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Acidic microenvironments reprogram immune cells via pH sensors, driving tissue injuryAcidic environments in the body change how immune cells work

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Key Takeaway
Consider pH sensors as potential targets for modulating immune responses in acidic microenvironments.

This systematic review examines the role of pH sensing and acidic microenvironments in immune regulation across a range of conditions including infection, ischemia, cancer, and chronic inflammatory diseases. The authors synthesize evidence that the immune system harbors various proton sensors, including GPCRs (GPR4, GPR65, GPR68), acid-sensing ion channels (ASICs), TRP channels, and intracellular sensors (BRD4, HIF-1α, SMAD5, SREBP2). They report that acidic microenvironments influence immune cell metabolism and effector functions, and promote the release of inflammatory mediators that contribute to tissue injury. The review does not provide pooled effect sizes or quantitative outcomes, as it is a narrative synthesis of mechanistic studies. Limitations are not reported, and the authors note that the evidence highlights emerging opportunities for pH-based diagnostic biomarkers and targeted therapeutic interventions rather than established clinical protocols. The association between acidic microenvironments and immune reprogramming is described as a signaling mechanism, not a causal relationship. Practice relevance is currently limited to research contexts, with potential for future clinical translation.

How this fits prior evidence

This review extends prior coverage of metabolic checkpoints in immune escape by detailing the specific pH-sensing machinery (GPCRs, ASICs, TRP channels) that mediates immune reprogramming. It complements findings on natural products modulating cell death by providing a mechanistic framework linking acidic microenvironments to immune dysfunction. The review also aligns with bibliometric analyses showing growing interest in tumor microenvironment interactions, though it does not address clinical efficacy directly.

When your body faces a threat like an infection or a tumor, the local environment often becomes acidic. This change in pH (the measure of how acidic or basic something is) acts as a signal for your immune system. Scientists have identified several types of sensors that allow immune cells to detect these acidic zones.

These sensors include specific receptors and ion channels that react to acid levels. When these sensors are triggered, they can change how immune cells behave. Specifically, the acidic environment can alter cell metabolism and cause them to release more inflammatory chemicals, which can lead to tissue damage.

While this research is still in the early stages, it highlights a specific way our bodies respond to disease. Understanding these acid-sensing mechanisms could eventually help doctors find new ways to diagnose conditions or develop treatments that target these specific signals.

What this means for you:
Immune cells use various sensors to detect acidic environments, which can trigger inflammation and tissue damage.

Common questions

What causes these acidic environments in the body?

Acidic environments are often found in areas affected by infections, ischemia (lack of blood flow), cancer, and chronic inflammatory diseases. These zones act as signals that your immune system detects using various sensors like GPCRs, ion channels, and intracellular sensors.

How do these acidic environments affect the immune system?

When immune cells sense an acidic environment, it can change their metabolism and how they function. This process can lead to the release of inflammatory mediators, which may contribute to tissue injury in the body.

What kind of sensors do immune cells use?

The immune system uses several types of proton sensors. These include GPCRs (such as GPR4, GPR65, and GPR68), acid-sensing ion channels (ASICs), TRP channels, and internal sensors like BRD4, HIF-1α, SMAD5, and SREBP2.

Study Details

Study typeSystematic review
EvidenceLevel 1
PublishedJul 2026
View Original Abstract ↓
As a critical variable of physiological homeostasis, pH has traditionally been regarded as a metabolic byproduct. However, accumulating evidence indicates that pH also functions as an active signaling cue capable of modulating the initiation and regulation of inflammation via proton-sensing receptors. Tissue acidification is widely observed across pathological conditions, including infection, ischemia, cancer, and chronic inflammatory diseases. Acidic microenvironments not only influence immune cell metabolism and effector functions but also promote the release of inflammatory mediators and contribute to tissue injury. The immune system harbors a diverse array of proton sensors, including proton-sensitive G protein-coupled receptors (GPCRs; e.g., GPR4, GPR65, GPR68), acid-sensing ion channels (ASICs), transient receptor potential (TRP) channels, intracellular pH sensors and pH-responsive regulatory factors, including BRD4, HIF-1α, SMAD5, and SREBP2. These sensors transduce local pH fluctuations into specific signaling cascades and gene expression programs, thereby reshaping inflammatory responses. In this review, we systematically summarize recent advances in understanding pH sensing in the regulation of inflammation. We focus on (i) the structural classes and distribution patterns of pH sensors, (ii) the molecular integration of acidic signals within inflammatory signaling networks and their transcriptional regulatory mechanisms, and (iii) the roles of pH sensing in immune homeostasis and pathological inflammation. Finally, we highlight emerging opportunities for identifying pH-based diagnostic biomarkers and developing targeted therapeutic interventions. Collectively, this work underscores the conceptual and translational significance of the “pH–sensor–inflammation” axis as an emerging paradigm in immune regulation.
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