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March 6, 2026The EPMA Journal0 citationsOpen Access

High-altitude de-acclimatization and long-term immune suppression: the role of Nrf2 in Treg function targeting 3PM

YWYuxin WangZBZhijie BaiJLJiamiao Li

Key Points

  • The study aims to investigate immune system changes during high-altitude de-acclimatization (HADA) and their implications for long-term health.
  • Collected peripheral blood from human cohorts and mice models
  • Analyzed immune cell populations with flow cytometry
  • Conducted RNA-seq and ATAC-seq for transcriptomic and chromatin accessibility analysis
  • Performed in vitro co-cultures to test Treg functions
  • Used specific agonists for functional validation of target genes
  • HADA led to altered proportions of immune populations in various sites
  • Increased regulatory T cells (Tregs) and enhanced immune-suppressive function in peripheral blood were observed
  • Tregs mediated long-term immunosuppression, reducing immunity against tumors
  • Nrf2 emerged as a key mediator of the observed molecular changes in Tregs
  • Predictive biomarkers related to Treg phenotypes and Nrf2 activity were identified as critical for health risk assessments.

Abstract

High-altitude de-acclimatization (HADA) is accompanied by a complex spectrum of long-term physiological and functional remodeling processes, potentially affecting long-term health outcomes. Existing studies on HADA have predominantly focused on cardiovascular and nervous system changes. However, the immune system—an essential regulator of disease susceptibility, inter-individual variability, and long-term health risks—remains insufficiently investigated in the context of HADA. Given the central role of immune regulation in maintaining systemic homeostasis and determining individual health trajectories, elucidating immune alterations associated with HADA is essential. The present study aims to characterize immune system remodeling during HADA with particular emphasis on its functional outcomes and mechanisms. By addressing these scientific questions, this study seeks to provide an immune system perspective for the health maintenance of HADA individuals, promoting paradigm shift from reactive medical services toward predictive, preventive, and personalized medicine (3PM). Peripheral blood was collected from both human cohorts and mice models while other immune organs including spleen, thymus and bone marrow were obtained from mice models. Proportions of immune cell populations in peripheral blood and other immune organs were analyzed using flow cytometry. The immune-suppressive functions of Tregs were determined by in vitro co-culture with CD8+ T cells. Transcriptomic and chromatin-accessibility feature induced by HADA were obtained through RNA-seq and ATAC-seq. The functional validation of HADA target gene was performed using specific agonist during in vitro co-culture system. HADA perturbed the proportions of immune populations in multiple immune site. Both data from human and mice showed increased regulatory T cells (Tregs) and enhanced immune-suppressive function in the peripheral blood. As a consequence, these Tregs mediated long-term immune suppression and compromised the immunity against tumor cells. Multi-omic analyses predicted Nrf2 as the key mediator of molecular alterations in Tregs caused by HADA, which was further confirmed by the functional assay. This study advances high-altitude medicine by demonstrating that HADA induces long-lasting immunosuppressive effects through Nrf2-mediated Treg remodeling, with important implications for immune homeostasis and long-term health risks. These findings highlight the role of the immune system, particularly Tregs, in HADA-induced health impairments and identify Nrf2 as a potential therapeutic target. Moreover, immune biomarkers—especially Treg phenotypes and Nrf2 activity—may serve as promising candidates for risk stratification and predictive diagnostics in populations transitioning between high- and low-altitude environments. Preventive strategies should prioritize immune-informed recovery protocols, oxidative stress modulation, and lifestyle or nutritional interventions tailored to individual immune profiles.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69aa6ee2531e4c4a9ff590a2https://doi.org/10.1007/s13167-026-00442-x
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Assessment of metabolomic variations among individuals returning to plain areas after exposure to high altitudes: a metabolomic analysis of human plasma samples with high-altitude de-acclimatization syndrome2024 · 10 citations
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  3. 3Effects of High-Altitude Environments on Gut Microbiota and Their Mechanisms in Immune Regulation and High-Altitude Adaptation2026
  4. 4Distinct immune cell profiles associated with high‐altitude hypoxia and severe acute mountain sickness2025
  5. 5Immune system remains affected by acute high-altitude exposure one month following return to sea level2026