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用于潜在卵巢癌治疗的冷等离体等离子体激活介质。

Cold atmospheric plasma-activated medium for potential ovarian cancer therapy.

机构信息

Department of Obstetrics and Gynaecology, Hayatabad Medical Complex, Peshawar, Pakistan.

Physics and Astronomy Department, Ohio University, Athens, OH, USA.

出版信息

Mol Biol Rep. 2024 Jul 23;51(1):834. doi: 10.1007/s11033-024-09795-w.

Abstract

Cold atmospheric plasma (CAP) has emerged as an innovative tool with broad medical applications, including ovarian cancer (OC) treatment. By bringing CAP in close proximity to liquids such as water or cell culture media, solutions containing reactive oxygen species (ROS) and reactive nitrogen species (RNS) are generated, called plasma-activated media (PAM). In this systematic review, we conduct an in-depth analysis of studies focusing on PAM interactions with biological substrates. We elucidate the diverse mechanisms involved in the activation of different media and the complex network of chemical reactions underlying the generation and consumption of the prominent reactive species. Furthermore, we highlight the promises of PAM in advancing biomedical applications, such as its stability for extended periods under appropriate storage conditions. We also examine the application of PAM as an anti-cancer and anti-metastatic treatment for OC, with a particular emphasis on its ability to induce apoptosis via distinct signaling pathways, inhibit cell growth, suppress cell motility, and enhance the therapeutic effects of chemotherapy. Finally, the future outlook of PAM therapy in biomedical applications is speculated, with emphasis on the safety issues relevant to clinical translation.

摘要

低温大气压等离子体(CAP)作为一种具有广泛医学应用的创新工具而出现,包括卵巢癌(OC)治疗。通过使 CAP 与水或细胞培养基等液体接近,会产生含有活性氧(ROS)和活性氮(RNS)的溶液,称为等离子体激活介质(PAM)。在本系统评价中,我们对专注于 PAM 与生物底物相互作用的研究进行了深入分析。我们阐明了不同介质激活所涉及的不同机制,以及在主要活性物质的产生和消耗背后的化学反应的复杂网络。此外,我们强调了 PAM 在推进生物医学应用方面的前景,例如在适当的储存条件下,其在延长时间内的稳定性。我们还研究了 PAM 作为 OC 的抗癌和抗转移治疗的应用,特别强调了它通过不同的信号通路诱导细胞凋亡、抑制细胞生长、抑制细胞迁移以及增强化疗疗效的能力。最后,我们推测了 PAM 疗法在生物医学应用中的未来前景,重点关注与临床转化相关的安全问题。

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