Exploring Oxygen Therapy as a Supporting Treatment for Asthma: Current Insights and Perspectives
Abstract
1. Introduction
2. Types and Phenotypes in Asthma
3. Social Aspect of Asthma
4. Immune Mechanisms of Asthma and Their Modulation Using Oxygen Therapy
4.1. Mechanisms of Th2-High Asthma
4.2. Mechanisms of Th2-Low Asthma
5. Standard and Alternative Treatment of Asthma
6. Oxygenation in Asthma
6.1. Normobaric Oxygen Therapy
6.2. Hyperbaric Oxygen Therapy in Asthma
| Normobaric Oxygen Therapy | |||
|---|---|---|---|
| Group of Patients | Treatment | Significant Observations | References |
| 106 patients with severe exacerbations of asthma | 8 L/min via medium-concentration mask or titrated oxygen (to achieve oxygen saturations between 93% and 95%) for 60 min. | High-concentration oxygen therapy causes a clinically significant increase in Ptco2 in patients presenting with severe exacerbations of asthma | [105] |
| 96 pediatric patients with acute exacerbations of asthma, 49 in the HCOT group and 47 in the TOT group | Prospective, randomized clinical trial comparing high-concentration (HCOT) to titrated oxygen therapy (TOT) | HCOT in pediatric asthma exacerbation leads to significantly higher carbon dioxide levels, which increases asthma scores | [121] |
| 40 adult patients with moderate-to-severe asthma exacerbation, 20 in the HFNC group and 20 in the COT group | A randomized, double-blind pilot study comparing high-flow nasal cannula (HFNC, high-flow oxygen with a flow rate of 15–35 L/min (37 °C)) and conventional oxygen therapy (COT, flow rate of 2–5 L/min) in patients with asthma exacerbation | HFNC appears to be more effective than COT in reducing the dyspnea score within the first 2 h of treatment. In the HFNC-treated patients, FVC was improved from 2 to 24 h of treatment (25.7 ± 26.6%), while in the COT-treated patients, FVC increased significantly (9 ± 7%, p = 0.024, CI: 95%) | [122] |
| 62 children (1–14 years) with moderate-to-severe asthma exacerbations to receive either high-flow nasal cannula or standard oxygen therapy | The initial flow rate depends on patient weight and clinical status. Depending on the degree of respiratory distress, PS, SpO2, and RR, clinicians are allowed to increase the flow rate if necessary up to the maximum that the patient can tolerate, without exceeding a flow of 2 L/kg/min for the first 10 ± 0.5 L/kg/min per kg above 10 kg | High-flow nasal cannula appears to be superior to conventional oxygen therapy for reducing respiratory distress within the first 2 h of treatment in children with moderate-to-severe asthma exacerbation | [106] |
| 37 patients aged ≥ 18 years with acute severe asthma | Conventional oxygen therapy or nasal high flow for 120 min, adjusted from 30 to 60 L/min according to the participant’s level of comfort | Nasal high flow reduced the severity of dyspnea and respiratory rate in hypoxemic patients with acute severe asthma | [107] |
| 44 patients with acute asthma of mild-to-moderate severity | Non-invasive positive pressure ventilation (NPPV) from 4 cm to 8 cm with H2O for 60 min | Without bronchodilators, the initial treatment with NPPV may improve pulmonary function and physical status with sustained efficacy, making it an additional therapeutic option for acute asthma in emergency or outpatient departments | [108] |
| Meta-analyses: 85 patients treated with high-flow oxygen therapy, and 90 patients with conventional oxygen therapy | High-flow oxygen therapy vs. conventional oxygen therapy | High-flow oxygen therapy decreased the dyspnoea score compared to conventional oxygen therapy | [109] |
| Clinical studies of HBOT in asthma | |||
| 11 men and 5 women | 1.8 to 2.5 ATA O2 within a 60–90 min period. The number of exposures ranged from 1–4 for Group II to 10–15 for Group I and Group III | Generally, in allergic asthma, a positive therapeutic effect of hyperbaric oxygenation on was found, with no adverse effects | [8] |
| 7 | Over 20 sessions, HBOT was performed using 100% oxygen at a pressure of 2.0–2.4 atmospheres absolute (203–243 kPa) for 90 min, five times per week | Therapy was safe but there was no significant change in FEV1%, FVC%, or FEF25–75% | [123] |
| Preclinical study HBOT in asthma | |||
| Mice (strain C57BL/6) were sensitized with ovalbumin (OVA) via intraperitoneal injection (day 1), then challenged with OVA inhalations on days 14–17 to induce allergic airway inflammation or asthma-like condition | HBOT was applied with 100% O2 at either 2 ATA or 3 ATA, for 60–90 min per session, over 4–5 days, either after sensitization or during inhalation challenges | HBOT at 3 ATA significantly reduced eosinophil infiltration in BALF and lowered BALF protein concentration and LDH activity (i.e., reduced lung tissue injury) compared to untreated OVA-challenged controls. 3 ATA HBOT significantly decreased serum total IgE levels, which may reflect modulation of systemic allergic response | [124] |
6.3. Limitations of Using HBOT in Asthma
7. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| HBOT | hyperbaric oxygen therapy |
| AERD | aspirin-exacerbated respiratory disease |
| RSV | respiratory syncytial virus |
| DCs | dendritic cells |
| ILCs | innate lymphoid cells |
| NSAIDs | non-steroidal anti-inflammatory drugs |
| COPD | chronic obstructive pulmonary disease |
| IL- | interleukin |
| TNF-α | tumor necrosis factor alpha |
| PRRs | pattern recognition receptors |
| TLRs | toll-like receptors |
| NOD | nucleotide-binding oligomerization domain |
| RLRs | retinoic acid-inducible gene I like receptors |
| TSLP | thymic stromal lymphopoietin |
| BAL | bronchoalveolar lavage |
| ST2 | receptor for the cytokine IL-33 |
| AHR | hyper-responsiveness |
| IgE | immunoglobulin E |
| FcεRI | IgE receptor |
| LTs | leukotrienes |
| MBP | major basic protein |
| CCL5 | C-C motif chemokine ligand 5 |
| Arg1 | arginase-1 enzyme |
| Tregs | regulatory T cells |
| CXCL1-, 5- 8- | C-X-C motif chemokine 5 |
| GM-CSF | granulocyte–macrophage colony-stimulating factor |
| RONS | reactive oxygen and nitrogen species |
| SABAs | short-acting β2-agonists |
| LABAs | long-acting β2-agonists |
| ICSs | inhaled corticosteroids |
| LTRAs | leukotriene receptor antagonists |
| AIT | allergen immunotherapy |
| FEV | forced expiratory volume |
| ACT | asthma control test |
| ATA | atmospheres absolute |
| CRP | C-reactive protein |
| NPPV | non-invasive positive pressure ventilation |
| VCAM-1 | vascular cell adhesion molecule-1 |
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| Phenotype | Primary Trigger or Mechanism | Key Clinical Features | Patient Characteristics |
|---|---|---|---|
| Allergic asthma | Exposure to environmental allergens. IgE-mediated immune activation | Common in childhood. Associated with other atopic diseases. Good response to corticosteroids and anti-IgE therapy | Typically younger patients; personal or family history of atopy; elevated IgE levels; positive allergen test |
| Cough-variant asthma (Corrao asthma) | Airway hyper-responsiveness without classic wheeze | Chronic cough as the sole or predominant symptom. May precede typical asthma | Often adults or children with persistent dry cough; normal lung auscultation; may show airway hyper-reactivity on testing |
| Exercise-induced asthma | Physical exertion leading to airway cooling and dehydration | Bronchoconstriction during or after exercise. Reversible with bronchodilators | Frequently affects adolescents and young adults engaged in sports; symptoms triggered specifically by exertion |
| Occupational asthma | Occupational asthma Inhalation of workplace sensitizers (e.g., isocyanates, latex, flour dust) | Symptoms improve outside the work environment. May require allergen avoidance or workplace modification | Adult workers exposed to specific occupational agents; symptom pattern linked to work shifts |
| Asthma–COPD overlap syndrome (ACOS) | Combination of asthmatic and chronic obstructive mechanisms | Persistent airflow limitation. Older age of onset. Reduced corticosteroid responsiveness | Typically older patients with a history of smoking or biomass exposure; mixed asthma-COPD features; frequent exacerbations |
| Alternative Asthma Treatment | Mechanism of Action | References |
|---|---|---|
| Magnesium (magnesium sulfate (MgSO4)) | Anti-inflammatory and bronchodilating agent | [69] |
| Furosemide | Inhaled furosemide attenuates bronchoconstriction and asthma attacks | [70] |
| Heparins | Inhaled heparin reduces inflammation, thrombogenesis, atherogenesis, and cell proliferation in airways and reduces eosinophilic and lymphocytic counts in bronchoalveolar lavage (BAL) samples | [71] |
| Macrolide (azithromycin) | Reduces exacerbations and improves quality of life, and induces remission in both eosinophilic and non-eosinophilic asthma | [72] |
| Nitric oxide donors | Relax the muscles in the airways during an asthma crisis | [73] |
| Antioxidative drugs (N-acetylcysteine, Nrf2) | Improve small-airway function, decrease exacerbation frequency, and play a protective role against reactive oxygen species (ROS) | [74,75,76,77] |
| Antioxidant vitamins (vit. A, vit. E, vit. C), plant-based antioxidants | Block proinflammatory pathways and protect against oxidative damage | [78,79,80] |
| Vitamin D | Has an immunomodulatory effect and reduces risk of asthma exacerbation | [81,82] |
| Herbal therapy | Immunomodulatory, anti-inflammatory and bronchodilatory effects | [83,84] |
| Nigella sativa (black cumin): Improves asthma control and pulmonary function, and reduces eosinophils | [85] | |
| Crocus sativus L. (saffron): Improves asthma symptoms, pulmonary function, and immunological parameters | [86] | |
| Pinus maritima (maritime pine): Improves asthma symptoms, and reduces levels of leukotrienes C4, D4, and E4 | [87] | |
| Curcuma longa (curcumin): Induced asthma control, and decreases frequency of symptoms and nighttime awakenings | [88] | |
| Echinacea: Performs immunomodulatory activity and blocks ferroptosis | [89,90] | |
| Fritillaria cirrhosa: Inhibits M2 macrophage polarization, and exerts anti-asthmatic effects in murine models by reducing eosinophil numbers and suppressing Th2 cytokines (IL-4, IL-5, IL-13), IgE, and histamine production | [91] | |
| Anemarrhena asphodeloides: Regulates the arachidonic acid pathway and regulates mast-cell-mediated reactions | [92] | |
| Dietary modifications | Incorporating antioxidant-rich foods, reducing saturated fat intake, emphasizing the consumption of plant-based foods, and maintaining a healthy weight reduce systemic inflammation and oxidation, and improve microbial composition | [93,94] |
| Acupuncture and massage | Modulate the immune system, reduce airway inflammation, induce bronchodilation, and regulate neurotransmitters involved in bronchial smooth muscle contraction; acupoint massage combined with ear-point-pressing beans has a good effect on the treatment of asthma remission and can effectively improve quality of life | [95,96] |
| Yoga, breathing techniques | Breathing techniques may improve breathlessness | [97] |
| Exercises, physical activity, pulmonary rehabilitation | Improve cardiorespiratory fitness and muscle strength, increasing forced vital capacity % (FVC%) pred and FEF25–75% | [98] |
| Oral bacterial lysate (OM-85) | Reduces the number of acute respiratory tract infections, prevents allergic inflammation by enhancing Treg cell proliferation and acetate production, and alleviates the course and length of exacerbations | [99] |
| Mechanism | Description | Relevance to Possible Asthma Management | References |
|---|---|---|---|
| Increased Oxygenation | Higher oxygen levels in blood and tissues | Alleviates hypoxia in inflamed airways | [32] |
| Anti-inflammatory Effects | Reduction in proinflammatory cytokines (e.g., TNF-α, IL-1β) | Reduces chronic airway inflammation | [28] |
| Anti-allergy Effects | HBOT decreases serum IgE levels and reduces eosinophil infiltration | Potentially reduces allergic inflammation | [39] |
| Reduction in Oxidative Stress | Modulation of ROS and RNS (reactive nitrogen species) production | Mitigates oxidative stress and airway hyper-reactivity | [45] |
| Enhanced Immune Response | Increased bactericidal activity of immune cells | Manages infections that exacerbate asthma | [103] |
| Promotion of Angiogenesis | VEGF (vascular endothelial growth factor) proliferation and enhanced fibroblast activity | Aids in tissue repair and reduces airway remodeling | [28] |
| Modulation of Nitric Oxide | Influence on nitric oxide pathways | Reduces airway constriction and improves airflow | [104] |
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Zwoliński, M.; Hovagimyan, A.; Ignatowicz, J.; Stelmasiak, M.; Lewicka, A.; Szopiński, T.; Szymański, Ł.; Bień-Kalinowska, J.; Barbara, B.J.; Lewicki, S. Exploring Oxygen Therapy as a Supporting Treatment for Asthma: Current Insights and Perspectives. Int. J. Mol. Sci. 2026, 27, 24. https://doi.org/10.3390/ijms27010024
Zwoliński M, Hovagimyan A, Ignatowicz J, Stelmasiak M, Lewicka A, Szopiński T, Szymański Ł, Bień-Kalinowska J, Barbara BJ, Lewicki S. Exploring Oxygen Therapy as a Supporting Treatment for Asthma: Current Insights and Perspectives. International Journal of Molecular Sciences. 2026; 27(1):24. https://doi.org/10.3390/ijms27010024
Chicago/Turabian StyleZwoliński, Michał, Adrian Hovagimyan, Jakub Ignatowicz, Marta Stelmasiak, Aneta Lewicka, Tomasz Szopiński, Łukasz Szymański, Justyna Bień-Kalinowska, Bałan J. Barbara, and Sławomir Lewicki. 2026. "Exploring Oxygen Therapy as a Supporting Treatment for Asthma: Current Insights and Perspectives" International Journal of Molecular Sciences 27, no. 1: 24. https://doi.org/10.3390/ijms27010024
APA StyleZwoliński, M., Hovagimyan, A., Ignatowicz, J., Stelmasiak, M., Lewicka, A., Szopiński, T., Szymański, Ł., Bień-Kalinowska, J., Barbara, B. J., & Lewicki, S. (2026). Exploring Oxygen Therapy as a Supporting Treatment for Asthma: Current Insights and Perspectives. International Journal of Molecular Sciences, 27(1), 24. https://doi.org/10.3390/ijms27010024

