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钙离子增强肺癌生长抑制作用:中高频电场脉冲的作用

Enhancing lung cancer growth inhibition with calcium ions: Role of mid- and high-frequency electric field pulses.

作者信息

Rembiałkowska Nina, Kucharczyk Julia, Radzevičiūtė-Valčiukė Eivina, Novickij Vitalij, Tonci Margherita, Dündar Ata, Kulbacka Julita, Szlasa Wojciech

机构信息

Wroclaw Medical University, Faculty of Pharmacy, Department of Molecular and Cellular Biology, Wroclaw, Poland.

The Students' Research Group, UMW, SKN No. 148, Wroclaw Medical University, Faculty of Pharmacy, Department of Molecular and Cellular Biology, Wroclaw, Poland.

出版信息

Biomed Pharmacother. 2024 Dec;181:117691. doi: 10.1016/j.biopha.2024.117691. Epub 2024 Nov 17.

Abstract

Calcium electroporation (CaEP) involves the combination of calcium ions with electroporation, which is induced by pulsed electric fields (PEFs). This study explores the application of high-frequency unipolar nanosecond pulsed electric fields (nsPEFs: 8-14 kV/cm, 200 ns, 10 kHz, 100 kHz, 1 MHz repetition frequency pulse bursts, n = 100) and their potential in inhibiting lung cancer cell growth. As a reference, standard microsecond range parametric protocols were used (100 µs x 8 pulses). Methods included cell permeability quantification through Yo-Pro-1 uptake, cell viability assays, immunofluorescence studies for apoptosis and EMT markers, analysis of cell death types depending on repetition frequency pulse bursts. We determined the susceptibility of human lung cancer to electric pulses, characterized the efficacy of CaEP, and investigated cell death types depending on repetition frequency pulse bursts. We have shown that adding calcium ions to the applied nsPEF protocol increases cytotoxicity. Additionally, the use of these electroporation parameters can modulate key cellular processes, such as the epithelial-mesenchymal transition and apoptosis, as indicated by changes in the expression of markers such as E-cadherin, N-cadherin, BCL-2, and p53. Changes in cell morphology over time were observed using holotomographic microscopy. The study provides insights into the modulation of key cellular processes, indicating that nsPEF technology could improve the outcomes of conventional cancer treatments through enhanced efficacy and potentially mitigating drug resistance mechanisms. The promising results advocate for further research to optimize nsPEF protocols for clinical application, highlighting the potential of electrical fields in advancing cancer therapy.

摘要

钙电穿孔(CaEP)涉及钙离子与由脉冲电场(PEF)诱导的电穿孔相结合。本研究探索了高频单极纳秒脉冲电场(nsPEF:8 - 14 kV/cm,200 ns,10 kHz,100 kHz,1 MHz重复频率脉冲串,n = 100)的应用及其在抑制肺癌细胞生长方面的潜力。作为对照,使用了标准微秒范围的参数方案(100 µs×8个脉冲)。方法包括通过Yo-Pro-1摄取进行细胞通透性定量、细胞活力测定、针对凋亡和上皮-间质转化(EMT)标志物的免疫荧光研究、根据重复频率脉冲串分析细胞死亡类型。我们确定了人肺癌对电脉冲的敏感性,表征了CaEP的疗效,并研究了根据重复频率脉冲串的细胞死亡类型。我们已经表明,在所应用的nsPEF方案中添加钙离子会增加细胞毒性。此外,如E-钙黏蛋白、N-钙黏蛋白、BCL-2和p53等标志物表达的变化所示,使用这些电穿孔参数可以调节关键的细胞过程,如上皮-间质转化和凋亡。使用全息断层显微镜观察了细胞形态随时间的变化。该研究为关键细胞过程的调节提供了见解,表明nsPEF技术可以通过提高疗效和潜在减轻耐药机制来改善传统癌症治疗的结果。这些有前景的结果倡导进一步研究以优化nsPEF方案用于临床应用,突出了电场在推进癌症治疗方面的潜力。

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