Rocklöv, J. & Dubrow, R. Climate change: an enduring challenge for vector-borne disease prevention and control. Nat. Immunol. 21, 479–483 (2020).
Neiderud, C.-J. How urbanization affects the epidemiology of emerging infectious diseases. Infect. Ecol. Epidemiol. 5, 27060 (2015).
World Health Organization. Global Framework for the Response to Malaria in Urban Areas (2022); https://www.who.int/publications/i/item/9789240061781
Connolly, C., Keil, R. & Ali, S. H. Extended urbanisation and the spatialities of infectious disease: demographic change, infrastructure and governance. Urban. Stud. 58, 004209802091087 (2020).
Messina, J. P. et al. The current and future global distribution and population at risk of dengue. Nat. Microbiol. 4, 1508–1515 (2019).
Ryan, S. J. et al. Warming temperatures could expose more than 1.3 billion new people to Zika virus risk by 2050. Global Change Biol. 27, 84–93 (2020).
Ryan, S. J., Carlson, C. J., Mordecai, E. A. & Johnson, L. R. Global expansion and redistribution of Aedes-borne virus transmission risk with climate change. PLoS Negl. Trop. Dis. 13, e0007213 (2019).
Colón-González, F. J. et al. Projecting the risk of mosquito-borne diseases in a warmer and more populated world: a multi-model, multi-scenario intercomparison modelling study. Lancet Planet. Health 5, 404–414 (2021).
Paz, S. Climate change: a driver of increasing vector-borne disease transmission in non-endemic areas. PLoS Med. 21, e1004382 (2024).
Robert, M. A., Stewart-Ibarra, A. M. & Estallo, E. L. Climate change and viral emergence: evidence from Aedes-borne arboviruses. Curr. Opin. Virol. 40, 41–47 (2020).
Gibb, R. et al. Interactions between climate change, urban infrastructure and mobility are driving dengue emergence in Vietnam. Nat. Commun. 14, 8179 (2023).
Pfenning-Butterworth, A. et al. Interconnecting global threats: climate change, biodiversity loss, and infectious diseases. Lancet Planet. Health 8, e270–e283 (2024).
Bogoch, I. I. et al. Potential for Zika virus introduction and transmission in resource-limited countries in Africa and the Asia-Pacific region: a modelling study. Lancet Infect. Dis. 16, 1237–1245 (2016).
Kraemer, M. U. G. et al. Spread of yellow fever virus outbreak in Angola and the Democratic Republic of the Congo 2015–16: a modelling study. Lancet Infect. Dis. 17, 330–338 (2017).
Bonell, A., Lubell, Y., Newton, P. N., Crump, J. A. & Paris, D. H. Estimating the burden of scrub typhus: a systematic review. PLoS Negl. Trop. Dis. 11, e0005838 (2017).
Zangpo, T. et al. Environmental, occupational, and demographic risk factors for clinical scrub typhus, Bhutan. Emerg. Infect. Dis. 29, 909–918 (2023).
Lewis, M. D. et al. Scrub typhus reemergence in the Maldives. Emerg. Infect. Dis. 9, 1638–1641 (2003).
Wu, Y. C. et al. Spatiotemporal dynamics of scrub typhus transmission in Mainland China, 2006-2014. PLoS Negl. Trop. Dis. 10, e0004875 (2016).
Zhang, S. et al. Scrub typhus in previously unrecognized areas of endemicity in China. J. Clin. Microbiol. 48, 1241–1244 (2010).
Liu, Y. et al. Clinical characteristics of the autumn-winter type scrub typhus cases in south of Shandong Province, Northern China. BMC Infect. Dis. 9, 82 (2009).
Hu, J. et al. Clinical characteristics and risk factors of an outbreak with scrub typhus in previously unrecognized areas, Jiangsu Province, China 2013. PLoS ONE 10, e0125999 (2015).
Li, Z. et al. Epidemiologic changes of scrub typhus in China, 1952–2016. Emerg. Infect. Dis. 26, 1091–1101 (2020).
Park, S. W. et al. Urbanization of scrub typhus disease in South Korea. PLoS Negl. Trop. Dis. 9, e0003814 (2015).
Elliott, I. et al. Scrub typhus ecology: a systematic review of Orientia in vectors and hosts. Parasit. Vectors 12, 513 (2019).
Xu, G., Walker, D. H., Jupiter, D., Melby, P. C. & Arcari, C. M. A review of the global epidemiology of scrub typhus. PLoS Negl. Trop. Dis. 11, e0006062 (2017).
Ren, Z., Zhao, H., Shi, K. & Yang, G. Spatial and temporal variations of the precipitation structure in Jiangsu Province from 1960 to 2020 and its potential climate-driving factors. Water 15, 4032 (2023).
Mi, L. et al. Evaluating the effectiveness of regional ecological civilization policy: evidence from Jiangsu Province, China. Int. J. Environ. Res. Public Health 19, 388 (2022).
Zhang, S. et al. Indicators for environment health risk assessment in the Jiangsu Province of China. Int. J. Environ. Res. Public Health 12, 11012–11024 (2015).
Ren, J. et al. The epidemiology of Aedes-borne arboviral diseases in Zhejiang, Southeast China: a 20 years population-based surveillance study. Front. Public Health 11, 1270781 (2023).
Wang, T. et al. Mapping the distributions of mosquitoes and mosquito-borne arboviruses in China. Viruses 14, 691 (2022).
Sun, J.-M. et al. Factors associated with spatial distribution of severe fever with thrombocytopenia syndrome. Sci. Total Environ. 750, 141522 (2021).
Miao, D. et al. Mapping the global potential transmission hotspots for severe fever with thrombocytopenia syndrome by machine learning methods. Emerg. Microbes Infect. 9, 817–826 (2020).
Wu, W., Huang, X. & Li, J. in Prevention and Control of Infectious Diseases in BRI Countries Vol. 85 (Springer, 2021).
Vanwambeke, S. O., Linard, C. & Gilbert, M. Emerging challenges of infectious diseases as a feature of land systems. Curr. Opin. Env. Sust. 38, 31–36 (2019).
Kernbach, M. E. et al. Light pollution affects West Nile virus exposure risk across Florida. Proc. R. Soc. B 288, 20210253 (2021).
Hassell, J. M., Begon, M., Ward, M. J. & Fèvre, E. M. Urbanization and disease emergence: dynamics at the wildlife–livestock–human interface. Trends Ecol. Evol. 32, 55–67 (2017).
Kweon, S.-S. et al. A community-based case-control study of behavioral factors associated with scrub typhus during the autumn epidemic season in South Korea. Am. J. Trop. Med. Hyg. 80, 442–446 (2009).
LaDeau, S. L., Allan, B. F., Leisnham, P. T. & Levy, M. Z. The ecological foundations of transmission potential and vector‐borne disease in urban landscapes. Funct. Ecol. 29, 889–901 (2015).
Mordecai, E. A., Ryan, S. J., Caldwell, J. M., Shah, M. M. & LaBeaud, A. D. Climate change could shift disease burden from malaria to arboviruses in Africa. Lancet Planet. Health 4, e416–e423 (2020).
Tran, H. T. D. et al. Ecological and behavioural risk factors of scrub typhus in central Vietnam: a case-control study. Infect. Dis. Poverty 10, 110 (2021).
Zeng, Y., Vaupel, J. W., Xiao, Z., Zhang, C. & Liu, Y. Sociodemographic and health profiles of the oldest old in China. Popul. Dev. Rev. 28, 251–273 (2002).
Marchi, S., Trombetta, C. M. & Montomoli, E. in Public Health—Emerging and Re-emerging Issues (InTech, 2018).
Huang, Y.-J. S., Higgs, S. & Vanlandingham, D. L. Arbovirus-mosquito vector-host interactions and the impact on transmission and disease pathogenesis of arboviruses. Front. Microbiol. 10, 22 (2019).
National Guideline of Scrub Typhus Control and Prevention (2009); http://www.jygcdc.com/html/col15/content15_1070.html
World Health Organization. Health at a Glance: Asia/Pacific 2020: Measuring Progress Towards Universal Health Coverage (OECD, 2020).
Mu, H. et al. A global record of annual terrestrial Human Footprint dataset from 2000 to 2018. Sci. Data 9, 176 (2022).
Gage, K. L., Burkot, T. R., Eisen, R. J. & Hayes, E. B. Climate and vectorborne diseases. Am. J. Prev. Med. 35, 436–450 (2008).
Hersbach, H. et al. The ERA5 global reanalysis. Q. J. R. Meteorol. Soc. 146, 1999–2049 (2020).