| [1] | Zhong X K, Huang X, Zhu C Y, et al. Science-based suggestions to save the world's rarest primate species Nomascus hainanus [J]. Science Advances, 2025, 11(15): eadv4828. https://doi.org/10.1126/SCIADV.ADV4828 doi: 10.1126/SCIADV.ADV4828 |
| [2] | Bryant J V, Gottelli D, Zeng X, et al. Assessing current genetic status of the Hainan gibbon using historical and demographic baselines: implications for conservation management of species of extreme rarity [J]. Molecular Ecology, 2016, 25(15): 3540−3556. https://doi.org/10.1111/mec.13716 doi: 10.1111/mec.13716 |
| [3] | Guo Y Q, Peng D, Han L, et al. Mitochondrial DNA control region sequencing of the critically endangered Hainan gibbon (Nomascus hainanus) reveals two female origins and extremely low genetic diversity [J]. Mitochondrial DNA B Resources, 2021, 6(4): 1355−1359. https://doi.org/10.1080/23802359.2021.1909432 doi: 10.1080/23802359.2021.1909432 |
| [4] | Bryant J V, Zeng X Y, Hong X J, et al. Spatiotemporal requirements of the Hainan gibbon: does home range constrain recovery of the world's rarest ape? [J]. American Journal of Primatology, 2017, 79(3): e22617. https://doi.org/10.1002/ajp.22617 doi: 10.1002/ajp.22617 |
| [5] | He Q Q, Yan S S, Garber P A, et al. Habitat restoration is the greatest challenge for population recovery of Hainan gibbons (Nomascus hainanus) [J]. Integrative Zoology, 2023, 18(4): 630−646. https://doi.org/10.1111/1749-4877.12684 doi: 10.1111/1749-4877.12684 |
| [6] | MacPhee R D E, Greenwood A D. Infectious disease, endangerment, and extinction [J]. International Journal of Evolutionary Biology, 2013, 2013(1): 571939. https://doi.org/10.1155/2013/571939 doi: 10.1155/2013/571939 |
| [7] | McCallum H, Dobson A. Disease, habitat fragmentation and conservation [J]. Proceedings of the Royal Society B: Biological Sciences, 2002, 269(1504): 2041−2049. https://doi.org/10.1098/rspb.2002.2079 doi: 10.1098/rspb.2002.2079 |
| [8] | Wilkinson D A, Marshall J C, French N P, et al. Habitat fragmentation, biodiversity loss and the risk of novel infectious disease emergence [J]. Journal of the Royal Society Interface, 2018, 15(149): 20180403. https://doi.org/10.1098/rsif.2018.0403 doi: 10.1098/rsif.2018.0403 |
| [9] | Diuk-Wasser M A, Vanacker M C, Fernandez M P. Impact of land use changes and habitat fragmentation on the eco-epidemiology of tick-borne diseases [J]. Journal of Medical Entomology, 2021, 58(4): 1546−1564. https://doi.org/10.1093/jme/tjaa209 doi: 10.1093/jme/tjaa209 |
| [10] | Breed A C, Plowright R K, Hayman D T S, et al. Disease management in endangered mammals[M]//Delahay R J, Smith G C, Hutchings M R. Management of disease in wild mammals. Tokyo: Springer, 2009: 215−239. https://doi.org/10.1007/978-4-431-77134-0_11 |
| [11] | Mackenzie J S, Jeggo M, Daszak P, et al. One health: the human-animal-environment interfaces in emerging infectious diseases [M]. Berlin, Heidelberg: Springer, 2013.(查阅网上资料,未找到本条文献页码信息,请补充) https://doi.org/10.1007/978-3-642-36889-9 |
| [12] | Chan B P L, Lo Y F P, Hong X J, et al. First use of artificial canopy bridge by the world's most critically endangered primate the Hainan gibbon Nomascus hainanus [J]. Scientific Reports, 2020, 10(1): 15176. https://doi.org/10.1038/s41598-020-72641-z doi: 10.1038/s41598-020-72641-z |
| [13] | Sojka P A, Ploog C L, Garner M M, et al. Acute human orthopneumovirus infection in a captive white-handed gibbon [J]. Journal of Veterinary Diagnostic Investigation, 2020, 32(3): 450−453. https://doi.org/10.1177/1040638720910521 doi: 10.1177/1040638720910521 |
| [14] | Hobbs E C, Reid T J. Animals and SARS-CoV-2: species susceptibility and viral transmission in experimental and natural conditions, and the potential implications for community transmission [J]. Transboundary and Emerging Diseases, 2021, 68(4): 1850−1867. https://doi.org/10.1111/tbed.13885 doi: 10.1111/tbed.13885 |
| [15] | Zhong Z J, Tian Y A, Li W, et al. Multilocus genotyping of Giardia duodenalis in captive non-human primates in Sichuan and Guizhou provinces, Southwestern China [J]. PLoS One, 2017, 12(9): e0184913.(查阅网上资料,不确定本条文献标黄作者姓名,请确认) https://doi.org/10.1371/journal.pone.0184913 |
| [16] | Mehl C, Mätz-Rensing K, Linde J, et al. Case report: tularaemia in a white-handed gibbon (Hylobates lar), Germany [J]. International Journal of Veterinary Science and Medicine, 2023, 11(1): 121−125. https://doi.org/10.1080/23144599.2023.2264084 doi: 10.1080/23144599.2023.2264084 |
| [17] | Pal M, Tewari A, Gerbaba N D, et al. Melioidosis: an emerging yet neglected bacterial zoonosis [J]. Journal of Bacteriology & Mycology: Open Access, 2022, 10(2): 62-65. doi: 10.15406/jbmoa.2022.10.00323 |
| [18] | Devaux C A, Mediannikov O, Medkour H, et al. Infectious disease risk across the growing human-non human primate interface: a review of the evidence [J]. Frontiers in Public Health, 2019, 7: 305. https://doi.org/10.3389/fpubh.2019.00305 doi: 10.3389/fpubh.2019.00305 |
| [19] | Patouillat L, Hambuckers A, Subrata S A, et al. Zoonotic pathogens in wild Asian primates: a systematic review highlighting research gaps [J]. Frontiers in Veterinary Science, 2024, 11: 1386180. https://doi.org/10.3389/FVETS.2024.1386180 doi: 10.3389/FVETS.2024.1386180 |
| [20] | Berkowitz A, Blum S E, Horowitz Y, et al. Mortality in a group of zoo siamang gibbon monkeys (Symphalangus syndactylus) due to Salmonella enteritidis. First report in Israel [J]. Israel Journal of Veterinary Medicine, 2021, 76(3): 137−142. (查阅网上资料, 未找到本条文献doi信息, 请补充) |
| [21] | Benoit Q, Céline F B, Marine G, et al. Suspicion of epizootic Lawsonia intracellularis disease in a group of pileated gibbons (Hylobates pileatus) [J]. Veterinary Record Case Reports, 2020, 8(4): e001284. https://doi.org/10.1136/vetreccr-2020-001284 doi: 10.1136/vetreccr-2020-001284 |
| [22] | Graeff-Teixeira C, Morassutti A L, Kazacos K R. Update on baylisascariasis, a highly pathogenic zoonotic infection [J]. Clinical Microbiology Reviews, 2016, 29(2): 375−399. https://doi.org/10.1128/cmr.00044-15 doi: 10.1128/cmr.00044-15 |
| [23] | Thompson R C A. Parasite zoonoses and wildlife: one health, spillover and human activity [J]. International Journal for Parasitology, 2013, 43(12/13): 1079−1088. https://doi.org/10.1016/j.ijpara.2013.06.007 doi: 10.1016/j.ijpara.2013.06.007 |
| [24] | Woźniakowski G, Samorek-Salamonowicz E. Animal herpesviruses and their zoonotic potential for cross-species infection [J]. Annals of Agricultural and Environmental Medicine, 2015, 22(2): 191−194. https://doi.org/10.5604/12321966.1152063 doi: 10.5604/12321966.1152063 |
| [25] | Rideout B A, Gardiner C H, Stalis I H, et al. Fatal infections with Balamuthia mandrillaris (a free-living amoeba) in gorillas and other Old World primates [J]. Veterinary Pathology, 1997, 34(1): 15−22. https://doi.org/10.1177/030098589703400103 doi: 10.1177/030098589703400103 |
| [26] | Alfano N, Michaux J, Morand S, et al. Endogenous gibbon ape leukemia virus identified in a rodent (Melomys burtoni subsp. ) from Wallacea (Indonesia) [J]. Journal of Virology, 2016, 90(18): 8169−8180. https://doi.org/10.1128/jvi.00723-16 doi: 10.1128/jvi.00723-16 |
| [27] | Kaewchot S, Tangsudjai S, Sariya L, et al. Zoonotic pathogens survey in free-living long-tailed macaques in Thailand [J]. International Journal of Veterinary Science and Medicine, 2022, 10(1): 11−18. https://doi.org/10.1080/23144599.2022.2040176 doi: 10.1080/23144599.2022.2040176 |
| [28] | Kosoltanapiwat N, Tongshoob J, Ampawong S, et al. Simian adenoviruses: molecular and serological survey in monkeys and humans in Thailand [J]. One Health, 2022, 15: 100434. https://doi.org/10.1016/j.onehlt.2022.100434 doi: 10.1016/j.onehlt.2022.100434 |
| [29] | 武正军, 李义明. 生境破碎化对动物种群存活的影响[J]. 生态学报, 2003, 23(11): 2424−2435. https://doi.org/10.3321/j.issn:1000-0933.2003.11.027 doi: 10.3321/j.issn:1000-0933.2003.11.027 |
| [30] | Loh E H, Murray K A, Nava A, et al. Evaluating the links between biodiversity, land-use change, and infectious disease emergence[M]//Aguirre A, Sukumar R. Tropical conservation. Oxford: Oxford University Press, 2016: 79. |
| [31] | Plowright R K, Reaser J K, Locke H, et al. Land use-induced spillover: a call to action to safeguard environmental, animal, and human health [J]. The Lancet Planetary health, 2021, 5(4): e237−e245. https://doi.org/10.1016/S2542-5196(21)00031-0 doi: 10.1016/S2542-5196(21)00031-0 |
| [32] | Hechinger R F, Lafferty K D. Host diversity begets parasite diversity: bird final hosts and trematodes in snail intermediate hosts [J]. Proceedings of the Royal Society B: Biological Sciences, 2005, 272(1567): 1059−1066. https://doi.org/10.1098/RSPB.2005.3070 doi: 10.1098/RSPB.2005.3070 |
| [33] | Poulin R. Parasite biodiversity revisited: frontiers and constraints [J]. International Journal for Parasitology, 2014, 44(9): 581−589. https://doi.org/10.1016/j.ijpara.2014.02.003 doi: 10.1016/j.ijpara.2014.02.003 |
| [34] | Johnson P T J, Wood C L, Joseph M B, et al. Habitat heterogeneity drives the host-diversity-begets-parasite-diversity relationship: evidence from experimental and field studies [J]. Ecology Letters, 2016, 19(7): 752−761. https://doi.org/10.1111/ele.12609 doi: 10.1111/ele.12609 |
| [35] | Patz J A, Daszak P, Tabor G M, et al. Unhealthy landscapes: policy recommendations on land use change and infectious disease emergence [J]. Environmental Health Perspectives, 2004, 112(10): 1092−1098. https://doi.org/10.1289/ehp.6877 doi: 10.1289/ehp.6877 |
| [36] | Dirzo R, Young H S, Galetti M, et al. Defaunation in the Anthropocene [J]. Science, 2014, 345(6195): 401−406. https://doi.org/10.1126/science.1251817 doi: 10.1126/science.1251817 |
| [37] | Loh E H, Zambrana-Torrelio C, Olival K J, et al. Targeting transmission pathways for emerging zoonotic disease surveillance and control [J]. Vector-Borne and Zoonotic Diseases, 2015, 15(7): 432−437. https://doi.org/10.1089/vbz.2013.1563 doi: 10.1089/vbz.2013.1563 |
| [38] | Young H S, McCauley D J, Galetti M, et al. Patterns, causes, and consequences of anthropocene defaunation [J]. Annual Review of Ecology, Evolution, and Systematics, 2016, 47: 333−358. https://doi.org/10.1146/annurev-ecolsys-112414-054142 doi: 10.1146/annurev-ecolsys-112414-054142 |
| [39] | Cheng C Y, Li J, Liu W J, et al. Modeling analysis revealed the distinct global transmission patterns of influenza A viruses and their influencing factors [J]. Integrative Zoology, 2021, 16(6): 788−797. https://doi.org/10.1111/1749-4877.12469 doi: 10.1111/1749-4877.12469 |
| [40] | Xu L, Stige L C, Chan K S, et al. Climate variation drives dengue dynamics [J]. Proceedings of the National Academy of Sciences of the United States of America, 2017, 114(1): 113−118. https://doi.org/10.1073/pnas.1618558114 doi: 10.1073/pnas.1618558114 |
| [41] | Lowen A C, Mubareka S, Steel J, et al. Influenza virus transmission is dependent on relative humidity and temperature [J]. PLoS Pathogens, 2007, 3(10): e151. https://doi.org/10.1371/JOURNAL.PPAT.0030151 doi: 10.1371/JOURNAL.PPAT.0030151 |
| [42] | Qi H C, Xiao S, Shi R Y, et al. COVID-19 transmission in Mainland China is associated with temperature and humidity: a time-series analysis [J]. Science of the Total Environment, 2020, 728: 138778. https://doi.org/10.1016/j.scitotenv.2020.138778 doi: 10.1016/j.scitotenv.2020.138778 |
| [43] | Wan X R, Cheng C Y, Zhang Z B. Early transmission of COVID-19 has an optimal temperature but late transmission decreases in warm climate [J]. medRxiv, 2020.(查阅网上资料,未找到本条文献卷期页码信息,请确认) https://doi.org/10.1101/2020.05.14.20102459 |
| [44] | Xu L, Liu Q Y, Stige L C, et al. Nonlinear effect of climate on plague during the third pandemic in China [J]. Proceedings of the National Academy of Sciences of the United States of America, 2011, 108(25): 10214−10219. https://doi.org/10.1073/pnas.1019486108 doi: 10.1073/pnas.1019486108 |
| [45] | Liu Q Y, Liu X B, Cirendunzhu, et al. Mosquitoes established in Lhasa city, Tibet, China [J]. Parasites & Vectors, 2013, 6(1): 224. https://doi.org/10.1186/1756-3305-6-224 doi: 10.1186/1756-3305-6-224 |
| [46] | 张美文, 郭聪, 王勇, 等. 我国黄胸鼠的研究现状[J]. 动物学研究, 2000, 21(6): 487−497. https://doi.org/10.3321/j.issn:0254-5853.2000.06.013 doi: 10.3321/j.issn:0254-5853.2000.06.013 |
| [47] | Tian H D, Yan C, Xu L, et al. Scale-dependent climatic drivers of human epidemics in ancient China [J]. Proceedings of the National Academy of Sciences of the United States of America, 2017, 114(49): 12970−12975. https://doi.org/10.1073/pnas.1706470114 doi: 10.1073/pnas.1706470114 |
| [48] | Riley S P D, Serieys L E K, Moriarty J G. Infectious disease and contaminants in urban wildlife: unseen and often overlooked threats[M]//McCleery R A, Moorman C E, Peterson M N. Urban wildlife conservation: theory and practice. Boston: Springer, 2014: 175−215. https://doi.org/10.1007/978-1-4899-7500-3_10 |
| [49] | Preeti J K R, Thakur M, Suman M, et al. Consequences of pollution in wildlife: a review [J]. The Pharma Innovation Journal, 2018, 7(4): 94−102. (查阅网上资料, 未找到本条文献doi信息, 请补充) |
| [50] | Yang L L, Wang W X, Wronski T, et al. Community structure and environmental determinants of the bacterial and fungal gut microflora in Hainan gibbons (Nomascus hainanus) [J]. Global Ecology and Conservation, 2022, 36: e02114. https://doi.org/10.1016/j.gecco.2022.e02114 doi: 10.1016/j.gecco.2022.e02114 |
| [51] | 毕玉, 金崑. 基于环境变量的海南长臂猿适宜栖息地识别[J]. 陆地生态系统与保护学报, 2022, 2(6): 79−87. https://doi.org/10.12356/j.2096-8884.2022-0070 doi: 10.12356/j.2096-8884.2022-0070 |
| [52] | WHO. One health joint plan of action (2022—2026): working together for the health of humans, animals, plants and the environment [R]. Geneva: WHO, 2022. (查阅网上资料, 未找到本条文献页码信息, 请补充) |
| [53] | Gilardi K V K, Gillespie T R, Leendertz F H, et al. Best practice guidelines for health monitoring and disease control in great ape populations [M]. Gland: IUCN SSC Primate Specialist Group, 2015. (查阅网上资料, 未找到本条文献页码信息, 请补充) |
| [54] | Macfie E J, Williamson E A. Best practice guidelines for great ape tourism [M]. Gland: IUCN SSC Primate Specialist Group, 2010. (查阅网上资料, 未找到本条文献页码信息, 请补充) |
| [55] | Gilardi K V, Düx A, Gillespie T R, et al. An update on great ape population health, disease control and outbreak response: supplement to the best practice guidelines for health monitoring and disease control in great ape populations [R]. Gland: IUCN SSC Primate Specialist Group, 2025. (查阅网上资料, 未找到本条文献页码信息, 请补充) |
| [56] | Schilling A K, Mazzamuto M V, Romeo C. A review of non-invasive sampling in wildlife disease and health research: what’s new? [J]. Animals, 2022, 12(13): 1719. https://doi.org/10.3390/ani12131719 doi: 10.3390/ani12131719 |
| [57] | Dufourq E, Durbach I, Hansford J P, et al. Automated detection of Hainan gibbon calls for passive acoustic monitoring [J]. Remote Sensing in Ecology and Conservation, 2021, 7(3): 475−487. https://doi.org/10.1002/rse2.201 doi: 10.1002/rse2.201 |
| [58] | Wang X L, Wen S P, Niu N, et al. Automatic detection for the world’s rarest primates based on a tropical rainforest environment [J]. Global Ecology and Conservation, 2022, 38: e02250. https://doi.org/10.1016/j.gecco.2022.e02250 doi: 10.1016/j.gecco.2022.e02250 |