapyPhenotypePhosphorylationPhysiologicalProliferatingProteinsReceptor SignalingRecombinantsRegulationResearchResistanceRoleSignal TransductionSignaling MoleculeSkinSourceStarvationStressSurfaceTEK geneTIE-2 ReceptorTNF geneTNFSF15 geneTailTestingTissuesTranscription CoactivatorTumor AngiogenesisTumor ExpansionTumor ImmunityTumor PromotionTumor Suppressor ProteinsTyrosineTyrosine PhosphorylationVEGFA geneVascular Endothelial Growth FactorsVascular EndotheliumVascularizationVirusangiogenesiscancer therapycross reactivitydensityexperimental studyin vivoinhibitorinterestleukemialymphoid neoplasmmouse developmentmouse modelmutantneoplastic cellnew therapeutic targetnotch proteinpostnatalpre-clinicalpreventpromoterreceptorresponseselective expressiontargeted treatmenttherapeutic targettranscription factortreatment responsetumortumor growthtumor microenvironmenttumor progressiontumorigenesisvessel regressionwound healing

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中文摘要
翻译
我们重点关注了4个相关领域。1)我们之前的研究已经确定了Notch1和Notch4的内皮特异性膜结合配体Delta4 (Dll4)作为内皮细胞功能调节剂的关键作用。Dll4在发育中的内皮细胞中选择性表达,是正常血管发育所必需的。出生后,Dll4在血管生成内皮中表达,特别是在肿瘤血管中。我们发现Dll4是血管生成的负调节因子,因为它通过下调VEGF-A的主要信号受体VEGFR-2和共受体neuropilin-1 (Npn-1)来作为VEGF-A的选择性抑制剂。在临床前癌症模型中,我们已经证明Dll4可以通过降低肿瘤血管内皮中VEGF-A的反应来显著减少肿瘤血管生成和淋巴源性肿瘤的生长。在相关实验中,我们已经开始探索Notch配体JAG2在血管生成中的作用。为此,我们建立了一种新的jag2缺失小鼠模型,并探索了notch依赖性和notch非依赖性通路在内皮细胞功能和血管生成中的潜在贡献。2)我们继续研究ephrinB配体及其EphB受体如何在血管系统中协调内皮/内皮/周细胞组装。EphrinB配体是表面结合的;b型Eph/Ephrin相互作用中的受体-配体相互作用涉及相邻细胞(反式)或可以发生在同一细胞(顺式)。b型ephrin除了激活其同源EphB受体外,当受体通过“反向信号传导”参与时,b型ephrin还可以作为信号分子发挥作用。Eph受体是酪氨酸激酶与其膜锚定的ephrin配体相互作用。我们研究了Eph/ephrin信号在内皮细胞存活调控中的潜在作用。我们发现,沉默EphrinB的表达或酪氨酸磷酸化缺陷突变体EphrinB的表达(包含所有酪氨酸残基的替代,阻止尾部磷酸化,并作为内源性WT ephrin的显性阴性抑制剂)会导致内皮细胞死亡。这种结果不能通过添加外源性VEGFA或FGF2来阻止。生化和遗传学实验表明,这种死亡是由JNK3/MAPK10信号介导的,EphrinB2酪氨酸磷酸化依赖性信号是MAPK10/JNK3表达的调节剂。因此,JNK3的沉默可以防止EphrinB信号缺陷的内皮细胞的细胞死亡。与这些结果一致的是,在基因缺乏EphrinB2的小鼠中,细胞死亡增加与JNK3激活有关,JNK3缺乏的小鼠表现出与EphrinB2信号缺乏相对应的眼部血管缺陷。这些结果提供了证据支持EphrinB信号作为内皮促生存途径和抑制血管生成的治疗靶点的作用。在此基础上,我们进一步探索了靶向肿瘤血管中EphrinB2信号通路诱导血管消退、促进肿瘤细胞饥饿坍缩的可能性。3)根据这一观察结果,我们探索了不同的方法来阻断ephrinb2在血管系统中衍生的促生存信号。我们已经确定磷酸酶SHP2是内皮细胞中EphrinB2促存活功能的重要介质。此外,我们发现SHP2变张抑制剂SHP099和TNO155是磷酸化- ephrinb2 - stat信号的有效抑制剂,是内皮细胞体外和体内死亡的选择性诱导剂。我们已经描述了内皮细胞中SHP2抑制的信号后果,并利用这一信息选择性地靶向肿瘤血管而不是肿瘤细胞。此外,我们已经确定TIE2(血管生成素1和2的受体)的内皮磷酸化是顺式内皮EphrinB2磷酸化的来源。在此基础上,我们分析了SHP099与肽体AMG386联合阻断SHP2和TIE2的联合抗血管生成活性;4)在早期的观察中,我们已经将肿瘤抑制蛋白DLC1的缺失与应激条件下原代内皮细胞存活率的增加联系起来。我们现在发现dcl1是原代人内皮细胞细胞接触抑制增殖的关键调节因子,当细胞达到高密度时促进细胞死亡。由于NF-kB激活增加与肿瘤坏死因子α诱导蛋白3 (TNFAIP3/A20)信号传导增加相关,DLC1缺失赋予融合内皮细胞促生存表型,而非稀疏内皮细胞。与DLC1缺失在内皮细胞肿瘤发生中的作用一致,我们已经确定了血管肉瘤中的DLC1缺失。5)在观察肿瘤抑制因子DLC1蛋白和转录共激活因子YAP调控细胞接触抑制生长的基础上,我们探索了DLC1与YAP之间的生化相互作用。我们发现DLC1是YAP的调节因子,并且YAP的转录共激活因子功能是缺失DLC1的内皮细胞所表现的细胞接触抑制丧失所必需的。这些结果在体外得到了证实,血管肉瘤组织中含有相当比例的dlc1阴性恶性内皮细胞,其中YAP是核的和活跃的。在肿瘤附近的正常皮肤血管中则不是这种情况。6)关于dcl1在内皮细胞中的作用的其他正在进行的实验已经促进了内皮特异性诱导dcl1缺陷小鼠细胞系的产生。我们目前正在评估这种缺陷在不同情况下的作用,包括小鼠发育、造血中的生理性内皮细胞功能、伤口愈合和癌症。7)尽管对Ang2在肿瘤内皮细胞中的作用进行了大量研究,但对结果缺乏统一的解释。普遍的共识是,Ang2具有上下文依赖的功能,作为肿瘤血管化的启动子或抑制剂。然而,Ang2功能的上下文依赖性仍然是描述性的,而不是生物化学的基础。基于先前未报道的抗体交叉反应性的偶然观察,我们确定了Fgf受体-2 (FGFR2)是Ang2的结合伴侣。这一结论是基于近距离结扎后FGFR2肽的质谱鉴定。此外,使用重组FGFR2-Fc和重组人Ang2的免疫沉淀实验证实了直接结合。此外,使用表达FGFR2而不表达Ang2受体Tie-2的293T细胞,我们可以检测到Ang2对fgf1诱导的Erk1/2信号传导的抑制作用。目前的研究旨在确定内皮细胞中Ang2-FGFR2功能的生物学意义。体外实验表明,Ang2可以抑制Fgf1诱导的内皮细胞迁移。8)他利度胺衍生物,简称IMIDs,是治疗某些白血病、淋巴瘤和卡波西氏肉瘤的重要药物。这三种药物的作用机制是它们修饰靶蛋白Cereblon,并诱导一系列重要调节因子的降解,如转录因子Ikaros。长期以来,人们一直认为这些药物具有抗血管生成活性。然而,目前缺乏强有力的证据。在一组新的实验中,我们想分析idds是否以及如何在体外和体内调节内皮细胞功能。
英文摘要
We have focused on 4 related areas. 1) Our previous studies have identified a critical role of Delta4 (Dll4), an endothelial-specific membrane-bound ligand for Notch1 and Notch4, as a regulator of endothelial cell function. Dll4 is selectively expressed in the developing endothelium and is required for normal vascular development. Post-natally, Dll4 is expressed in the angiogenic endothelium, particularly in the tumor vasculature. We have found that Dll4 is a negative regulator of angiogenesis, as it functions as a selective inhibitor of VEGF-A by down-regulating the principal VEGF-A signaling receptor, VEGFR-2 and co-receptor neuropilin-1 (Npn-1). In pre-clinical cancer models, we have documented that Dll4 can markedly reduce tumor angiogenesis and the growth of tumors of lymphoid origin by reducing VEGF-A responses in the tumor vascular endothelium. In related experiments, we have begun to explore the role of the Notch ligand JAG2 in angiogenesis. To this end, we have developed a new mouse model of JAG2-deficiency and explored the potential contribution of Notch-dependent and Notch-independent pathways in endothelial cell function and angiogenesis. 2) We have continued investigations on how ephrinB ligands and their EphB receptors orchestrate endothelial/endothelial/pericyte assembly in the vasculature. EphrinB ligands are surface-bound; receptor-ligand interactions in the B-type Eph/Ephrin interactions involve adjacent cells (trans) or can occur in the same cell (cis). In addition to activating their cognate EphB receptors, B-type Ephrins can function as signaling molecules when engaged by the receptor through "reverse signaling". Eph receptors are tyrosine kinases interacting with their membrane-anchored ephrin ligands. We have investigated the potential role of Eph/ephrin signaling in the regulation of endothelial cells survival. We have found that silencing EphrinB expression or expression of a tyrosine-phosphorylation-deficient mutant EphrinB (contains substitutions of all tyrosine residues that prevent tail phosphorylation and acts as a dominant-negative inhibitor of endogenous WT ephrin) causes endothelial cell death. This outcome cannot be prevented by the addition of exogenous VEGFA or FGF2. Biochemical and genetic experiments have revealed that such death is mediated by JNK3/MAPK10 signaling, and that EphrinB2 tyrosine phosphorylation-dependent signaling serves as a modulator of MAPK10/JNK3 expression. Thus, the silencing of JNK3 prevents cell death in endothelial cells that are EphrinB signaling-deficient. Consistent with these results, the hyaloid vasculature in mice genetically-deficient of EphrinB2 undergoes increased cell death in association with JNK3 activation, and JNK3-deficient mice display ocular vascular defects that mirror those of EphrinB2 signaling deficiency. These results provide evidence supporting a role for EphrinB signaling as an endothelial pro-survival pathway and a therapeutic target for inhibition of angiogenesis. Based on this evidence, we have further explored the possibility of targeting EphrinB2 signaling in the tumor vasculature to induce vessel regression and promote tumor cell starvation of collapse. 3) Pursuing this observation, we have explored different approaches to block EphrinB2-derived pro-survival signals in the vasculature. We have identified the phosphatase SHP2 as an essential mediator of EphrinB2 prosurvival functions in endothelial cells. Further, we have identified the SHP2 allosteric inhibitors, SHP099 and TNO155 as potent inhibitors of phospho-EphrinB2-STAT signaling and a selective inducer of endothelial cell death in vitro and in vivo. We have characterized the signaling consequences of SHP2 inhibition in endothelial cells and exploited this information to selectively target the tumor vasculature rather than the tumor cells. Furthermore, we have identified endothelial phosphorylation of TIE2 (receptor for Angiopoietins 1 and 2) as a source of endothelial EphrinB2 phosphorylation in cis. Based on this information we have analyzed the combined anti-angiogenic activity of SHP2 and TIE2 blockade using SHP099 in combination with the peptibody AMG386; 4) In earlier observations we have linked the loss of the tumor-suppressor protein DLC1 with increased survival in primary endothelial cells under conditions of stress. We now discovered that DLC1 is a critical regulator of cell contact inhibition of proliferation in primary human endothelial cells, promoting cell death when the cells reach high density. DLC1 depletion confers a pro-survival phenotype to confluent, but not sparse endothelial cells, attributable to increased NF-kB activation associated with increased tumor necrosis factor alpha-induced protein 3 (TNFAIP3/A20) signaling. Consistent with a role of DLC1 depletion in endothelial cell tumorigenesis, we have identified DLC1 depletion in angiosarcoma. 5) Based on the observation that the tumor suppressor DLC1 protein and the transcriptional co-activator YAP regulate cell-contact inhibition of growth, we have explored biochemical interactions between DLC1 and YAP. We found that DLC1 is a regulator of YAP and that the transcriptional co-activator function of YAP are required for the loss of cell-contact inhibition manifested by DLC1-deficient endothelial cells. These results in vitro were corroborated by the observation that angiosarcoma tissues contain a significant proportion of DLC1-negative malignant endothelial cells where YAP is nuclear and active. This is not the case in the normal skin vasculature adjacent to the tumor. 6) Additional ongoing experiments on the role of DLC1 in endothelial cells have prompted the generation of an endothelial-specific inducible DLC1-deficient mouse cell line. We are currently evaluating the role of such deficiency in different contexts, including mouse development, physiologic endothelial cell functions in hematopoiesis, wound healing and cancer. 7) Despite considerable investigation on the role of Ang2 in tumor endothelial cells, a unifying interpretation of the results is missing. The general consensus is that Ang2 has a context-dependent functions, acting as a promoter or inhibitor of tumor vascularization. However, the context-dependency of Ang2 functions remains descriptive rather than biochemically ground. Based on a serendipitous observation originating from a previously unreported antibody cross-reactivity, we identified Fgf receptor-2 (FGFR2) as a binding partner of Ang2. This conclusion is based on mass spectrometry identification of FGFR2 peptides following proximity ligation. Additionally, immunoprecipitation experiments using the recombinant FGFR2-Fc and recombinant human Ang2 confirmed direct binding. Furthermore, using 293T cells that express FGFR2 but not the Ang2 receptor Tie-2, we could detect an inhibitory role of Ang2 on Fgf1-induced Erk1/2 signaling. Current studies are geared at identifying the biological significance of the Ang2-FGFR2 functions in endothelial cells. In vitro experiments have revealed that Ang2 serves as an inhibitor of endothelial cell migration induced by Fgf1. 8) Talidomide derivatives, referred to as IMIDs, are an important set of drugs for the treatment of certain leukemias, lymphomas and Kaposi's sarcoma. The mechanism of action of thee drugs is that they modify the target protein Cereblon, and induce degradation of a set of important regulators, such as the transcription factor Ikaros. It has long been held that these drugs have anti-angiogenic activities. However, strong evidence is currently missing. In a new set of experiments we want to analyze whether and how IDIDs regulate endothelial cell function in vitro and in vivo.
期刊论文(23)
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会议论文
Cytosolic phospholipase A2{alpha} and cancer: a role in tumor angiogenesis.
胞浆磷脂酶 A2{α} 和癌症:在肿瘤血管生成中的作用。
DOI: 10.1093/jnci/djq324
发表时间: 2010
期刊: Journal of the National Cancer Institute
影响因子: --
作者: [Tosato,Giovanna, Segarra,Marta, Salvucci,Ombretta]
通讯作者: Salvucci,Ombretta
DOI: 10.1182/blood-2007-11-126045
发表时间: 2008-09
期刊: Blood
影响因子: 20.3
作者: [M. Segarra;Cassin Kimmel Williams;M. D. L. L. Sierra-M.-D.-L.-L.-Sierra-90651854;M. Bernardo;P. McCormick;D. Maric;C. Regino;P. Choyke;G. Tosato]
通讯作者: M. Segarra;Cassin Kimmel Williams;M. D. L. L. Sierra-M.-D.-L.-L.-Sierra-90651854;M. Bernardo;P. McCormick;D. Maric;C. Regino;P. Choyke;G. Tosato
Targeting EPHA2 with Kinase Inhibitors in Colorectal Cancer.
使用激酶抑制剂靶向治疗结直肠癌中的 EPHA2。
DOI: 10.1002/cmdc.202300420
发表时间: 2023
期刊: ChemMedChem
影响因子: 3.4
作者: [Tröster,Alix, Jores,Nathalie, Mineev,KonstantinS, Sreeramulu,Sridhar, DiPrima,Michael, Tosato,Giovanna, Schwalbe,Harald]
通讯作者: Schwalbe,Harald
DOI: 10.1111/j.1600-0854.2008.00814.x
发表时间: 2008-11
期刊: Traffic (Copenhagen, Denmark)
影响因子: --
作者: [McCormick PJ, Dumaresq-Doiron K, Pluviose AS, Pichette V, Tosato G, Lefrancois S]
通讯作者: Lefrancois S
共 14 条
    Angiogenesis and Tumor Growth
    Kaposis Sarcoma Associated Herpsvirus KSHV in malignancy
    A Role for KSHV in the Pathogenesis of Malignancies
    Angiogenesis and Tumor Growth
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