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Published on: May 3, 2024
Cutaneous papilloma and squamous cell carcinoma therapy utilizing nanosecond pulsed electric fields (nsPEF)
Dong Yin1, Wangrong G Yang, Jack Weissberg
1Division of Hematology/Oncology, Cedars-Sinai Medical Center, University of California Los Angeles School of Medicine, Los Angeles, California, United States of America. yin_dong@yahoo.com
Abstract:
Nanosecond pulsed electric fields (nsPEF) induce apoptotic pathways in human cancer cells. The potential therapeutic effective of nsPEF has been reported in cell lines and in xenograft animal tumor model. The present study investigated the ability of nsPEF to cause cancer cell death in vivo using carcinogen-induced animal tumor model, and the pulse duration of nsPEF was only 7 and 14 nano second (ns). An nsPEF generator as a prototype medical device was used in our studies, which is capable of delivering 7-30 nanosecond pulses at various programmable amplitudes and frequencies. Seven cutaneous squamous cell carcinoma cell lines and five other types of cancer cell lines were used to detect the effect of nsPEF in vitro. Rate of cell death in these 12 different cancer cell lines was dependent on nsPEF voltage and pulse number. To examine the effect of nsPEF in vivo, carcinogen-induced cutaneous papillomas and squamous cell carcinomas in mice were exposed to nsPEF with three pulse numbers (50, 200, and 400 pulses), two nominal electric fields (40 KV/cm and 31 KV/cm), and two pulse durations (7 ns and 14 ns). Carcinogen-induced cutaneous papillomas and squamous carcinomas were eliminated efficiently using one treatment of nsPEF with 14 ns duration pulses (33/39 = 85%), and all remaining lesions were eliminated after a 2nd treatment (6/39 = 15%). 13.5% of carcinogen-induced tumors (5 of 37) were eliminated using 7 ns duration pulses after one treatment of nsPEF. Associated with tumor lysis, expression of the anti-apoptotic proteins Bcl-xl and Bcl-2 were markedly reduced and apoptosis increased (TUNEL assay) after nsPEF treatment. nsPEF efficiently causes cell death in vitro and removes papillomas and squamous cell carcinoma in vivo from skin of mice. nsPEF has the therapeutic potential to remove human squamous carcinoma.
Insights
Nanosecond pulsed electric fields (nsPEF) effectively eliminate skin tumors in mice by inducing cancer cell death. This novel therapeutic approach shows significant potential for treating human squamous cell carcinoma.
Area of Science:
- Biomedical Engineering
- Oncology
- Cell Biology
Background:
- Nanosecond pulsed electric fields (nsPEF) are known to induce apoptosis in cancer cells.
- Previous studies demonstrated nsPEF efficacy in cell lines and animal tumor models.
- The therapeutic potential of nsPEF for cancer treatment warrants further investigation.
Purpose of the Study:
- To investigate the in vivo efficacy of nsPEF in eliminating carcinogen-induced skin tumors in mice.
- To evaluate the impact of varying nsPEF parameters (pulse duration, electric field, pulse number) on tumor regression.
- To assess the molecular mechanisms underlying nsPEF-induced cancer cell death.
Main Methods:
- In vitro studies on 12 cancer cell lines to determine nsPEF-induced cell death rates.
- In vivo experiments using carcinogen-induced cutaneous papillomas and squamous cell carcinomas in mice.
- Exposure of tumors to nsPEF with controlled pulse durations (7 ns, 14 ns), electric fields (40 KV/cm, 31 KV/cm), and pulse numbers (50, 200, 400).
- Assessment of tumor elimination rates and molecular markers of apoptosis (Bcl-xl, Bcl-2, TUNEL assay).
Main Results:
- nsPEF treatment, particularly with 14 ns pulses, efficiently eliminated carcinogen-induced skin tumors in mice (85% after one treatment, 100% after two).
- A 7 ns pulse duration showed a lower elimination rate (13.5% after one treatment).
- nsPEF treatment led to reduced expression of anti-apoptotic proteins (Bcl-xl, Bcl-2) and increased apoptosis.
Conclusions:
- nsPEF is an effective method for inducing cancer cell death in vitro and in vivo.
- 14 ns pulsed electric fields demonstrate high efficacy in eliminating skin papillomas and squamous cell carcinomas in mice.
- nsPEF holds significant therapeutic potential for treating human squamous cell carcinoma.
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