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通过电容耦合等离子体芯片实现基于流体操控的活性氧氮物种多重剂量递送以增强剂量优化

Fluidic-manipulation-enabled multiplexed dose delivery of RONS by a CAP chip for dose optimization enhancement.

作者信息

Wang Fang, Zhou Liangyu, Guo Wei, Lin Haisong, Zhang Ruotong, Kuang Shaolong, Liu Yuan, Fan Xiaoxue, Chan Yau Kei, Deng Hui, Shum Ho Cheung

机构信息

Department of Mechanical Engineering, The University of Hong Kong, Hong Kong SAR, China.

Department of Mechanical and Energy Engineering, Southern University of Science and Technology, Shenzhen, China.

出版信息

Microsyst Nanoeng. 2025 Jun 16;11(1):123. doi: 10.1038/s41378-025-00974-8.

Abstract

The plasma-derived reactive oxygen and nitrogen species (RONS) enable cold atmospheric plasma (CAP) to combat cancer and infectious wounds. Achieving therapeutic outcomes with CAP necessitates precise treatment doses. Current CAP devices are constrained by their capability of delivering a single dose to a single sample, limiting dose optimization. We propose a novel "one exposure, multiple-dose delivery" strategy by programming gas flows. This approach facilitates efficient screening of optimal CAP dose by distributing feed gas through boundary-conditioned transport channels to generate multiple, flux-varied gas streams, which ignite plasmas with diverse chemical compositions and dose gradients across samples. Our developed demonstration device, capable of administering three doses to sixteen samples, significantly reduces experimental complexity, particularly when handling large candidate doses or samples for treatment. Leveraging multiplexed treatment, we capably optimize the CAP dose to effectively eradicate the liver cancer cell line of Huh7 and bacteria of S. aureus within one exposure. Furthermore, we find manipulating gas flow velocities allows targeted generation of short-lived species. This approach disentangles the roles of short-lived and long-lived RONS in therapeutic applications, offering critical insights into their bio-functional mechanisms. The concept of multiplexed dose treatment with fluidic manipulation promises to catalyze the development of high-efficiency CAP devices and advance research in CAP-based therapies.

摘要

血浆衍生的活性氧和氮物种(RONS)使冷大气等离子体(CAP)能够对抗癌症和感染性伤口。使用CAP实现治疗效果需要精确的治疗剂量。当前的CAP设备受到其向单个样本输送单剂量能力的限制,限制了剂量优化。我们通过对气流进行编程提出了一种新颖的“一次暴露,多剂量输送”策略。这种方法通过将原料气通过边界条件传输通道进行分配,以产生多个通量变化的气流,从而在样本上点燃具有不同化学成分和剂量梯度的等离子体,有助于高效筛选最佳CAP剂量。我们开发的演示设备能够对16个样本施用三剂,显著降低了实验复杂性,特别是在处理大量候选剂量或用于治疗的样本时。利用多重处理,我们能够在一次暴露内优化CAP剂量,以有效根除Huh7肝癌细胞系和金黄色葡萄球菌。此外,我们发现操纵气流速度可实现对短寿命物种的靶向生成。这种方法厘清了短寿命和长寿命RONS在治疗应用中的作用,为其生物功能机制提供了关键见解。流体操作的多重剂量治疗概念有望推动高效CAP设备的开发,并推进基于CAP的疗法的研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8a8e/12167743/7194a2721196/41378_2025_974_Fig1_HTML.jpg

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