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1.
PeerJ ; 12: e17394, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38827296

RESUMO

The increasing frequency of zoonotic spillover events and viral mutations in low and middle-income countries presents a critical global health challenge. Contributing factors encompass cultural practices like bushmeat consumption, wildlife trade for traditional medicine, habitat disruption, and the encroachment of impoverished settlements onto natural habitats. The existing "vaccine gap" in many developing countries exacerbates the situation by allowing unchecked viral replication and the emergence of novel mutant viruses. Despite global health policies addressing the root causes of zoonotic disease emergence, there is a significant absence of concrete prevention-oriented initiatives, posing a potential risk to vulnerable populations. This article is targeted at policymakers, public health professionals, researchers, and global health stakeholders, particularly those engaged in zoonotic disease prevention and control in low and middle-income countries. The article underscores the importance of assessing potential zoonotic diseases at the animal-human interface and comprehending historical factors contributing to spillover events. To bridge policy gaps, comprehensive strategies are proposed that include education, collaborations, specialized task forces, environmental sampling, and the establishment of integrated diagnostic laboratories. These strategies advocate simplicity and unity, breaking down barriers, and placing humanity at the forefront of addressing global health challenges. Such a strategic and mental shift is crucial for constructing a more resilient and equitable world in the face of emerging zoonotic threats.


Assuntos
Países em Desenvolvimento , Zoonoses , Humanos , Animais , Zoonoses/prevenção & controle , Zoonoses/virologia , Zoonoses/epidemiologia , Zoonoses/transmissão , Mutação , Política de Saúde/legislação & jurisprudência , Saúde Global , Doenças Transmissíveis Emergentes/prevenção & controle , Doenças Transmissíveis Emergentes/epidemiologia , Doenças Transmissíveis Emergentes/virologia , Doenças Transmissíveis Emergentes/transmissão
2.
J Med Virol ; 96(6): e29737, 2024 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-38874191

RESUMO

Outbreaks of airborne viral emerging infectious diseases (EIDs) cause an increasing burden on global public health, particularly with a backdrop of intensified climate change. However, infection sources and drivers for outbreaks of airborne viral EIDs remain unknown. Here, we aim to explore the driving mechanisms of outbreaks based on the one health perspective. Outbreak information for 20 types of airborne viral EIDs was collected from the Global Infectious Disease and Epidemiology Network database and a systematic literature review. Four statistically significant and high-risk spatiotemporal clusters for airborne viral EID outbreaks were identified globally using multivariate scan statistic tests. There were 112 outbreaks with clear infection sources, and zoonotic spillover was the most common source (95.54%, 107/112). Since 1970, the majority of outbreaks occurred in healthcare facilities (24.82%), followed by schools (17.93%) and animal-related settings (15.93%). Significant associations were detected between the number of earthquakes, storms, duration of floods, and airborne viral EIDs' outbreaks using a case-crossover study design and multivariable conditional logistic regression. These findings implied that zoonotic spillover and extreme weather events are driving global outbreaks of airborne viral EIDs, and targeted prevention and control measures should be made to reduce the airborne viral EIDs burden.


Assuntos
Doenças Transmissíveis Emergentes , Surtos de Doenças , Tempo (Meteorologia) , Zoonoses , Humanos , Animais , Doenças Transmissíveis Emergentes/epidemiologia , Doenças Transmissíveis Emergentes/virologia , Zoonoses/epidemiologia , Zoonoses/virologia , Zoonoses/transmissão , Saúde Global , Microbiologia do Ar , Viroses/epidemiologia , Viroses/transmissão , Viroses/virologia , Mudança Climática
3.
Future Microbiol ; 19(9): 841-856, 2024 Jun 12.
Artigo em Inglês | MEDLINE | ID: mdl-38648093

RESUMO

The emergence of highly zoonotic viral infections has propelled bat research forward. The viral outbreaks including Hendra virus, Nipah virus, Marburg virus, Ebola virus, Rabies virus, Middle East respiratory syndrome coronavirus, SARS-CoV and the latest SARS-CoV-2 have been epidemiologically linked to various bat species. Bats possess unique immunological characteristics that allow them to serve as a potential viral reservoir. Bats are also known to protect themselves against viruses and maintain their immunity. Therefore, there is a need for in-depth understanding into bat-virus biology to unravel the major factors contributing to the coexistence and spread of viruses.


Bats are the most diverse mammalian order, with over 1400 species found worldwide. Studies on bats have revealed that they frequently carry and transmit multiple viruses. They are also known to recover from viral infections. Further, human interference and climatic changes in bats' native habitat have led to virus spillover events from bats to human populations, posing a serious public health risk. A deeper understanding of the coexistence of bats and viruses, as well as the mechanisms of disease transmission to humans, is required to minimize the risk of future viral outbreaks.


Assuntos
Quirópteros , Reservatórios de Doenças , Quirópteros/virologia , Quirópteros/imunologia , Animais , Humanos , Reservatórios de Doenças/virologia , Viroses/imunologia , Viroses/virologia , Viroses/veterinária , Zoonoses Virais/transmissão , Zoonoses Virais/virologia , SARS-CoV-2/imunologia , COVID-19/imunologia , COVID-19/virologia , Vírus/imunologia , Vírus/classificação , Vírus/genética , Zoonoses/virologia , Zoonoses/transmissão , Zoonoses/imunologia
4.
BMC Genomics ; 25(1): 262, 2024 Mar 08.
Artigo em Inglês | MEDLINE | ID: mdl-38459433

RESUMO

Plague, as an ancient zoonotic disease caused by Yersinia pestis, has brought great disasters. The natural plague focus of Marmota himalayana in the Qinghai-Tibet Plateau is the largest, which has been constantly active and the leading source of human plague in China for decades. Understanding the population genetics of M. himalayana and relating that information to the biogeographic distribution of Yersinia pestis and plague outbreaks are greatly beneficial for the knowledge of plague spillover and arecrucial for pandemic prevention. In the present research, we assessed the population genetics of M. himalayana. We carried out a comparative study of plague outbreaks and the population genetics of M. himalayana on the Qinghai-Tibet Plateau. We found that M. himalayana populations are divided into two main clusters located in the south and north of the Qinghai-Tibet Plateau. Fourteen DFR genomovars of Y. pestis were found and exhibited a significant region-specific distribution. Additionally, the increased genetic diversity of plague hosts is positively associated with human plague outbreaks. This insight gained can improve our understanding of biodiversity for pathogen spillover and provide municipally directed targets for One Health surveillance development, which will be an informative next step toward increased monitoring of M. himalayana dynamics.


Assuntos
Marmota , Yersinia pestis , Animais , Humanos , Tibet/epidemiologia , China/epidemiologia , Surtos de Doenças , Yersinia pestis/genética , Variação Genética
5.
bioRxiv ; 2024 Feb 26.
Artigo em Inglês | MEDLINE | ID: mdl-38464184

RESUMO

Understanding viral infection dynamics in wildlife hosts can help forecast zoonotic pathogen spillover and human disease risk. Bats are particularly important reservoirs of zoonotic viruses, including some of major public health concern such as Nipah virus, Hendra virus, and SARS-related coronaviruses. Previous work has suggested that metapopulation dynamics, seasonal reproductive patterns, and other bat life history characteristics might explain temporal variation in spillover of bat-associated viruses into people. Here, we analyze viral dynamics in free-ranging bat hosts, leveraging a multi-year, global-scale viral detection dataset that spans eight viral families and 96 bat species from 14 countries. We fit hierarchical Bayesian models that explicitly control for important sources of variation, including geographic region, specimen type, and testing protocols, while estimating the influence of reproductive status on viral detection in female bats. Our models revealed that late pregnancy had a negative effect on viral shedding across multiple data subsets, while lactation had a weaker influence that was inconsistent across data subsets. These results are unusual for mammalian hosts, but given recent findings that bats may have high individual viral loads and population-level prevalence due to dampening of antiviral immunity, we propose that it would be evolutionarily advantageous for pregnancy to either not further reduce immunity or actually increase the immune response, reducing viral load, shedding, and risk of fetal infection. This novel hypothesis would be valuable to test given its potential to help monitor, predict, and manage viral spillover risk from bats.

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