INVESTIGATING eNAMPT ROLE IN ACQUISITION OF EPITHELIAL TO MESENCHYMAL TRANSITION-LIKE FEATURES IN MULTIPLE MYELOMA
试验速览
- 阶段
- 不适用
- 状态
- 已完成
- 发起方
- 入组人数
- 26
- 试验地点
- 1
- 主要终点
- To strengthen preliminary data
研究概览
简要总结
Based on our previous observations, here the investigator plans to further investigate eNAMPT in MM biology and to establish its role in disease progression where EMT acquisition represents an hallmark of cancers. Results deriving from proposal would hopefully identify novel biological vulnerabilities of such malignancy and an innovative biomarker for disease progression monitoring as well.
详细描述
Background and preliminary data:
Multiple myeloma (MM) is characterized by a clonal expansion of malignant plasma cells in the bone marrow (BM) with a continuous spread of tumour cells in and out of BM. A continuous interaction between BM stromal cells (BMSCs) and MM cells supports proliferation, survival, migration, and drug resistance of tumor cells. Indeed, BMSCs by both cytokines production and cell-cell interactions, control the ability of MM cells to enter into bloodstream, leading to homing or extravasation of clonal cells into distant tissues, which in turn results in new BM niches formation.
The epithelial-to-mesenchymal transition (EMT) is a biological phenomenon by which epithelial cells can switch into a mesenchymal phenotype through the disruption of cell-cell adhesion and cellular polarity, remodeling of cytoskeleton and changing cell-matrix adhesion. Overall, these events lead to improved migratory and invasive properties of affected cells. Remarkably, EMT occurs physiologically during normal embryonic development and tissue regeneration but, in cancer cell, it has been associated with tumor aggressiveness features including invasion, metastasis, stemness and drug-resistance. EMT is commonly observed in solid tumors but it has been recently described also in MM. In such a context, studies have shown that BM niches-associated hypoxia produces MM cells egress and dissemination through acquisition of EMT-like features which in turn, by increasing CXCR4 expression, produces extra-medullary disease (EMD) development.
Alterations in cell metabolism have emerged as one of the hallmarks of cancer that could be possibly targeted by novel therapeutic approaches. Among these alterations, biosynthesis of nicotinamide adenine dinucleotide (NAD+) is emerging as novel therapeutic target in tumours. Nicotinamide phosphorybosyltransferase (NAMPT), the rate-limiting enzyme for NAD+ production from nicotinamide (NAM) in mammalian cells, is frequently up-regulated in cancers, including MM, and its relevance as potential therapeutic target has been widely explored by our group. However, beside its intracellular activity as key metabolic enzyme, NAMPT is also present in the extracellular milieu where it exerts cytokine/adipokine-like actions as eNAMPT. Although mechanisms underlying eNAMPT secretion still remain to be elucidated, it is commonly accepted that there is positive correlation between eNAMPT secretion and intracellular NAMPT levels. Recent evidences show that eNAMPT plasma levels are significantly higher in cancer patients in comparison with healthy donors in several hematologic and solid neoplasms. In this context, eNAMPT was found to exert pro-tumorigenic effects such as promoting cancer cell proliferation and colonies formation, conferring resistance to apoptosis and shaping of tumour microenviroment, by promoting neo-angiogenesis and affecting immune response.
The Investigators recently demonstrated the pivotal role played by eNAMPT in the acquisition of EMT in human breast cancer cells. In detail, NAMPT overexpression promotes acquisition of fibroblast-like morphology of cancer cells by reducing E-cadherin expression in association with N-cadherin, Vimentin and ZEB1 upregulation. Importantly, NAMPT-induced EMT is not associated with NAMPT enzymatic activity and neither with its product levels nicotinamide mononucleotide (NMN). On the contrary, EMT seems to be mediated by eNAMPT through its ability to activate TGFβ signaling pathway via increased TGFβ1 production.
研究设计
- 研究类型
- Observational
- 观察模型
- Other
- 时间视角
- Other
入排标准
- 年龄范围
- 18 Years 至 —(Adult, Older Adult)
- 性别
- All
- 接受健康志愿者
- 否
入选标准
- •Male and female patients over 18 years of age;
- •PB-derived serum samples collected in different disease phases (MGUS, SMM, NDMM and RRMM MM patients)
- •Sufficient CD138+ cells or RNA from CD138+ cells are available;
- •≥ 2 years median survival data and treatment data is available (progression free and overall survival);
- •Bone marrow sample acquired prior to the initiation of the therapy of interest;
- •Patients have consented for use of their sample for research purposes.
排除标准
- 未提供
结局指标
主要结局
To strengthen preliminary data
时间窗: 2 years
To strengthen preliminary data and to investigate the correlation between eNAMPT levels in BM and peripheral blood (PB) compartments by assessing its concentration in paired samples collected from a larger cohort of NDMM patients, using also more HDs as control.
Potential marker of PD
时间窗: 2 years
To disclose eNAMPT relevance as potential marker of disease progression by comparing eNAMPT plasmatic levels from samples collected in different phases of disease (MGUS, Smoldering Multiple Myeloma -SMM-, NDMM, relapsed/refractory MM) and by their correlation with available clinical data.
Analysis both MM cells and MM-BMSC compartment.
时间窗: 2 years
To investigate cellular source of eNAMPT production in MM by analyzing both MM cells (Established Human Myeloma Cell Lines, HMCLs and primary CD138+ cells) and MM-BMSC compartment.
To investigate eNAMPT role
时间窗: 2 years
To investigate eNAMPT role in EMT features acquisition of HMCLs (with known molecular features such as karyotype status, mutations, drug-resistance phenotype etc.) and to define the underlying molecular mechanisms.
To determine the effects
时间窗: 2 years
To determine the effects of previously identified neutralizing αeNAMPT antibody (Ab) (13) on MM cells both in vitro and in an in vivo MM-xenografted mouse model.
次要结局
未报告次要终点
研究者
Dr. Alessandra Larocca
Principal Investigator
University of Turin, Italy
