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气体等离子体氧化氯化钠通过过氧化氢作用于腹膜癌转移模型。

Gas plasma-oxidized sodium chloride acts via hydrogen peroxide in a model of peritoneal carcinomatosis.

机构信息

ZIK plasmatis, Leibniz Institute for Plasma Science and Technology, 17489 Greifswald, Germany.

Department of General, Visceral, Thoracic, and Vascular Surgery, Greifswald University Medical Center, 17475 Greifswald, Germany.

出版信息

Proc Natl Acad Sci U S A. 2022 Aug 2;119(31):e2200708119. doi: 10.1073/pnas.2200708119. Epub 2022 Jul 28.

Abstract

Gas plasma technology generates reactive oxygen and nitrogen species (ROS/RNS), inducing lethal oxidative damage in tumor cells. The transfer of gas plasma-derived ROS/RNS into liquids has been proposed as an innovative anti-cancer strategy targeting peritoneal carcinomatosis (PC). However, the mechanism of action is under debate. To this end, we compared gas plasma-oxidized medical-grade sodium chloride (oxNaCl) with a concentration-matched control (cmc) of NaCl enriched with equivalent concentrations of HO and NO in several cell lines and models of PC. Strikingly, oxNaCl and cmc performed equally well in oxidation and cytotoxic activity in tumor cells in two-dimensional cultures, three-dimensional (3D) tumor spheroids, vascularized 3D tumors grown on chicken-embryo chorioallantoic membranes, and a syngeneic PC mouse model in vivo. Given the importance of immunotherapies in oncology today, we focused on immunological consequences of the treatment. Again, to a similar extent, oxNaCl and cmc increased tumor cell immunogenicity and enhanced uptake by and maturation of peripheral blood monocyte-derived dendritic cells together with an inflammatory secretion profile. Furthermore, NanoString gene expression profiling revealed immune system processes and unfolded protein response-related pathways as being linked to the observed anti-tumor effects for both oxNaCl and cmc. In conclusion, gas plasma-generated oxNaCl and cmc showed equal therapeutic efficacy in our PC-related models. In light of the many promising anti-cancer studies of gas plasma-oxidized liquids and the convenient production of corresponding cmcs in large quantities as needed in clinics, our findings may spur research lines based on low-dose oxidants in peritoneal cancer therapy.

摘要

气体等离子体技术产生活性氧和氮物种(ROS/RNS),诱导肿瘤细胞发生致命的氧化损伤。将气体等离子体衍生的 ROS/RNS 转移到液体中已被提议作为一种针对腹膜癌转移(PC)的创新抗癌策略。然而,其作用机制仍存在争议。为此,我们比较了气体等离子体氧化的医用氯化钠(oxNaCl)与浓度匹配的对照(cmc),后者是通过向 NaCl 中添加等效浓度的 HO 和 NO 来富集的。令人惊讶的是,oxNaCl 和 cmc 在二维培养物、三维(3D)肿瘤球体、在鸡胚绒毛尿囊膜上生长的血管化 3D 肿瘤以及体内同源性 PC 小鼠模型中,对肿瘤细胞的氧化和细胞毒性活性具有同等的作用。鉴于当今肿瘤学中免疫疗法的重要性,我们专注于治疗的免疫学后果。同样,oxNaCl 和 cmc 以相似的程度增加了肿瘤细胞的免疫原性,并增强了外周血单核细胞衍生的树突状细胞的摄取和成熟,同时伴随着炎症分泌谱。此外,NanoString 基因表达谱分析显示,免疫系统过程和未折叠蛋白反应相关途径与 oxNaCl 和 cmc 观察到的抗肿瘤作用相关。总之,在我们的 PC 相关模型中,气体等离子体产生的 oxNaCl 和 cmc 表现出同等的治疗效果。鉴于气体等离子体氧化液体的许多有前途的抗癌研究以及在临床中根据需要大量方便地生产相应 cmc 的能力,我们的发现可能会激发基于低剂量氧化剂的腹膜癌治疗的研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5fc2/9351543/2d0443169e87/pnas.2200708119fig01.jpg

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