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3.
Science ; 382(6675): 1098-1099, 2023 12 08.
Artículo en Inglés | MEDLINE | ID: mdl-38060649
4.
Viruses ; 15(8)2023 07 27.
Artículo en Inglés | MEDLINE | ID: mdl-37631981

RESUMEN

Diseases that are transmitted from vertebrate animals to humans are referred to as zoonotic diseases. Although microbial agents such as bacteria and parasites are linked to zoonotic events, viruses account for a high percentage of zoonotic diseases that have emerged. Worryingly, the 21st century has seen a drastic increase in the emergence and re-emergence of viral zoonotic disease. Even though humans and animals have coexisted for millennia, anthropogenic factors have severely increased interactions between the two populations, thereby increasing the risk of disease spill-over. While drivers such as climate shifts, land exploitation and wildlife trade can directly affect the (re-)emergence of viral zoonotic disease, globalisation, geopolitics and social perceptions can directly facilitate the spread of these (re-)emerging diseases. This opinion paper discusses the "intelligent" nature of viruses and their exploitation of the anthropogenic factors driving the (re-)emergence and spread of viral zoonotic disease in a modernised and connected world.


Asunto(s)
Zoonosis Virales , Zoonosis , Animales , Humanos , Zoonosis Virales/epidemiología , Zoonosis/epidemiología , Efectos Antropogénicos , Clima , Comercio de Vida Silvestre
5.
Viruses ; 15(8)2023 08 11.
Artículo en Inglés | MEDLINE | ID: mdl-37632063

RESUMEN

The COVID-19 pandemic has not only strained healthcare systems in Africa but has also intensified the impact of emerging and re-emerging diseases. Specifically in Equatorial Guinea, mirroring the situation in other African countries, unique zoonotic outbreaks have occurred during this challenging period. One notable resurgence is Marburg virus disease (MVD), which has further burdened the already fragile healthcare system. The re-emergence of the Marburg virus amid the COVID-19 pandemic is believed to stem from a probable zoonotic spill-over, although the precise transmission routes remain uncertain. Given the gravity of the situation, addressing the existing challenges is paramount. Though the genome sequences from the current outbreak were not available for this study, we analyzed all the available whole genome sequences of this re-emerging pathogen to advocate for a shift towards active surveillance. This is essential to ensure the successful containment of any potential Marburg virus outbreak in Equatorial Guinea and the wider African context. This study, which presents an update on the phylodynamics and the genetic variability of MARV, further confirmed the existence of at least two distinct patterns of viral spread. One pattern demonstrates a slower but continuous and recurring virus circulation, while the other exhibits a faster yet limited and episodic spread. These results highlight the critical need to strengthen genomic surveillance in the region to effectively curb the pathogen's dissemination. Moreover, the study emphasizes the importance of prompt alert management, comprehensive case investigation and analysis, contact tracing, and active case searching. These steps are vital to support the healthcare system's response to this emerging health crisis. By implementing these strategies, we can better arm ourselves against the challenges posed by the resurgence of the Marburg virus and other infectious diseases.


Asunto(s)
Enfermedad del Virus de Marburg , Marburgvirus , Animales , Humanos , África/epidemiología , Población Negra , COVID-19/epidemiología , Marburgvirus/genética , Pandemias , Enfermedad del Virus de Marburg/epidemiología , Enfermedad del Virus de Marburg/genética , Enfermedad del Virus de Marburg/virología , Brotes de Enfermedades , Guinea Ecuatorial/epidemiología , Zoonosis Virales/epidemiología , Zoonosis Virales/genética , Zoonosis Virales/virología , Filogenia
6.
Braz J Biol ; 84: e270857, 2023.
Artículo en Inglés | MEDLINE | ID: mdl-37531478

RESUMEN

Investigating the interplay of factors that result in a viral zoonotic outbreak is difficult, though it is increasingly important. As anthropogenic influences shift the delicate balance of ecosystems, new zoonoses emerge in humans. Sub-Saharan Africa is a notable hotspot for zoonotic disease due to abundant competent mammalian reservoir hosts. Furthermore, poverty, corruption, and an overreliance on natural resources play considerable roles in depleting biological resources, exacerbating the population's susceptibility. Unsurprisingly, viral zoonoses have emerged in Africa, including HIV/AIDS, Ebola, Avian influenza, Lassa fever, Zika, and Monkeypox. These diseases are among the principal causes of death in endemic areas. Though typically distinct in their manifestations, viral zoonoses are connected by underlying, definitive factors. This review summarises vital findings on viral zoonoses in Africa using nine notable case studies as a benchmark for future studies. We discuss the importance of ecological recuperation and protection as a central strategy to control zoonotic diseases. Emphasis was made on moderating key drivers of zoonotic diseases to forestall future pandemics. This is in conjunction with attempts to redirect efforts from reactive to pre-emptive through a multidisciplinary "one health" approach.


Asunto(s)
Infección por el Virus Zika , Virus Zika , Animales , Humanos , Zoonosis Virales/epidemiología , Ecosistema , Zoonosis/epidemiología , África/epidemiología , Pandemias , Infección por el Virus Zika/epidemiología , Mamíferos
7.
Artículo en Alemán | MEDLINE | ID: mdl-37261460

RESUMEN

The COVID-19 pandemic and the increasing occurrence of monkeypox (mpox) diseases outside Africa have illustrated the vulnerability of populations to zoonotic pathogens. In addition, other viral zoonotic pathogens have gained importance in recent years.This review article addresses six notifiable viral zoonotic pathogens as examples to highlight the need for the One Health approach in order to understand the epidemiology of the diseases and to derive recommendations for action by the public health service. The importance of environmental factors, reservoirs, and vectors is emphasized, the diseases in livestock and wildlife are analyzed, and the occurrence and frequency of diseases in the population are described. The pathogens selected here differ in their reservoirs and the role of vectors for transmission, the impact of infections on farm animals, and the disease patterns observed in humans. In addition to zoonotic pathogens that have been known in Germany for a long time or were introduced recently, pathogens whose zoonotic potential has only lately been shown are also considered.For the pathogens discussed here, there are still large knowledge gaps regarding the transmission routes. Future One Health-based studies must contribute to the further elucidation of their transmission routes and the development of prevention measures. The holistic approach does not necessarily include a focus on viral pathogens/diseases, but also includes the question of the interaction of viral, bacterial, and other pathogens, including antibiotic resistance and host microbiomes.


Asunto(s)
COVID-19 , Salud Única , Virosis , Animales , Humanos , Zoonosis/microbiología , Zoonosis Virales/epidemiología , Pandemias , Alemania , COVID-19/epidemiología , Virosis/epidemiología
16.
J Vector Borne Dis ; 59(2): 190-192, 2022.
Artículo en Inglés | MEDLINE | ID: mdl-36124487

RESUMEN

Japanese encephalitis (JE) is a mosquito borne viral zoonotic disease and JE virus (JEV) is responsible for causing several children deaths every year in India. Since 1978, cases of JE have been reported from Gorakhpur district of Uttar Pradesh state annually. The knowledge on the role played by wildlife reservoirs in the sylvatic transmission and maintenance of JE virus remains limited. Bats are reservoir hosts for several emerging and re-emerging viral pathogens but their role in zoonotic cycle of JEV has not been elucidated yet. In Gorakhpur district of Uttar Pradesh, 52 fruit bats were found dead on 26 May 2020. The post-mortem report of the bat samples conducted at the Indian Veterinary Research Institute stated that the bats died due to brain hemorrhage, caused by excessive heat. The brain tissue samples of the bats were subjected to investigation using molecular techniques to determine the presence of JEV. The present work reports for the first time the detection of JEV in brain samples of bats from India. The viral load ranging from 8 to 18 copies/reaction was detected in brain samples by TaqMan real Time RT-PCR. The low viral load might be the reason for the absence of apparent clinical signs in bats and suggests the probable role of fruit bats in maintaining the JEV in nature.


Asunto(s)
Quirópteros/virología , Virus de la Encefalitis Japonesa (Especie)/aislamiento & purificación , Encefalitis Japonesa/veterinaria , Animales , Encéfalo/patología , Encéfalo/virología , Niño , Reservorios de Enfermedades/virología , Virus de la Encefalitis Japonesa (Especie)/genética , Encefalitis Japonesa/diagnóstico , Encefalitis Japonesa/epidemiología , Humanos , India/epidemiología , Reacción en Cadena en Tiempo Real de la Polimerasa , Carga Viral/veterinaria , Zoonosis Virales/epidemiología
20.
Sci Rep ; 12(1): 12094, 2022 07 15.
Artículo en Inglés | MEDLINE | ID: mdl-35840592

RESUMEN

The emergence of a novel pathogen in a susceptible population can cause rapid spread of infection. High prevalence of SARS-CoV-2 infection in white-tailed deer (Odocoileus virginianus) has been reported in multiple locations, likely resulting from several human-to-deer spillover events followed by deer-to-deer transmission. Knowledge of the risk and direction of SARS-CoV-2 transmission between humans and potential reservoir hosts is essential for effective disease control and prioritisation of interventions. Using genomic data, we reconstruct the transmission history of SARS-CoV-2 in humans and deer, estimate the case finding rate and attempt to infer relative rates of transmission between species. We found no evidence of direct or indirect transmission from deer to human. However, with an estimated case finding rate of only 4.2%, spillback to humans cannot be ruled out. The extensive transmission of SARS-CoV-2 within deer populations and the large number of unsampled cases highlights the need for active surveillance at the human-animal interface.


Asunto(s)
COVID-19 , Ciervos , SARS-CoV-2 , Zoonosis Virales , Animales , COVID-19/epidemiología , COVID-19/prevención & control , COVID-19/transmisión , COVID-19/veterinaria , Ciervos/virología , Monitoreo del Ambiente , Humanos , Medición de Riesgo , SARS-CoV-2/genética , SARS-CoV-2/aislamiento & purificación , Zoonosis Virales/epidemiología , Zoonosis Virales/transmisión , Zoonosis Virales/virología
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