纳秒脉冲电场抑制乳腺癌发展,抑制肿瘤血管生长

Shan Wu, Yu Wang, Jinsong Guo, Qunzhi Chen, Jue Zhang, Jing Fang
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引用次数: 1

摘要

乳腺癌是女性中最具威胁性的恶性肿瘤之一,其发病率呈逐年上升趋势。尽管早期筛查和乳腺癌管理的改善提高了5年生存率,但对新的更有效的乳腺癌治疗方法的需求仍然非常迫切。近几十年来,纳秒脉冲电场(NsPEFs)已被证明能够诱导多种癌症的细胞凋亡和肿瘤抑制。本研究利用MCF-7细胞系在Balb/c裸鼠身上建立乳腺癌动物模型。在放置肿瘤的两个夹片之间产生超过30kV/cm的电场。连续3天用nsPEFs治疗肿瘤,第0天为nsPEFs治疗结束日。治疗后2周内观察到肿瘤生长明显受到抑制。脉冲肿瘤的平均体积和重量几乎是未脉冲肿瘤的1/9。自制表面线圈3.0T临床磁共振成像(MRI)系统在第0天、第7天、第14天观察形态学变化,肿瘤缩小。H&E染色观察nsPEFs对肿瘤细胞凋亡和出血性坏死的影响。免疫组织学检查显示VEGF在肿瘤细胞中的表达受到强烈抑制。计算肿瘤血管密度,发现nsPEFs治疗后肿瘤血管密度降低。结果提示,nsPEFs可以抑制乳腺癌的发展,抑制肿瘤血管的生长,这可能是未来治疗乳腺癌的一种新方法。
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Nanosecond pulsed electric fields inhibit breast cancer development and suppress tumor blood vessel growth
Breast cancer is one of the most threatening malignant tumors among women, the incidence of which is rising year by year. Despite of early screening and improvement in breast cancer management that have increased the 5-year survive rate, the requirement for novel and more efficient therapy for breast cancer is still quite urgent. In the recent decades, nanosecond pulsed electric fields, known as NsPEFs, have been proved to be able to induce cell apoptosis and tumor inhibition in various cancers. In this study, we established breast cancer animal model with MCF-7 cell line on Balb/c nude mice. An electric field over 30kV/cm was generated between to the two pads of the clamp, where the tumor was placed. Tumors were treated with nsPEFs on three consecutive days, and day 0 was set as the day when nsPEFs treatment was finished. Within 2 weeks after treatment, it was observed that tumor growth was significantly inhibited. The average volume and weight of pulsed tumors was almost 1/9 of that of unpulsed tumors. Morphological changes were observed in a 3.0T clinical magnetic resonance imaging (MRI) system with an own-made surface coil on day0, day7 and day14, which showed the shrinkage of the tumors. Apoptosis and hemorrhagic necrosis in tumor cells were inspected after nsPEFs treatement by H&E staining. Immuno-histological tests indicated VEGF expression in tumor cells was strongly suppressed. Tumor blood vessel density was calculated and found decreased after nsPEFs treatment. The results suggest nsPEFs can inhibit breast cancer development and suppress tumor blood vessel growth, which may serve as a novel therapy for breast cancer in the future.
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