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Cold atmospheric plasma modulates immune signaling pathways and macrophage polarization in infection and cancer modelsCold atmospheric plasma may help fight infection and heal wounds

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Key Takeaway
Note that cold atmospheric plasma impacts immune signaling, but evidence for specific inflammasome subtypes is limited.

This narrative review synthesizes experimental evidence regarding the effects of cold atmospheric plasma (CAP) on immune signaling and cellular responses in the context of infection, wound healing, inflammation, and cancer. The authors highlight consistent evidence that CAP influences NF-kB, Nrf2-Keap1, and MAPK signaling pathways across multiple independent studies.

Regarding specific immune cell functions, the review notes that CAP may promote either pro-inflammatory M1-like programs or anti-inflammatory M2-like phenotypes in macrophage polarization, depending on the specific tissue context and exposure parameters. However, the evidence for HIF-1α and specific inflammasome subtypes is limited and derived from a smaller number of experimental models. Furthermore, evidence regarding dendritic cell maturation, antigen-presenting capacity, neutrophil migration, NET formation, and NK cell-mediated tumor-cell recognition is currently limited and emerging.

The authors identify several limitations, including inconsistent dosimetry reporting and the lack of a unified framework linking plasma-generated redox signals to specific immune cell outcomes. While the findings suggest potential clinical applications in infection control, wound healing, and oncology, these conclusions are based on experimental models rather than clinical trials. Clinical translation remains a potential future application rather than a current standard of care.

How this fits prior evidence

This review addresses a gap in the understanding of physical modalities for immune modulation. While previous coverage noted that Prevotella's role in gastrointestinal cancer is complex and depends on strain-level heterogeneity, this review explores how cold atmospheric plasma may influence the immune microenvironment through signaling pathways like NF-kB and MAPK. It provides a different perspective on potential interventions for infection and cancer by focusing on the effects of plasma-generated redox signals on immune cell behavior.

When a wound won't heal or an infection takes hold, the body's immune system is the first line of defense. Researchers are looking into how cold atmospheric plasma (CAP) might support this process. This technology uses a gas and electricity to create a plasma field that can interact with cells to manage inflammation and help the body fight off invaders.

Evidence shows that this treatment can influence several important pathways in the body. Specifically, it has been shown to affect signaling pathways like NF-kB and MAPK, which help control how cells respond to stress. It may also help change how certain immune cells, like macrophages, behave. Depending on how the treatment is used, these cells can either focus on fighting germs or on repairing damaged tissue.

While the results are promising for treating infections and wounds, much of the data comes from experimental models. Some areas, like how it affects specific cell types or certain oxygen-related signals, still have limited evidence. Because the research is currently fragmented, it is still early to know exactly how this will work in a clinical setting.

What this means for you:
Cold atmospheric plasma shows potential to treat infections and wounds by influencing immune system pathways.

Common questions

How does cold atmospheric plasma work on the immune system?

Cold atmospheric plasma interacts with the body's immune system by influencing several signaling pathways, such as NF-kB and MAPK. These pathways help determine how cells respond to infection and inflammation. It can also influence how macrophages behave, potentially helping them switch between fighting germs and repairing tissue.

Can this treatment help with wound healing?

There is potential for this treatment to be used in wound healing and infection control. It may help by influencing the way immune cells respond to injury. However, because much of the current evidence comes from experimental models, its exact role in clinical settings is still being studied.

Is the evidence for this treatment fully established?

The evidence is currently mixed and comes from a fragmented body of research. While some signaling pathways are well-supported, others, like specific inflammasome subtypes and certain cell behaviors, have limited evidence. More research is needed to create a unified understanding of how it works.

Study Details

Study typeSystematic review
EvidenceLevel 1
PublishedSep 2026
View Original Abstract ↓
Cold atmospheric plasma (CAP) has emerged as a tunable physicochemical stimulus capable of modulating immune responses through the controlled delivery of reactive oxygen and nitrogen species (RONS), charged particles, transient electric fields, and photons at near-ambient temperature. While the antimicrobial and cytotoxic applications of CAP are well established, evidence regarding its role as a regulator of innate immune signaling remains fragmented across the literature. Inconsistent dosimetry reporting is a noted issue, and a unified framework linking plasma-generated redox signals to specific immune cell outcomes is lacking. This narrative review focuses on the effects of CAP on innate immune mechanisms and the cellular signaling pathways that translate plasma-derived redox cues into biological responses. We first outline how device architecture, gas composition, treatment mode, and dose shape the qualitative and quantitative RONS profile that reaches biological targets. We then discuss key redox-sensitive signaling pathways, including NF-κB, Nrf2-Keap1, MAPK, PI3K-AKT-mTOR, HIF-1α, mitochondrial pathways, and inflammasome activation. While NF-κB, Nrf2-Keap1, and MAPK signaling are supported across multiple independent studies, evidence for HIF-1α and specific inflammasome subtypes is limited and derived from a smaller number of experimental models. Particular emphasis is placed on macrophage polarization, where available evidence indicates that CAP may promote either proinflammatory, antimicrobial M1-like programs or anti-inflammatory, tissue-repairing M2-like phenotypes depending on exposure parameters and tissue context. We further summarize more limited and still-emerging evidence that CAP influences dendritic cell maturation, antigen-presenting capacity, neutrophil migration and neutrophil extracellular trap (NET) formation, and natural killer (NK) cell-mediated tumor-cell recognition. Collectively, current evidence indicates that CAP is not merely a cytotoxic or antimicrobial modality but a potential dose- and context-dependent regulator of innate immune function, though findings vary across plasma sources and experimental models. A deeper understanding of CAP dosimetry, RONS chemistry, and cell-type-specific redox thresholds will be essential for facilitating future clinical translation into applications in infection control, wound healing, inflammation, and oncology.
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