骨髓瘤间充质干细胞的生物能为新型选择性治疗提供了靶点

IF 5.9 2区 医学 Q1 ONCOLOGY
Oded Komemi, Elina Orbuch, Osnat Jarchowsky-Dolberg, Yaron Shraga Brin, Shelly Tartakover-Matalon, Metsada Pasmanik-Chor, Michael Lishner, Liat Drucker
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引用次数: 0

摘要

骨髓间充质干细胞(BM-MSCs)依赖于糖酵解,但其运输的线粒体在再生和癌变环境中有益于受体细胞的生物能量学,这与BM-MSCs中的多发性骨髓瘤(MM)细胞最为相关。裂变/融合动力学调节线粒体功能。蛋白质组学显示,与正常供体(ND)相比,来自MM患者的BM-MSCs中线粒体过程过多。因此,我们旨在表征BM-MSCs (ND, MM)线粒体适应度,生物能量学和动力学,重点是治疗方法。MM-MSCs显示线粒体受损,线粒体膜电位降低(ΔΨm)和质子泄漏升高。这伴随着应激应对机制的刺激:备用呼吸能力(SRC)、线粒体融合和UPRmt。干扰骨髓间充质干细胞线粒体动力学平衡对生物能量学和适应度具有重要意义。而ND-MSCs依赖于裂变,减少MM-MSCs融合会减弱糖酵解、OXPHOS和mtROS。有趣的是,仅在MM-MSCs中,mtROS水平的优化是ΔΨm保存的核心。MM-MSCs也表现出STAT3激活,其调控OXPHOS和SRC。Venetoclax靶向MM- msc SRC,降低了MM细胞的前支持,并使共培养的MM细胞对硼替佐米敏感。总的来说,MM-MSCs独特的线粒体生物能量学是其稳健性的组成部分。将Venetoclax与常规抗mm药物联合用于抗src治疗,为靶向MM-MSCs产生耐药性提供了一种潜在的选择性方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Myeloma mesenchymal stem cells’ bioenergetics afford a novel selective therapeutic target

Myeloma mesenchymal stem cells’ bioenergetics afford a novel selective therapeutic target

Bone-marrow mesenchymal stem cells (BM-MSCs) rely on glycolysis, yet their trafficked mitochondria benefit recipient cells’ bioenergetics in regenerative and cancerous settings, most relevant to BM-resident multiple myeloma (MM) cells. Fission/fusion dynamics regulate mitochondria function. Proteomics demonstrates excessive mitochondrial processes in BM-MSCs from MM patients compared to normal donors (ND). Thus, we aimed to characterize BM-MSCs (ND, MM) mitochondrial fitness, bioenergetics and dynamics with a focus on therapeutics. MM-MSCs displayed compromised mitochondria evidenced by decreased mitochondrial membrane potential (ΔΨm) and elevated proton leak. This was accompanied by stimulation of stress-coping mechanisms: spare respiratory capacity (SRC), mitochondrial fusion and UPRmt. Interfering with BM-MSCs mitochondrial dynamics equilibrium demonstrated their significance to bioenergetics and fitness according to the source. While ND-MSCs depended on fission, reducing MM-MSCs fusion attenuated glycolysis, OXPHOS and mtROS. Interestingly, optimization of mtROS levels is central to ΔΨm preservation in MM-MSCs only. MM-MSCs also demonstrated STAT3 activation, which regulates their OXPHOS and SRC. Targeting MM-MSC’ SRC with Venetoclax diminished their pro-MM support and sensitized co-cultured MM cells to Bortezomib. Overall, MM-MSCs distinct mitochondrial bioenergetics are integral to their robustness. Repurposing Venetoclax as anti-SRC treatment in combination with conventional anti-MM drugs presents a potential selective way to target MM-MSCs conferred drug resistance.

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来源期刊
Oncogenesis
Oncogenesis ONCOLOGY-
CiteScore
11.90
自引率
0.00%
发文量
70
审稿时长
26 weeks
期刊介绍: Oncogenesis is a peer-reviewed open access online journal that publishes full-length papers, reviews, and short communications exploring the molecular basis of cancer and related phenomena. It seeks to promote diverse and integrated areas of molecular biology, cell biology, oncology, and genetics.
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