交变电场将错综复杂的肿瘤血管网络转化为有序的平行毛细血管,增强了贝伐珠单抗的抗血管生成效果。

IF 5.9 1区 生物学 Q2 CELL BIOLOGY
Lin Shen, Shuai Li, Yalin Wang, Yi Yin, Yiting Liu, Yunlei Zhang, Xuesheng Zheng
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引用次数: 0

摘要

寻找针对肿瘤血管生成的有效策略仍然是癌症研究的关键目标。我们提出了一种利用交变电场抑制肿瘤血管生成并提高贝伐珠单抗疗效的开创性方法。鸡绒毛膜、细胞活力和体外内皮管形成试验表明,频率为 1000 kHz、电强度为 0.6 V/cm 的电场可抑制血管内皮细胞的生长,抑制肿瘤诱导的血管生成。在动物 U87MG 胶质瘤模型中,1000 千赫的电场抑制了肿瘤血管生成并抑制了肿瘤生长。三维血管分析表明,对照组的肿瘤血管是一个粗壮、交织的网络。然而,电场将其转变为纤细、平行的毛细血管,这些毛细血管严格垂直于电场方向。这种结构的转变伴随着血管内皮细胞的凋亡和肿瘤血管数量的显著减少。此外,我们还发现电场的抗血管生成和肿瘤抑制作用与贝伐珠单抗具有协同作用。电场的抗血管生成机制包括破坏内皮细胞分裂过程中的纺锤体形成,以及下调环境中与血管生成相关的细胞因子,如白细胞介素-6、CXCL-1、2、3、5 和 8,以及基质金属蛋白酶。总之,我们的研究结果表明,交变电场(AEFs)作为一种治疗方式,具有阻碍血管生成和抑制癌症生长的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Alternating electric fields transform the intricate network of tumour vasculature into orderly parallel capillaries and enhance the anti-angiogenesis effect of bevacizumab.

Alternating electric fields transform the intricate network of tumour vasculature into orderly parallel capillaries and enhance the anti-angiogenesis effect of bevacizumab.

The search for effective strategies to target tumour angiogenesis remains a critical goal of cancer research. We present a pioneering approach using alternating electric fields to inhibit tumour angiogenesis and enhance the therapeutic efficacy of bevacizumab. Chicken chorioallantoic membrane, cell viability and in vitro endothelial tube formation assays revealed that electric fields with a frequency of 1000 kHz and an electric intensity of 0.6 V/cm inhibited the growth of vascular endothelial cells and suppressed tumour-induced angiogenesis. In an animal U87MG glioma model, 1000 kHz electric fields inhibited tumour angiogenesis and suppressed tumour growth. As demonstrated by 3D vessel analysis, tumour vasculature in the control group was a stout, interwoven network. However, electric fields transformed it into slim, parallel capillaries that were strictly perpendicular to the electric field direction. This architectural transformation was accompanied by apoptosis of vascular endothelial cells and a notable reduction in tumour vessel number. Additionally, we found that the anti-angiogenesis and tumour-suppression effects of electric fields synergised with bevacizumab. The anti-angiogenic mechanisms of electric fields include disrupting spindle formation during endothelial cell division and downregulating environmental angiogenesis-related cytokines, such as interleukin-6, CXCL-1, 2, 3, 5 and 8, and matrix metalloproteinases. In summary, our findings demonstrate the potential of alternating electric fields (AEFs) as a therapeutic modality to impede angiogenesis and restrain cancer growth.

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来源期刊
Cell Proliferation
Cell Proliferation 生物-细胞生物学
CiteScore
14.80
自引率
2.40%
发文量
198
审稿时长
1 months
期刊介绍: Cell Proliferation Focus: Devoted to studies into all aspects of cell proliferation and differentiation. Covers normal and abnormal states. Explores control systems and mechanisms at various levels: inter- and intracellular, molecular, and genetic. Investigates modification by and interactions with chemical and physical agents. Includes mathematical modeling and the development of new techniques. Publication Content: Original research papers Invited review articles Book reviews Letters commenting on previously published papers and/or topics of general interest By organizing the information in this manner, readers can quickly grasp the scope, focus, and publication content of Cell Proliferation.
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