ArticleBMJ open respiratory research2023
Reductions in inhaler greenhouse gas emissions by addressing care gaps in asthma and chronic obstructive pulmonary disease: an analysis.
Article in BMJ open respiratory research, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 11 papers, 1 of them a synthesis that pooled it.
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The trial behind it
Trials whose registry record cites this paper, or whose number appears in the abstract. A trial that started after this paper was published is citing it as background, not reporting it.
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Who cites it
11 citing papers in PubMed, 1 synthesis or guideline pooled it.
- Pooled it
- Managing Inhaler Environmental Sustainability and Effective Respiratory Care: Current Evidence, Challenges, and Opportunities.Pharmaceutical medicine · 2026Article
- Understanding inhaler users' perceptions of climate change and inhaler carbon footprints: insights from a Canadian survey.BMJ open respiratory research · 2026Article
- Estimation of carbon emissions from inhaled respiratory medicines in Ireland: a cross-sectional study from a national pharmacy claims database from 2020 to 2022.International journal of clinical pharmacy · 2026Article
- Salbutamol Reversal of Methacholine Induced Bronchoconstriction: Vibrating Mesh Nebulizer versus Pressurized Metered Dose Inhaler.Journal of asthma and allergy · 2026Article
- Air pollution, inhaled therapy and COPD exacerbations in Yunlin, Taiwan: a 2016-2024 single-centre retrospective cohort with environmental and carbon-footprint analyses.BMJ open respiratory research · 2025Observational
- Modelling the climate impact of inhalers and mitigation strategies: a population-based study in British Columbia, Canada (2015-2032).BMJ open respiratory research · 2025Article
- Need for planetary health perspective in guidance for complex interventions for climate and health.BMJ (Clinical research ed.) · 2025Article
- Journey of a pill.Canadian family physician Medecin de famille canadien · 2025Review
- Australian and Canadian clinicians' views and application of 'carbon health literacy': a qualitative study.BMC health services research · 2024Article
- Climate-conscious inhaler prescribing for family physicians.Canadian family physician Medecin de famille canadien · 2024Review
Corrections and comments
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Authors and funding
4 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
introductionClimate change from greenhouse gas (GHG) emissions represents one of the greatest public health threats of our time. Inhalers (and particularly metred-dose inhalers (MDIs)) used for asthma and chronic obstructive pulmonary disease (COPD), constitute an important source of GHGs. In this analysis, we aimed to estimate the carbon footprint impact of improving three distinct aspects of respiratory care that drive avoidable inhaler use in Canada.
methodsWe used published data to estimate the prevalence of misdiagnosed disease, existing inhaler use patterns, medication class distributions, inhaler type distributions and GHGs associated with inhaler actuations, to quantify annual GHG emissions in Canada: (1) attributable to asthma and COPD misdiagnosis; (2) attributable to overuse of rescue inhalers due to suboptimally controlled symptoms; and (3) avoidable by switching 25% of patients with existing asthma and COPD to an otherwise comparable therapeutic option with a lower GHG footprint.
resultsWe identified the following avoidable annual GHG emissions: (1) ~49 100 GHG metric tons (MTs) due to misdiagnosed disease; (2) ~143 000 GHG MTs due to suboptimal symptom control; and (3) ~262 100 GHG MTs due to preferential prescription of strategies featuring MDIs over lower-GHG-emitting options (when 25% of patients are switched to lower GHG alternatives). Combined, the GHG emission reductions from bridging these gaps would be the equivalent to taking ~101 100 vehicles off the roads each year.
conclusionsOur analysis shows that the carbon savings from addressing misdiagnosis and suboptimal disease control are comparable to those achievable by switching one in four patients to lower GHG-emitting therapeutic strategies. Behaviour change strategies required to achieve and sustain delivery of evidence-based real-world care are complex, but the added identified incentive of carbon footprint reduction may in itself prove to be a powerful motivator for change among providers and patients. This additional benefit can be leveraged in future behaviour change interventions.
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