微流控芯片上的血管化肿瘤,研究促进肿瘤新生血管和血管靶向治疗的机制。

IF 12.4 1区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Theranostics Pub Date : 2025-01-01 DOI:10.7150/thno.95334
Magdalena Skubal, Benedict Mc Larney, Ngan Bao Phung, Juan Carlos Desmaras, Abdul Vehab Dozic, Alessia Volpe, Anuja Ogirala, Camila Longo Machado, Jakob Djibankov, Vladimir Ponomarev, Jan Grimm
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引用次数: 0

摘要

导致肿瘤形成的一系列事件包括肿瘤支持新血管系统的诱导,这是癌症的主要标志。血管的发育很难在体内评估,但可以通过微流控芯片技术和患者来源的细胞来捕获。在此,我们建立了一种芯片方法,通过在三维环境中共同培养肿瘤球体和内皮细胞来研究促进肿瘤血管化和血管靶向治疗的机制。方法:我们通过在市卖的微流控芯片系统上共同培养人源性内皮细胞和邻近的转移性肾细胞癌球体来研究肿瘤的新生血管和治疗。转移性肾细胞癌球体邻近原发血管形成肿瘤模型,并诱导血管向肿瘤方向新生血管。我们监测血管形成的实时变化,探索肿瘤和内皮细胞的相互作用,并评估重要效应器在肿瘤血管系统中的作用。除了野生型内皮细胞外,我们还评估了过度表达前列腺特异性膜抗原(PSMA)的内皮细胞,PSMA已成为肿瘤相关血管的标志物。我们在微流控芯片上通过强化培养基刺激和研究转移性肾细胞癌来表征新生血管的过程,并通过共聚焦显微镜成像评估内皮细胞对贝伐单抗血管靶向治疗的反应。为了强调芯片转移性肾细胞癌的潜在临床相关性,我们将贝伐单抗芯片治疗与同一肿瘤的体内模型进行了比较。结果:我们的模型允许实时、高分辨率地观察和评估肿瘤诱导的血管生成,其中内皮细胞向肿瘤生长并模拟血管网络。贝伐单抗是一种抗血管生成药物,破坏血管和肿瘤之间的相互作用,破坏血管网络。芯片方法可以评估内皮细胞生物学、血管功能、药物传递和PSMA的分子表达。结论:芯片上血管化肿瘤的观察可以在几周内直接和结论性地量化血管靶向治疗,而不是在可比的动物模型中数月,并且弥合了体外和体内模型之间的差距。
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Vascularized tumor on a microfluidic chip to study mechanisms promoting tumor neovascularization and vascular targeted therapies.

The cascade of events leading to tumor formation includes induction of a tumor supporting neovasculature, as a primary hallmark of cancer. Developing vasculature is difficult to evaluate in vivo but can be captured using microfluidic chip technology and patient derived cells. Herein, we established an on chip approach to investigate the mechanisms promoting tumor vascularization and vascular targeted therapies via co-culture of cancer spheroids and endothelial cells in a three dimensional environment. Methods: We investigated both, tumor neovascularization and therapy, via co-culture of human derived endothelial cells and adjacently localized metastatic renal cell carcinoma spheroids on a commercially available microfluidic chip system. Metastatic renal cell carcinoma spheroids adjacent to primary vessels model tumor, and induce vessels to sprout neovasculature towards the tumor. We monitored real time changes in vessel formation, probed the interactions of tumor and endothelial cells, and evaluated the role of important effectors in tumor vasculature. In addition to wild type endothelial cells, we evaluated endothelial cells that overexpress Prostate Specific Membrane Antigen (PSMA), that has emerged as a marker of tumor associated neovasculature. We characterized the process of neovascularization on the microfluidic chip stimulated by enhanced culture medium and the investigated metastatic renal cell carcinomas, and assessed endothelial cells responses to vascular targeted therapy with bevacizumab via confocal microscopy imaging. To emphasize the potential clinical relevance of metastatic renal cell carcinomas on chip, we compared therapy with bevacizumab on chip with an in vivo model of the same tumor. Results: Our model permitted real-time, high-resolution observation and assessment of tumor-induced angiogenesis, where endothelial cells sprouted towards the tumor and mimicked a vascular network. Bevacizumab, an antiangiogenic agent, disrupted interactions between vessels and tumors, destroying the vascular network. The on chip approach enabled assessment of endothelial cell biology, vessel's functionality, drug delivery, and molecular expression of PSMA. Conclusion: Observations in the vascularized tumor on chip permitted direct and conclusive quantification of vascular targeted therapies in weeks as opposed to months in a comparable animal model, and bridged the gap between in vitro and in vivo models.

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来源期刊
Theranostics
Theranostics MEDICINE, RESEARCH & EXPERIMENTAL-
CiteScore
25.40
自引率
1.60%
发文量
433
审稿时长
1 months
期刊介绍: Theranostics serves as a pivotal platform for the exchange of clinical and scientific insights within the diagnostic and therapeutic molecular and nanomedicine community, along with allied professions engaged in integrating molecular imaging and therapy. As a multidisciplinary journal, Theranostics showcases innovative research articles spanning fields such as in vitro diagnostics and prognostics, in vivo molecular imaging, molecular therapeutics, image-guided therapy, biosensor technology, nanobiosensors, bioelectronics, system biology, translational medicine, point-of-care applications, and personalized medicine. Encouraging a broad spectrum of biomedical research with potential theranostic applications, the journal rigorously peer-reviews primary research, alongside publishing reviews, news, and commentary that aim to bridge the gap between the laboratory, clinic, and biotechnology industries.
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