Exploiting myeloma proteome remodeling to extend proteasome inhibitor efficacy
Exploiting myeloma proteome remodeling to extend proteasome inhibitor efficacy
批准号:
10341162
负责人:
Arun P. Wiita
金额:
$27.82万
依托单位国家:
美国
项目类别:
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-03-01 至 2023-02-28
关键词:
Active SitesAddressAlternative SplicingApoptosisApoptoticArchitectureBiochemicalBiological AssayBortezomibCRISPR interferenceCell DeathCell LineCellsCellular biologyClinicalClinical TrialsComplexDataDiagnosisDiseaseEventExonsExposure toFDA approvedFamilyGeneticGenetic TranscriptionGoalsHeat shock proteinsHeat-Shock Proteins 70Hematologic NeoplasmsHematopoietic NeoplasmsImmunoglobulinsIntronsInvestigationKineticsLeadLongevityMalignant - descriptorMalignant NeoplasmsMass Spectrum AnalysisMediatingMethodsModificationMolecular ChaperonesMonitorMultiple MyelomaMutationOutcomePathway interactionsPatientsPharmaceutical PreparationsPharmacologyPhosphorylationPhysiologic pulsePlasma CellsPost-Translational Protein ProcessingProteasome InhibitionProteasome InhibitorProtein BiosynthesisProteinsProteomeProteomicsRNA SplicingRefractoryRelapseResistanceRoleSamplingSignal TransductionSpliceosomesSystemTherapeuticTimeTranscriptTreatment EfficacyUbiquitinbasecell typeclinically relevantcombatfollow-upfunctional genomicsgenomic dataimprovedin vivo Modelinhibitorinsightknock-downmRNA Precursormouse modelmulticatalytic endopeptidase complexneoplastic cellnovelnovel therapeutic interventionnovel therapeuticsphosphoproteomicspre-clinicalprotein degradationprotein foldingproteostasisresponsesmall molecule inhibitorsynergismtherapy resistanttooltranscriptome sequencingtreatment strategyvalosin-containing protein
中文摘要
项目摘要/摘要
多发性骨髓瘤是一种侵袭性的血液系统恶性肿瘤,尽管最近取得了进展,但仍无法治愈。
这种恶性浆细胞疾病从根本上与异常的蛋白质稳态有关,定义为
通过极高的免疫球蛋白合成负担。蛋白酶体抑制剂(PI)--广泛使用的一线药物
骨髓瘤的治疗被认为是通过增加未折叠蛋白来直接利用这种变异。
压力会导致细胞死亡。然而,这一机制还没有得到充分的证明,并进一步洞察了PI诱导
细胞死亡可能会导致更有效的组合策略。此外,PI耐药是一种主要的临床
骨髓瘤的问题,需要新的策略来克服这种情况。在这里,我们假设
治疗后浆细胞蛋白质组的重塑是PI反应和耐药的中心。我们
明确提出蛋白质组重构是通过蛋白平衡通路的重新连接来介导的,包括
伴侣、VCP/p97复合体和泛素-蛋白酶体系统,以及通过改变
另一种剪接景观,由剪接机械的翻译后修改所调节。至
探索这一假设,我们将利用新的药理学和遗传扰动工具,细胞
和生化分析,活体模型,临床试验基因组数据,初级样本分析,RNA测序,
和质谱学的方法。该提案的总体目标是:1)开发新的治疗策略
与PI结合或在PI-难熔环境中,以及2)描述一种新的、系统的方法来
探索蛋白质平衡网络的体系结构。重要的是,我们的初步结果挑战了现有的
与PI疗效相关的范式。在目标1中,我们解决了与未折叠蛋白质相关的矛盾发现。
反应,p97降解机制和PI之间的相互作用,以及诱导物的相关性
HSP-家庭监护人。我们将利用现有的新药理作用,包括活性部位
以及p97的变构抑制物和HSP70的变构抑制物,与功能遗传学通过
CRISPR干扰,以确定中央蛋白质稳态节点定义PI反应和
抵抗。此外,我们将利用我们在脉冲SILAC蛋白质组学方面的独特专业知识来确定特定的
存在临床相关耐药的p97机械和蛋白酶体的底物
修改。对于目标2,我们使用无偏质谱的初步研究揭示了
PI处理后剪接体显著磷酸化。我们首先的目标是描述两国关系的特征
特定的选择性剪接事件和PI后蛋白质组重构之间的关系。然后,我们的目标是延长我们的
有希望的初步数据表明,剪接抑制剂作为一种新的抗骨髓瘤疗法的有效性。
总体而言,这里的研究将对描绘令人惊讶的广泛的PI介导的范围产生直接影响
在浆细胞中的作用,验证了剪接抑制的新治疗策略,并揭示了新的机制
解剖蛋白平衡网络和替代剪接的方法可能远远超出骨髓瘤。
英文摘要
PROJECT SUMMARY/ABSTRACT
Multiple myeloma is an aggressive hematologic malignancy that remains incurable despite recent progress.
This disease of malignant plasma cells is fundamentally associated with aberrant protein homeostasis, defined
by an extremely high burden of immunoglobulin synthesis. Proteasome inhibitors (PIs), a widely-used first-line
therapy in myeloma, are thought to directly take advantage of this aberrancy by increasing unfolded protein
stress leading to cell death. However, this mechanism is not fully proven, and further insight into PI-induced
cell death may lead to more effective combination strategies. In addition, PI resistance is a major clinical
problem in myeloma, and new strategies are needed to overcome this condition. Here, we hypothesize that
the remodeling of the plasma cell proteome after therapy is central to both PI response and resistance. We
specifically propose that proteome remodeling is mediated through rewiring of proteostasis pathways involving
chaperones, the VCP/p97 complex, and the ubiquitin-proteasome system, as well as through changes to the
alternative splicing landscape, as mediated by post-translational modification of the splicing machinery. To
explore this hypothesis we will take advantage of novel pharmacologic and genetic perturbation tools, cellular
and biochemical assays, in vivo models, clinical trial genomic data, primary sample analysis, RNA sequencing,
and mass spectrometry approaches. The overall goals of this proposal are 1) develop new therapy strategies
either in combination with PIs or in the PI-refractory setting, and 2) describe a new, systematic approach to
probe the architecture of proteostasis networks. Importantly, our preliminary results challenge existing
paradigms related to PI efficacy. In Aim 1, we address paradoxical findings relating the unfolded protein
response, the interaction between the p97 degradation machinery and PIs, and the relevance of inducible
HSP-family chaperones. We will take advantage of novel pharmacology available to us, including active site
and allosteric inhibitors of p97 and allosteric inhibitors of HSP70, in combination with functional genetics by
CRISPR interference, to define the role of central protein homeostasis nodes defining PI response and
resistance. Furthermore, we will use our unique expertise in pulsed-SILAC proteomics to determine specific
substrates of the p97 machinery and the proteasome in the presence of clinically-relevant resistance
modifications. Toward Aim 2, our preliminary studies using unbiased mass spectrometry have revealed
significant phosphorylation of the spliceosome after PI treatment. We first aim to characterize the relationship
between specific alternative splicing events and proteome remodeling after PIs. We then aim to extend our
promising preliminary data demonstrating the efficacy of splicing inhibitors as a new anti-myeloma therapy.
Overall, the studies here will have a direct impact on delineating the surprisingly broad range of PI-mediated
effects in plasma cells, validate the novel therapeutic strategy of splicing inhibition, and reveal new mechanistic
approaches to dissect proteostasis networks and alternative splicing that could extend far beyond myeloma.
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海外基金