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Abstract

We are facing interwoven global threats to public health and ecosystem function that reveal the intrinsic connections between human and wildlife health. These challenges are especially pressing in cities, where social-ecological interactions are pronounced. The One Health concept provides an organizing framework that promotes the health and well-being of urban communities and ecosystems. However, for One Health to be successful, it must incorporate societal inequities in environmental disamenities, exposures, and policy. Such inequities affect all One Health interfaces, including the distribution of ecosystem services and disservices, the nature and frequency ofhuman–wildlife interactions, and legacies of land use. Here, we review the current literature on One Health perspectives, pinpoint areas in which to incorporate an environmental justice lens, and close with recommendations for future work. Intensifying social, political, and environmental unrest underscores a dire need for One Health solutions informed by environmental justice principles to help build healthier, more resilient cities.

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2022-11-02
2024-04-19
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Literature Cited

  1. Adamkiewicz G, Zota AR, Fabian MP, Chahine T, Julien R et al. 2011. Moving environmental justice indoors: understanding structural influences on residential exposure patterns in low-income communities. Am. J. Public Health 101:S1S238–45
    [Google Scholar]
  2. Ahmed F, Ahmed N, Pissarides C, Stiglitz J. 2020. Why inequality could spread COVID-19. Lancet Public Health 5:5e240
    [Google Scholar]
  3. Alberti M, Marzluff JM, Shulenberger E, Bradley G, Ryan C, Zumbrunnen C. 2008. Integrating humans into ecology: opportunities and challenges for studying urban ecosystems. BioScience 53:121169–79
    [Google Scholar]
  4. Allan BF, Keesing F, Ostfeld RS. 2003. Effect of forest fragmentation on Lyme disease risk. Conserv. Biol. 17:1267–72
    [Google Scholar]
  5. Anguelovski I. 2016. From toxic sites to parks as (green) LULUs? New challenges of inequity, privilege, gentrification, and exclusion for urban environmental justice. J. Plan. Lit. 31:123–36
    [Google Scholar]
  6. Atlas RM. 2012. One Health: its origins and future. One Health: The Human–Animal–Environment Interfaces in Emerging Infectious Diseases JS Mackenzie, M Jeggo, P Daszak, J Richt 1–13 Berlin: Springer
    [Google Scholar]
  7. Bahadur A, Tanner T. 2014. Transformational resilience thinking: putting people, power and politics at the heart of urban climate resilience. Environ. Urban. 26:1200–14
    [Google Scholar]
  8. Barile PJ. 2004. Evidence of anthropogenic nitrogen enrichment of the littoral waters of East central Florida. J. Coast. Res. 204:1237–45
    [Google Scholar]
  9. Bayles BR, Evans G, Allan BF. 2013. Knowledge and prevention of tick-borne diseases vary across an urban-to-rural human land-use gradient. Ticks Tick-Borne Dis. 4:4352–58
    [Google Scholar]
  10. BC Coroners Service 2021. Chief coroner's statement on public safety during high temperatures. BC Gov News Jul. 30. https://news.gov.bc.ca/releases/2021PSSG0071-001523
    [Google Scholar]
  11. Bellard C, Bertelsmeier C, Leadley P, Thuiller W, Courchamp F. 2012. Impacts of climate change on the future of biodiversity. Ecol. Lett. 15:4365–77
    [Google Scholar]
  12. Bradley CA, Altizer S. 2007. Urbanization and the ecology of wildlife diseases. Trends Ecol. Evol. 22:295–102
    [Google Scholar]
  13. Bratman GN, Anderson CB, Berman MG, Cochran B, de Vries S et al. 2019. Nature and mental health: an ecosystem service perspective. Sci. Adv. 5:7eaax0903
    [Google Scholar]
  14. Brochu PJ, Yanosky JD, Paciorek CJ, Schwartz J, Chen JT et al. 2011. Particulate air pollution and socioeconomic position in rural and urban areas of the Northeastern United States. Am. J. Public Health 101:Suppl. 1S224–30
    [Google Scholar]
  15. Brownstein JS, Skelly DK, Holford TR, Fish D. 2005. Forest fragmentation predicts local scale heterogeneity of Lyme disease risk. Oecologia 146:3469–75
    [Google Scholar]
  16. Buyantuyev A, Wu J. 2010. Urban heat islands and landscape heterogeneity: linking spatiotemporal variations in surface temperatures to land-cover and socioeconomic patterns. Landsc. Ecol. 25:117–33
    [Google Scholar]
  17. Caminade C, McIntyre KM, Jones AE. 2019. Impact of recent and future climate change on vector-borne diseases. Ann. N. Y. Acad. Sci. 1436:1157–73
    [Google Scholar]
  18. Canouï-Poitrine F, Cadot E, Spira A, Spira A. 2006. Excess deaths during the August 2003 heat wave in Paris, France. Rev. Épidémiol. Santé Publique 54:2127–35
    [Google Scholar]
  19. Chamberlain D, Reynolds C, Amar A, Henry D, Caprio E, Batáry P. 2020. Wealth, water and wildlife: Landscape aridity intensifies the urban luxury effect. Glob. Ecol. Biogeogr. 29:91595–605
    [Google Scholar]
  20. Chamberlain DE, Henry DAW, Reynolds C, Caprio E, Amar A. 2019. The relationship between wealth and biodiversity: a test of the Luxury Effect on bird species richness in the developing world. Glob. Chang. Biol. 25:93045–55
    [Google Scholar]
  21. Chepesiuk R. 2009. Missing the dark: health effects of light pollution. Environ. Health Perspect. 117:1A20–27
    [Google Scholar]
  22. Clark US, Hurd YL. 2020. Addressing racism and disparities in the biomedical sciences. Nat. Hum. Behav. 4:8774–77
    [Google Scholar]
  23. Combs MA, Kache PA, VanAcker MC, Gregory N, Plimpton LD et al. 2022. Socio-ecological drivers of multiple zoonotic hazards in highly urbanized cities. Glob. Chang. Biol. 28:51705–24
    [Google Scholar]
  24. Cumming GS, Cumming DHM, Redman CL. 2006. Scale mismatches in social-ecological systems: causes, consequences, and solutions. Ecol. Soc. 11:1art14
    [Google Scholar]
  25. Cunningham AA, Daszak P, Wood JLN. 2017. One Health, emerging infectious diseases and wildlife: two decades of progress?. Philos. Trans. R. Soc. B 372:172520160167
    [Google Scholar]
  26. Cushing L, Morello-Frosch R, Wander M, Pastor M. 2015. The haves, the have-nots, and the health of everyone: the relationship between social inequality and environmental quality. Annu. Rev. Public Health 36:193–209
    [Google Scholar]
  27. Daszak P, Cunningham AA, Hyatt AD. 2000. Emerging infectious diseases of wildlife—threats to biodiversity and human health. Science 287:5452443–49
    [Google Scholar]
  28. de Garine-Wichatitsky M, Binot A, Morand S, Kock R, Roger F et al. 2020. Will the COVID-19 crisis trigger a One Health coming-of-age?. Lancet Planet. Health 4:9e377–78
    [Google Scholar]
  29. Degeling C, Brookes V, Lea T, Ward M 2018. Rabies response, One Health and more-than- human considerations in Indigenous communities in northern Australia. Soc. Sci. Med. 212:60–67
    [Google Scholar]
  30. Demetillo MAG, Harkins C, McDonald BC, Chodrow PS, Sun K, Pusede SE. 2021. Space-based observational constraints on NO2 air pollution inequality from diesel traffic in major US cities. Geophys. Res. Lett. 48:17e2021GL094333
    [Google Scholar]
  31. Devakumar D, Selvarajah S, Shannon G, Muraya K, Lasoye S et al. 2020. Racism, the public health crisis we can no longer ignore. Lancet 395:10242e112–13
    [Google Scholar]
  32. Dubay LC, Lebrun LA. 2012. Health, behavior, and health care disparities: disentangling the effects of income and race in the United States. Int. J. Health Serv. 42:4607–25
    [Google Scholar]
  33. Ducatez S, Sayol F, Sol D, Lefebvre L 2018. Are urban vertebrates city specialists, artificial habitat exploiters, or environmental generalists?. Integr. Comp. Biol. 58:5929–38
    [Google Scholar]
  34. Ehrenberg JP, Ault SK. 2005. Neglected diseases of neglected populations: thinking to reshape the determinants of health in Latin America and the Caribbean. BMC Public Health 5:1119
    [Google Scholar]
  35. Environ. Def. Fund 2022. Lead pipes: A threat to kids across America Rep. Environ. Def. Fund New York, NY: https://www.edf.org/health/lead-pipes-threat-kids-across-america
  36. EPA (Environ. Prot. Agency) 2022. Water infrastructure investments Rep. Environ. Prot. Agency Washington, DC: https://www.epa.gov/infrastructure/water-infrastructure-investments
  37. Fairburn J, Schüle SA, Dreger S, Hilz LK, Bolte G. 2019. Social inequalities in exposure to ambient air pollution: a systematic review in the WHO European region. Int. J. Environ. Res. Public Health 16:173127
    [Google Scholar]
  38. Falcón J, Torriglia A, Attia D, Viénot F, Gronfier C et al. 2020. Exposure to artificial light at night and the consequences for flora, fauna, and ecosystems. Front. Neurosci. 14:602796
    [Google Scholar]
  39. Faraji A, Egizi A, Fonseca DM, Unlu I, Crepeau T et al. 2014. Comparative host feeding patterns of the Asian tiger mosquito, Aedes albopictus, in urban and suburban northeastern USA and implications for disease transmission. PLOS Negl. Trop. Dis. 8:8e3037
    [Google Scholar]
  40. Feng AYT, Himsworth CG. 2014. The secret life of the city rat: a review of the ecology of urban Norway and black rats (Rattus norvegicus and Rattus rattus). Urban Ecosyst 17:1149–62
    [Google Scholar]
  41. Fischhoff IR, Castellanos AA, Rodrigues JPGLM, Varsani A, Han BA. 2021. Predicting the zoonotic capacity of mammals to transmit SARS-CoV-2. Proc. R. Soc. B 288:20211651
    [Google Scholar]
  42. Franco-Paredes C, Santos-Preciado JI. 2011. Freedom, justice, and neglected tropical diseases. PLOS Negl. Trop. Dis. 5:8e1235
    [Google Scholar]
  43. Garcia SN, Osburn BI, Jay-Russell MT. 2020. One Health for food safety, food security, and sustainable food production. Front. Sustain. Food Syst. 4:1
    [Google Scholar]
  44. Gerrish E, Watkins SL. 2018. The relationship between urban forests and income: a meta-analysis. Landsc. Urban Plan. 170:293–308
    [Google Scholar]
  45. Goodman H, Egizi A, Fonseca DM, Leisnham PT, LaDeau SL. 2018. Primary blood-hosts of mosquitoes are influenced by social and ecological conditions in a complex urban landscape. Parasit. Vectors. 11:1218
    [Google Scholar]
  46. Gray SC, Edwards SE, Miranda ML. 2013. Race, socioeconomic status, and air pollution exposure in North Carolina. Environ. Res. 126:152–58
    [Google Scholar]
  47. Griffin BD, Chan M, Tailor N, Mendoza EJ, Leung A et al. 2021. SARS-CoV-2 infection and transmission in the North American deer mouse. Nat. Commun. 12:13612
    [Google Scholar]
  48. Grimm NB, Grove JM, Pickett STA, Redman CL. 2008. Integrated approaches to long-term studies of urban ecological systems. BioScience 50:7571–84
    [Google Scholar]
  49. Grove M, Ogden L, Pickett S, Boone C, Buckley G et al. 2018. The legacy effect: understanding how segregation and environmental injustice unfold over time in Baltimore. Ann. Am. Assoc. Geogr. 108:2524–37
    [Google Scholar]
  50. Haas-Stapleton E, Rochlin L 2022. Wetlands and mosquito control in the twenty-first century. Wetl. Ecol. Manag. https://doi.org/10.1007/s11273-022-09860-w
    [Crossref] [Google Scholar]
  51. Haase D, Kabisch S, Haase A, Andersson E, Banzhaf E et al. 2017. Greening cities—to be socially inclusive? About the alleged paradox of society and ecology in cities. Habitat Int. 64:41–48
    [Google Scholar]
  52. Haller L, Hutton G, Bartram J. 2007. Estimating the costs and health benefits of water and sanitation improvements at global level. J. Water Health 5:4467–80
    [Google Scholar]
  53. Hartig T, Mitchell R, De Vries S, Frumkin H. 2014. Nature and health. Annu. Rev. Public Health 35:207–28
    [Google Scholar]
  54. Heaviside C, Macintyre H, Vardoulakis S. 2017. The urban heat island: implications for health in a changing environment. Curr. Environ. Health Rep. 4:3296–305
    [Google Scholar]
  55. Hilker N, Wang JM, Jeong C-H, Healy RM, Sofowote U et al. 2019. Traffic-related air pollution near roadways: discerning local impacts from background. Atmos. Meas. Tech. 12:105247–61
    [Google Scholar]
  56. Himsworth CG, Parsons KL, Jardine C, Patrick DM. 2013. Rats, cities, people, and pathogens: a systematic review and narrative synthesis of literature regarding the ecology of rat-associated zoonoses in urban centers. Vector-Borne Zoonotic Dis. 13:6349–59
    [Google Scholar]
  57. Hobbie SE, Grimm NB. 2020. Nature-based approaches to managing climate change impacts in cities. Philos. Trans. R. Soc. B 375:179420190124
    [Google Scholar]
  58. Hope D, Gries C, Zhu W, Fagan WF, Redman CL et al. 2003. Socioeconomics drive urban plant diversity. PNAS 100:158788–92
    [Google Scholar]
  59. Houweling TAJ, Karim-Kos HE, Kulik MC, Stolk WA, Haagsma JA et al. 2016. Socioeconomic inequalities in neglected tropical diseases: a systematic review. PLOS Negl. Trop. Dis. 10:5e0004546
    [Google Scholar]
  60. Huang G, Cadenasso ML. 2016. People, landscape, and urban heat island: dynamics among neighborhood social conditions, land cover and surface temperatures. Landsc. Ecol. 31:102507–15
    [Google Scholar]
  61. Jack JC, Gonet J, Mease A, Nowak K. 2020. Traditional knowledge underlies One Health. Science 369:65111576
    [Google Scholar]
  62. Jarvis P, Fawell J. 2021. Lead in drinking water—an ongoing public health concern?. Curr. Opin. Environ. Sci. Health 20:100239
    [Google Scholar]
  63. Jenerette GD, Harlan SL, Stefanov WL, Martin CA. 2011. Ecosystem services and urban heat riskscape moderation: water, green spaces, and social inequality in Phoenix, USA. Ecol. Appl. 21:72637–51
    [Google Scholar]
  64. Jennings V, Floyd MF, Shanahan D, Coutts C, Sinykin A. 2017. Emerging issues in urban ecology: implications for research, social justice, human health, and well-being. Popul. Environ. 39:169–86
    [Google Scholar]
  65. Jesdale BM, Morello-Frosch R, Cushing L. 2013. The racial/ethnic distribution of heat risk–related land cover in relation to residential segregation. Environ. Health Perspect. 121:7811–17
    [Google Scholar]
  66. Johnson MTJ, Munshi-South J. 2017. Evolution of life in urban environments. Science 358:6363eaam8327
    [Google Scholar]
  67. Katz G, Leisnham PT, Ladeau SL. 2020. Aedes albopictus body size differs across neighborhoods with varying infrastructural abandonment. J. Med. Entomol. 57:2615–19
    [Google Scholar]
  68. Kirkpatrick B, Fleming LE, Squicciarini D, Backer LC, Clark R et al. 2004. Literature review of Florida red tide: implications for human health effects. Harmful Algae 3:299–115
    [Google Scholar]
  69. Klinenberg E. 2015. Heat Wave: A Social Autopsy of Disaster in Chicago Chicago: Univ. Chicago Press. , 2nd ed..
  70. König HJ, Kiffner C, Kramer-Schadt S, Fürst C, Keuling O, Ford AT. 2020. Human–wildlife coexistence in a changing world. Conserv. Biol. 34:4786–94
    [Google Scholar]
  71. Kulp SA, Strauss BH. 2019. New elevation data triple estimates of global vulnerability to sea-level rise and coastal flooding. Nat. Commun. 10:14844
    [Google Scholar]
  72. Kuras ER, Warren PS, Zinda JA, Aronson MFJ, Cilliers S et al. 2020. Urban socioeconomic inequality and biodiversity often converge, but not always: a global meta-analysis. Landsc. Urban Plan. 198:March103799
    [Google Scholar]
  73. LaDeau SL, Allan BF, Leisnham PT, Levy MZ. 2015. The ecological foundations of transmission potential and vector-borne disease in urban landscapes. Funct. Ecol. 29:7889–901
    [Google Scholar]
  74. LaDeau SL, Leisnham PT, Biehler D, Bodner D. 2013. Higher mosquito production in low-income neighborhoods of Baltimore and Washington, DC: understanding ecological drivers and mosquito-borne disease risk in temperate cities. Int. J. Environ. Res. Public Health 10:41505–26
    [Google Scholar]
  75. Lane H, Sarkies M, Martin J, Haines T. 2017. Equity in healthcare resource allocation decision making: a systematic review. Soc. Sci. Med. 175:11–27
    [Google Scholar]
  76. Lane HM, Morello-Frosch R, Marshall JD, Apte JS. 2022. Historical redlining is associated with present-day air pollution disparities in U.S. cities. Environ. Sci. Technol. Lett. 9:4345–50
    [Google Scholar]
  77. Lebov J, Grieger K, Womack D, Zaccaro D, Whitehead N et al. 2017. A framework for One Health research. One Health 3:44–50
    [Google Scholar]
  78. Lee MJ, Byers KA, Cox SM, Stephen C, Patrick DM, Himsworth CG. 2021. Stakeholder perspectives on the development and implementation of approaches to municipal rat management. J. Urban Ecol. 7:1juab013
    [Google Scholar]
  79. Lee MJ, Byers KA, Donovan CM, Bidulka JJ, Stephen C et al. 2018. Effects of culling on Leptospira interrogans carriage by rats. Emerg. Infect. Dis. 24:2356–60
    [Google Scholar]
  80. Leong M, Dunn RR, Trautwein MD. 2018. Biodiversity and socioeconomics in the city: a review of the luxury effect. Biol. Lett. 14:520180082
    [Google Scholar]
  81. Lines J, Harpham T, Leake C, Schofield C. 1994. Trends, priorities and policy directions in the control of vector-borne diseases in urban environments. Health Policy Plan. 9:2113–29
    [Google Scholar]
  82. Lipsitt J, Chan-Golston AM, Liu J, Su J, Zhu Y, Jerrett M. 2021. Spatial analysis of COVID-19 and traffic-related air pollution in Los Angeles. Environ. Int. 153:106531
    [Google Scholar]
  83. Little E, Biehler D, Leisnham PT, Jordan R, Wilson S, LaDeau SL. 2017. Socio-ecological mechanisms supporting high densities of Aedes albopictus (Diptera: Culicidae) in Baltimore, MD. J. Med. Entomol. 54:51183–92
    [Google Scholar]
  84. Locke DH, Hall B, Grove JM, Pickett STA, Ogden LA et al. 2021. Residential housing segregation and urban tree canopy in 37 US Cities. npj Urban Sustain 1:115
    [Google Scholar]
  85. Lovett GM, Tear TH, Evers DC, Findlay SEG, Cosby BJ et al. 2009. Effects of air pollution on ecosystems and biological diversity in the eastern United States. Ann. N. Y. Acad. Sci. 1162:199–135
    [Google Scholar]
  86. Lowe EC, Latty T, Webb CE, Whitehouse MEA, Saunders ME. 2019. Engaging urban stakeholders in the sustainable management of arthropod pests. J. Pest Sci 92:3987–1002
    [Google Scholar]
  87. Lysaght T, Capps B, Bailey M, Bickford D, Coker R et al. 2017. Justice is the missing link in One Health: results of a mixed methods study in an urban city state. PLOS ONE 12:1e0170967
    [Google Scholar]
  88. Macintyre K, Keating J, Sosler S, Kibe L, Mbogo CM et al. 2002. Examining the determinants of mosquito-avoidance practices in two Kenyan cities. Malar. J. 1:114
    [Google Scholar]
  89. Magle SB, Fidino M, Sander HA, Rohnke AT, Larson KL et al. 2021. Wealth and urbanization shape medium and large terrestrial mammal communities. Glob. Chang. Biol. 27:215446–59
    [Google Scholar]
  90. Mascarenhas M. 2007. Where the waters divide: First Nations, tainted water and environmental justice in Canada. Local Environ 12:6565–77
    [Google Scholar]
  91. Mascarenhas M 2020. Lessons in Environmental Justice: From Civil Rights to Black Lives Matter and Idle No More Thousand Oaks, CA: SAGE Publ.
  92. Masri S, Lebrón AMW, Logue MD, Valencia E, Ruiz A et al. 2021. Risk assessment of soil heavy metal contamination at the census tract level in the city of Santa Ana, CA: implications for health and environmental justice. Environ. Sci. Process. Impacts. 23:6812–30
    [Google Scholar]
  93. McClymont H, Bambrick H, Si X, Vardoulakis S, Hu W. 2022. Future perspectives of emerging infectious diseases control: a One Health approach. One Health 14:100371
    [Google Scholar]
  94. McDonald RI, Kroeger T, Zhang P, Hamel P. 2020. The value of US urban tree cover for reducing heat-related health impacts and electricity consumption. Ecosystems 23:1137–50
    [Google Scholar]
  95. Meehan K, Jurjevich JR, Chun NMJW, Sherrill J. 2020. Geographies of insecure water access and the housing-water nexus in US cities. PNAS 117:4628700–707
    [Google Scholar]
  96. Meehl GA, Tebaldi C. 2004. More intense, more frequent, and longer lasting heat waves in the 21st century. Science 305:5686994–97
    [Google Scholar]
  97. Methorst J, Rehdanz K, Mueller T, Hansjürgens B, Bonn A, Böhning-Gaese K. 2021. The importance of species diversity for human well-being in Europe. Ecol. Econ. 181:106917
    [Google Scholar]
  98. Mi E, Mi E, Jeggo M 2016. Where to now for One Health and ecohealth?. EcoHealth 13:112–17
    [Google Scholar]
  99. Mikkelson GM, Gonzalez A, Peterson GD. 2007. Economic inequality predicts biodiversity loss. PLOS ONE 2:53–7
    [Google Scholar]
  100. Millett GA, Jones AT, Benkeser D, Baral S, Mercer L et al. 2020. Assessing differential impacts of COVID-19 on black communities. Ann. Epidemiol. 47:37–44
    [Google Scholar]
  101. Mitchell BC, Chakraborty J. 2015. Landscapes of thermal inequity: disproportionate exposure to urban heat in the three largest US cities. Environ. Res. Lett. 10:11115005
    [Google Scholar]
  102. Mohai P, Pellow D, Roberts JT. 2009. Environmental justice. Annu. Rev. Environ. Resour. 34:405–30
    [Google Scholar]
  103. Moise IK, Xue R-D, Zulu LC, Beier JC. 2020. A survey of program capacity and skills of Florida mosquito control districts to conduct arbovirus surveillance and control. J. Am. Mosq. Control Assoc. 36:299–106
    [Google Scholar]
  104. Morello-Frosch R, Jesdale BM. 2006. Separate and unequal: residential segregation and estimated cancer risks associated with ambient air toxins in U.S. metropolitan areas. Environ. Health Perspect. 114:3386–93
    [Google Scholar]
  105. Murray MH, Byers KA, Buckley J, Magle SB, Maffei D et al. 2021.. “ I don't feel safe sitting in my own yard”: Chicago resident experiences with urban rats during a COVID-19 stay-at-home order. BMC Public Health 21:11008
    [Google Scholar]
  106. Murray MH, Sánchez CA. 2021. Urban rat exposure to anticoagulant rodenticides and zoonotic infection risk. Biol. Lett. 17:820210311
    [Google Scholar]
  107. Murray MH, Sánchez CA, Becker DJ, Byers KA, Worsley-Tonks K EL, Craft ME 2019. City sicker? A meta-analysis of wildlife health and urbanization. Front. Ecol. Environ. 17:10575–83
    [Google Scholar]
  108. Namin S, Xu W, Zhou Y, Beyer K. 2020. The legacy of the Home Owners’ Loan Corporation and the political ecology of urban trees and air pollution in the United States. Soc. Sci. Med. 246:112758
    [Google Scholar]
  109. Nardone A, Casey JA, Morello-Frosch R, Mujahid M, Balmes JR, Thakur N. 2020a. Associations between historical residential redlining and current age-adjusted rates of emergency department visits due to asthma across eight cities in California: an ecological study. Lancet Planet. Health 4:1e24–31
    [Google Scholar]
  110. Nardone A, Chiang J, Corburn J. 2020b. Historic redlining and urban health today in U.S. cities. Environ. Justice 13:4109–19
    [Google Scholar]
  111. Nardone A, Rudolph KE, Morello-Frosch R, Casey JA. 2021. Redlines and greenspace: the relationship between historical redlining and 2010 greenspace across the United States. Environ. Health Perspect. 129:1017006
    [Google Scholar]
  112. Nardone AL, Casey JA, Rudolph KE, Karasek D, Mujahid M, Morello-Frosch R. 2020c. Associations between historical redlining and birth outcomes from 2006 through 2015 in California. PLOS ONE 15:8e0237241
    [Google Scholar]
  113. Nesbitt L, Meitner MJ, Girling C, Sheppard SRJ, Lu Y. 2019. Who has access to urban vegetation? A spatial analysis of distributional green equity in 10 US cities. Landsc. Urban Plan. 181:51–79
    [Google Scholar]
  114. Niedringhaus KD, Nemeth NM, Gibbs S, Zimmerman J, Shender L et al. 2021. Anticoagulant rodenticide exposure and toxicosis in bald eagles (Haliaeetus leucocephalus) and golden eagles (Aquila chrysaetos) in the United States. PLOS ONE 16:4e0246134
    [Google Scholar]
  115. Nowak DJ, Ellis A, Greenfield EJ. 2022. The disparity in tree cover and ecosystem service values among redlining classes in the United States. Landsc. Urban Plan. 221:104370
    [Google Scholar]
  116. Oke TR. 1973. City size and the urban heat island. Atmos. Environ. 7:8769–79
    [Google Scholar]
  117. Ouyang JQ, Isaksson C, Schmidt C, Hutton P, Bonier F, Dominoni D. 2018. A new framework for urban ecology: an integration of proximate and ultimate responses to anthropogenic change. Integr. Comp. Biol. 58:5915–28
    [Google Scholar]
  118. Pataki DE. 2015. Grand challenges in urban ecology. Front. Ecol. Evol. 3:57
    [Google Scholar]
  119. Patz JA, Hahn MB 2012. Climate change and human health: a One Health approach. One Health: The Human–Animal–Environment Interfaces in Emerging Infectious Diseases, ed. JS Mackenzie, M Jeggo, P Daszak, J Richt 141–71 Berlin: Springer
    [Google Scholar]
  120. Pickett STA, Cadenasso ML, Childers DL, McDonnell MJ, Zhou W. 2016. Evolution and future of urban ecological science: ecology in, of, and for the city. Ecosyst. Health Sustain. 2:7e01229
    [Google Scholar]
  121. Piketty T, Saez E. 2014. Inequality in the long run. Science 344:6186838–43
    [Google Scholar]
  122. Pope R, Wu J, Boone C. 2016. Spatial patterns of air pollutants and social groups: a distributive environmental justice study in the phoenix metropolitan region of USA. Environ. Manag. 58:5753–66
    [Google Scholar]
  123. Pratt G, Vadali M, Kvale D, Ellickson K. 2015. Traffic, air pollution, minority and socio-economic status: addressing inequities in exposure and risk. Int. J. Environ. Res. Public Health 12:55355–72
    [Google Scholar]
  124. Rigolon A. 2016. A complex landscape of inequity in access to urban parks: a literature review. Landsc. Urban Plan. 153:160–69
    [Google Scholar]
  125. Rigolon A, Browning M, Jennings V 2018. Inequities in the quality of urban park systems: an environmental justice investigation of cities in the United States. Landsc. Urban Plan. 178:June156–69
    [Google Scholar]
  126. Rossen LM, Pollack KM. 2012. Making the connection between zoning and health disparities. Environ. Justice. 5:3119–27
    [Google Scholar]
  127. Rothman SE, Jones JA, LaDeau SL, Leisnham PT. 2021. Higher West Nile virus infection in Aedes albopictus (Diptera: Culicidae) and Culex (Diptera: Culicidae) mosquitoes from lower income neighborhoods in urban Baltimore, MD. J. Med. Entomol. 58:31424–28
    [Google Scholar]
  128. Rousham EK, Unicomb L, Islam MA. 2018. Human, animal and environmental contributors to antibiotic resistance in low-resource settings: integrating behavioural, epidemiological and One Health approaches. Proc. R. Soc. B 285:187620180332
    [Google Scholar]
  129. Rüegg SR, McMahon BJ, Häsler B, Esposito R, Nielsen LR et al. 2017. A blueprint to evaluate One Health. Front. Public Health 5:20
    [Google Scholar]
  130. Scarpino SV, Scott JG, Eggo R, Dimitrov NB, Meyers LA. 2016. Data blindspots: high-tech disease surveillance misses the poor. Online J. Public Health Inform. 8:12579
    [Google Scholar]
  131. Schaider LA, Swetschinski L, Campbell C, Rudel RA. 2019. Environmental justice and drinking water quality: Are there socioeconomic disparities in nitrate levels in U.S. drinking water?. Environ. Health 18:13
    [Google Scholar]
  132. Schell CJ, Dyson K, Fuentes TL, Des Roches S, Harris NC et al. 2020. The ecological and evolutionary consequences of systemic racism in urban environments. Science 369:6510eaay4497
    [Google Scholar]
  133. Schlosberg D, Collins LB. 2014. From environmental to climate justice: climate change and the discourse of environmental justice. WIREs Clim. Chang. 5:3359–74
    [Google Scholar]
  134. Schmidt C, Garroway CJ. 2022. Systemic racism alters wildlife genetic diversity. EcoEvoRxiv. https://doi.org/10.32942/osf.io/wbq83
    [Crossref]
  135. Schneider EC, Shah A, Doty MM, Tikkanen R, Fields K, Williams RD II. 2021. Mirror, mirror 2021: Reflecting poorly: health care in the US compared to other high-income countries. Tech. Rep., Commonw. Fund, New York
  136. Sepp T, Ujvari B, Ewald PW, Thomas F, Giraudeau M. 2019. Urban environment and cancer in wildlife: available evidence and future research avenues. Proc. R. Soc. B 286:189420182434
    [Google Scholar]
  137. Setälä H, Viippola V, Rantalainen A-L, Pennanen A, Yli-Pelkonen V. 2013. Does urban vegetation mitigate air pollution in northern conditions?. Environ. Pollut. 183:104–12
    [Google Scholar]
  138. Seto KC, Güneralp B, Hutyra LR. 2012. Global forecasts of urban expansion to 2030 and direct impacts on biodiversity and carbon pools. PNAS 109:4016083–88
    [Google Scholar]
  139. Shochat E, Lerman SB, Anderies JM, Warren PS, Faeth SH, Nilon CH. 2010. Invasion, competition, and biodiversity loss in urban ecosystems. BioScience 60:3199–208
    [Google Scholar]
  140. Sol D, González-Lagos C, Moreira D, Maspons J, Lapiedra O. 2014. Urbanisation tolerance and the loss of avian diversity. Ecol. Lett. 17:8942–50
    [Google Scholar]
  141. Staudinger MD, Carter SL, Cross MS, Dubois NS, Duffy JE et al. 2013. Biodiversity in a changing climate: a synthesis of current and projected trends in the US. Front. Ecol. Environ. 11:9465–73
    [Google Scholar]
  142. Tedesco C, Ruiz M, McLafferty S. 2010. Mosquito politics: local vector control policies and the spread of West Nile virus in the Chicago region. Health Place 16:61188–95
    [Google Scholar]
  143. Terrell K, James W. 2020. Air pollution and COVID-19 : a double whammy for African American and impoverished communities in Cancer Alley Work. Pap. Tulane Environ. Law Clin. New Orleans, LA: https://law.tulane.edu/sites/law.tulane.edu/files/Files/Terrell%20-%20COVID-19%20-%20PM%202.5%20Louisiana%202020-5-14%20WEB%20VERSION.pdf
  144. Tessum CW, Paolella DA, Chambliss SE, Apte JS, Hill JD, Marshall JD. 2021. PM2.5 polluters disproportionately and systemically affect people of color in the United States. Sci. Adv. 7:18eabf4491
    [Google Scholar]
  145. Trainer VL, Baden DG. 1999. High affinity binding of red tide neurotoxins to marine mammal brain. Aquat. Toxicol. 46:2139–48
    [Google Scholar]
  146. Trinh P, Zaneveld JR, Safranek S, Rabinowitz PM. 2018. One Health relationships between human, animal, and environmental microbiomes: a mini-review. Front. Public Health 6:235
    [Google Scholar]
  147. Trisos CH, Auerbach J, Katti M 2021. Decoloniality and anti-oppressive practices for a more ethical ecology. Nat. Ecol. Evol. 5:1205–12
    [Google Scholar]
  148. UN Dep. Econ. Soc. Aff 2018. 2018 Revision of World Urbanization Prospects United Nations New York: updated May 16. https://population.un.org/wup/
  149. VanAcker MC, Little EAH, Molaei G, Bajwa WI, Diuk-Wasser MA. 2019. Enhancement of risk for Lyme disease by landscape connectivity, New York, New York, USA. Emerg. Infect. Dis. 25:61136–43
    [Google Scholar]
  150. Vandentorren S, Bretin P, Zeghnoun A, Mandereau-Bruno L, Croisier A et al. 2006. August 2003 heat wave in France: risk factors for death of elderly people living at home. Eur. J. Public Health 16:6583–91
    [Google Scholar]
  151. Vittoz P, Cherix D, Gonseth Y, Lubini V, Maggini R et al. 2013. Climate change impacts on biodiversity in Switzerland: a review. J. Nat. Conserv. 21:3154–62
    [Google Scholar]
  152. Walsh TR. 2018. A one-health approach to antimicrobial resistance. Nat. Microbiol. 3:8854–55
    [Google Scholar]
  153. Wang C, Wang ZH, Wang C, Myint SW. 2019. Environmental cooling provided by urban trees under extreme heat and cold waves in U.S. cities. Remote Sens. Environ. 227:March28–43
    [Google Scholar]
  154. Wang X, Dallimer M, Scott CE, Shi W, Gao J. 2021. Tree species richness and diversity predicts the magnitude of urban heat island mitigation effects of greenspaces. Sci. Total Environ. 770:145211
    [Google Scholar]
  155. Watkins SL, Gerrish E. 2018. The relationship between urban forests and race: a meta-analysis. J. Environ. Manag. 209:152–68
    [Google Scholar]
  156. White A, Hughes JM. 2019. Critical importance of a One Health approach to antimicrobial resistance. EcoHealth 16:3404–9
    [Google Scholar]
  157. Wilby RL, Perry GLW. 2006. Climate change, biodiversity and the urban environment: a critical review based on London, UK. Prog. Phys. Geogr. Earth Environ. 30:173–98
    [Google Scholar]
  158. Wilcox BA, Aguirre AA, De Paula N, Siriaroonrat B, Echaubard P. 2019. Operationalizing One Health employing social-ecological systems theory: lessons from the Greater Mekong Sub-region. Front. Public Health 7:85
    [Google Scholar]
  159. Wimberly MC, Davis JK, Evans MV, Hess A, Newberry PM et al. 2020. Land cover affects microclimate and temperature suitability for arbovirus transmission in an urban landscape. PLOS Negl. Trop. Dis. 14:9e0008614
    [Google Scholar]
  160. Wolch JR, Byrne J, Newell JP. 2014. Urban green space, public health, and environmental justice: the challenge of making cities “just green enough. .” Landsc. Urban Plan. 125:234–44
    [Google Scholar]
  161. Wood E, Harsant A, Dallimer M, Cronin de Chavez A, McEachan RRC, Hassall C. 2018. Not all green space is created equal: Biodiversity predicts psychological restorative benefits from urban green space. Front. Psychol. 9:2320
    [Google Scholar]
  162. Wu X, Nethery RC, Sabath MB, Braun D, Dominici F. 2020. Air pollution and COVID-19 mortality in the United States: strengths and limitations of an ecological regression analysis. Sci. Adv. 6:45eabd4049
    [Google Scholar]
  163. Zinsstag J, Crump L, Schelling E, Hattendorf J, Maidane YO et al. 2018. Climate change and One Health. FEMS Microbiol. Lett. 365:11fny085
    [Google Scholar]
  164. Zinsstag J, Mackenzie JS, Jeggo M, Heymann DL, Patz JA, Daszak P. 2012. Mainstreaming One Health. EcoHealth 9:2107–10
    [Google Scholar]
  165. Zinsstag J, Schelling E, Waltner-Toews D, Tanner M. 2011. From “one medicine” to “one health” and systemic approaches to health and well-being. Prev. Vet. Med. 101:3–4148–56
    [Google Scholar]
  166. Ziter CD, Pedersen EJ, Kucharik CJ, Turner MG. 2019. Scale-dependent interactions between tree canopy cover and impervious surfaces reduce daytime urban heat during summer. PNAS 116:157575–80
    [Google Scholar]
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