Assessing the potential climate impact of anaesthetic gases

The Lancet Planetary Health - Tập 7 - Trang e622-e629 - 2023
Mads Peter Sulbaek Andersen1,2, Ole John Nielsen2, Jodi D Sherman3
1Department of Chemistry and Biochemistry, California State University Northridge, Northridge, CA, USA
2Copenhagen Center for Atmospheric Research, Department of Chemistry, University of Copenhagen, Copenhagen, Denmark
3Department of Anesthesiology, Yale School of Medicine, New Haven, CT, USA

Tài liệu tham khảo

Sherman, 2021, Environmental sustainability in anaesthesia and critical care. Response to Br J Anaesth 2021; 126: e195–e197, Br J Anaesth, 126, e193, 10.1016/j.bja.2020.12.025 MacNeill, 2021, Planetary health care: a framework for sustainable health systems, Lancet Planet Health, 5, e66, 10.1016/S2542-5196(21)00005-X Pichler, 2019, International comparison of health care carbon footprints, Environ Res Lett, 14, 10.1088/1748-9326/ab19e1 Lenzen, 2020, The environmental footprint of health care: a global assessment, Lancet Planet Health, 4, e271, 10.1016/S2542-5196(20)30121-2 Romanello, 2022, The 2022 report of the Lancet Countdown on health and climate change: health at the mercy of fossil fuels, Lancet, 400, 1619, 10.1016/S0140-6736(22)01540-9 Tennison, 2021, Health care's response to climate change: a carbon footprint assessment of the NHS in England, Lancet Planet Health, 5, e84, 10.1016/S2542-5196(20)30271-0 MacNeill, 2017, The impact of surgery on global climate: a carbon footprinting study of operating theatres in three health systems, Lancet Planet Health, 1, e381, 10.1016/S2542-5196(17)30162-6 Sherman, 2021, Net zero healthcare: a call for clinician action, BMJ, 374 Sulbaek Andersen, 2012, Medical intelligence article: assessing the impact on global climate from general anesthetic gases, Anesth Analg, 114, 1081, 10.1213/ANE.0b013e31824d6150 Vollmer, 2015, Modern inhalation anesthetics: potent greenhouse gases in the global atmosphere, Geophys Res Lett, 42, 1606, 10.1002/2014GL062785 Sherman, 2013, In response, Anesth Analg, 116, 734, 10.1213/ANE.0b013e318280dff4 McGain, 2020, Environmental sustainability in anaesthesia and critical care, Br J Anaesth, 125, 680, 10.1016/j.bja.2020.06.055 Sherman, 1988, Nitrous oxide and the greenhouse effect, Anesthesiology, 68, 816, 10.1097/00000542-198805000-00037 Ishizawa, 2011, Special article: general anesthetic gases and the global environment, Anesth Analg, 112, 213, 10.1213/ANE.0b013e3181fe02c2 Langbein, 1999, Volatile anaesthetics and the atmosphere: atmospheric lifetimes and atmospheric effects of halothane, enflurane, isoflurane, desflurane and sevoflurane, Br J Anaesth, 82, 66, 10.1093/bja/82.1.66 Brown, 1989, Tropospheric lifetimes of halogenated anaesthetics, Nature, 341, 635, 10.1038/341635a0 Ryan, 2010, Global warming potential of inhaled anesthetics: application to clinical use, Anesth Analg, 111, 92, 10.1213/ANE.0b013e3181e058d7 Sulbaek Andersen, 2012, Atmospheric chemistry of isoflurane, desflurane, and sevoflurane: kinetics and mechanisms of reactions with chlorine atoms and OH radicals and global warming potentials, J Phys Chem A, 116, 5806, 10.1021/jp2077598 Sulbaek Andersen, 2010, Inhalation anaesthetics and climate change, Br J Anaesth, 105, 760, 10.1093/bja/aeq259 Sulbaek Andersen, 2021, The global warming potentials for anesthetic gas sevoflurane need significant corrections, Environ Sci Technol, 55, 10189, 10.1021/acs.est.1c02573 Özelsel, 2019, The future is now—it's time to rethink the application of the global warming potential to anesthesia, Can J Anaesth, 66, 1291, 10.1007/s12630-019-01385-w Shine, 2010, Climate effect of inhaled anaesthetics, Br J Anaesth, 105, 731, 10.1093/bja/aeq313 Zuegge, 2019, Provider education and vaporizer labeling lead to reduced anesthetic agent purchasing with cost savings and reduced greenhouse gas emissions, Anesth Analg, 128, e97, 10.1213/ANE.0000000000003771 Alexander, 2018, Greenhouse gases: the choice of volatile anesthetic does matter, Can J Anaesth, 65, 221, 10.1007/s12630-017-1006-x Sherman, 2012, Life cycle greenhouse gas emissions of anesthetic drugs, Anesth Analg, 114, 1086, 10.1213/ANE.0b013e31824f6940 Narayanan, 2022, Carbon footprint of inhalational and total intravenous anaesthesia for paediatric anaesthesia: a modelling study, Br J Anaesth, 129, 231, 10.1016/j.bja.2022.04.022 McGain, 2021, Carbon footprint of general, regional, and combined anesthesia for total knee replacements, Anesthesiology, 135, 976, 10.1097/ALN.0000000000003967 Shine, 1990, Radiative forcing of climate, 41 Forster, 2021, The Earth's energy budget, climate feedbacks, and climate sensitivity, 923 Wallington, 2011, Time horizons for transport climate impact assessments, Environ Sci Technol, 45, 3169, 10.1021/es103768g Pinnock, 1995, Radiative forcing of climate by hydrochlorofluorocarbons and hydrofluorocarbons, J Geophys Res, 100, 23227, 10.1029/95JD02323 2018 Smith, 2021, The Earth's energy budget, climate feedbacks, and climate sensitivity supplementary material Hass, 2019, Atmospheric chemistry of methoxyflurane (CH3OCF2CHCl2): kinetics of the gas-phase reactions with OH radicals, Cl atoms and O3, Chem Phys Lett, 722, 119, 10.1016/j.cplett.2019.02.041 Burkholder, 2019 Calvert, 2011 Prather, 2007, Lifetimes and time scales in atmospheric chemistry, Philos Trans A Math Phys Eng Sci, 365, 1705 Prinn, 2001, Evidence for substantial variations of atmospheric hydroxyl radicals in the past two decades, Science, 292, 1882, 10.1126/science.1058673 Hodnebrog, 2013, Global warming potentials and radiative efficiencies of halocarbons and related compounds: a comprehensive review, Rev Geophys, 51, 300, 10.1002/rog.20013 Shine, 2020, The spectral nature of stratospheric temperature adjustment and its application to halocarbon radiative forcing, J Adv Model Earth Syst, 12, 10.1029/2019MS001951 Hodnebrog, 2020, Updated global warming potentials and radiative efficiencies of halocarbons and other weak atmospheric absorbers, Rev Geophys, 58, 10.1029/2019RG000691 Joos, 2013, Carbon dioxide and climate impulse response functions for the computation of greenhouse gas metrics: a multi-model analysis, Atmos Chem Phys, 13, 2793, 10.5194/acp-13-2793-2013 Myhre, 2013, Anthropogenic and natural radiative forcing, 659 Gasser, 2017, Accounting for the climate–carbon feedback in emission metrics, Earth Syst Dyn, 8, 235, 10.5194/esd-8-235-2017 Etminan, 2016, Radiative forcing of carbon dioxide, methane, and nitrous oxide: a significant revision of the methane radiative forcing, Geophys Res Lett, 43, 12614, 10.1002/2016GL071930 Ikeda, 2020, The reincarnation of methoxyflurane, J Anesth Hist, 6, 79, 10.1016/j.janh.2019.07.001 Kwiatkowski, 2020, Scientific basis for managing PFAS as a chemical class, Environ Sci Technol Lett, 7, 532, 10.1021/acs.estlett.0c00255 Cousins, 2020, The high persistence of PFAS is sufficient for their management as a chemical class, Environ Sci Process Impacts, 22, 2307, 10.1039/D0EM00355G Wallington, 2021, The case for a more precise definition of regulated PFAS, Environ Sci Process Impacts, 23, 1834, 10.1039/D1EM00296A Joudan, 2021, Insufficient evidence for the existence of natural trifluoroacetic acid, Environ Sci Process Impacts, 23, 1641, 10.1039/D1EM00306B Frank, 2002, Trifluoroacetate in ocean waters, Environ Sci Technol, 36, 12, 10.1021/es0101532 Scott, 2005, Trifluoroacetate profiles in the Arctic, Atlantic, and Pacific Oceans, Environ Sci Technol, 39, 6555, 10.1021/es047975u Sherman, 2020, The green print: advancement of environmental sustainability in healthcare, Resour Conserv Recycling, 161, 10.1016/j.resconrec.2020.104882 Boutonnet, 1999, Environmental risk assessment of trifluoroacetic acid, Hum Ecol Risk Assess, 5, 59, 10.1080/10807039991289644 Canadell, 2021, Global carbon and other biogeochemical cycles and feedbacks, 673 Wallington, 2002, Atmospheric chemistry of CF3CH2OCHF2 and CF3CHClOCHF2: kinetics and mechanisms of reaction with Cl atoms and OH radicals and atmospheric fate of CF3C(O•)HOCHF2 and CF3C(O•)ClOCHF2 radicals, J Phys Chem A, 106, 8391, 10.1021/jp020017z Eckelman, 2020, Health care pollution and public health damage in the United States: an update, Health Aff (Millwood), 39, 2071, 10.1377/hlthaff.2020.01247 Eckelman, 2016, Environmental impacts of the U.S. health care system and effects on public health, PLoS One, 11, 10.1371/journal.pone.0157014 Eckelman, 2018, Life cycle environmental emissions and health damages from the Canadian health care system, PLoS Med, 15, 10.1371/journal.pmed.1002623 Chung, 2009, Estimate of the carbon footprint of the US health care sector, JAMA, 302, 1970, 10.1001/jama.2009.1610 Malik, 2018, The carbon footprint of Australian health care, Lancet Planet Health, 2, e27, 10.1016/S2542-5196(17)30180-8 Nansai, 2020, Carbon footprint of Japanese health care services from 2011 to 2015, Resour Conserv Recycling, 152, 10.1016/j.resconrec.2019.104525 Weisz, 2020, Carbon emission trends and sustainability options in Austrian health care, Resour Conserv Recycling, 160, 10.1016/j.resconrec.2020.104862 Wu, 2019, The carbon footprint of the Chinese health-care system: an environmentally extended input–output and structural path analysis study, Lancet Planet Health, 3, e413, 10.1016/S2542-5196(19)30192-5 Sherman, 2022, Inhaled anaesthesia and analgesia contribute to climate change, BMJ, 377 Devlin-Hegedus, 2022, Action guidance for addressing pollution from inhalational anaesthetics, Anaesthesia, 77, 1023, 10.1111/anae.15785 Seglenieks, 2022, Discrepancy between procurement and clinical use of nitrous oxide: waste not, want not, Br J Anaesth, 128, e32, 10.1016/j.bja.2021.10.021