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Journal articles on the topic 'Viral threats'

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1

Hayden, Frederick G. "Respiratory viral threats." Current Opinion in Infectious Diseases 19, no. 2 (2006): 169–78. http://dx.doi.org/10.1097/01.qco.0000216628.51563.b1.

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2

Erdem, Hakan, and Serhat Ünal. "New global viral threats." Saudi Medical Journal 36, no. 4 (2015): 393–98. http://dx.doi.org/10.15537/smj.2015.4.10089.

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3

Bekerman, E., and S. Einav. "Combating emerging viral threats." Science 348, no. 6232 (2015): 282–83. http://dx.doi.org/10.1126/science.aaa3778.

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4

Ahmed, Jamal Uddin, Muhammad Abdur Rahim, and Khwaja Nazim Uddin. "Emerging Viral Diseases." BIRDEM Medical Journal 7, no. 3 (2017): 224–32. http://dx.doi.org/10.3329/birdem.v7i3.33785.

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Human life is intricately related to it’s surrounding environment which also harbors other animals and some deadly infectious pathogens. Any threat to the environment can thus increase the threat of new and so-called ‘emerging infectious diseases’ (EIDs) especially novel viral infections called ‘emerging viral diseases’. This occurs partly due to changing climate as well as human interference with nature and animal life. An important event in new disease emergence is genetic changes in the pathogen that make it possible to become established in a new host species, productively infect new indiv
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5

Fahrenkamp-Uppenbrink, Julia. "Increasing viral threats from mosquitoes." Science 354, no. 6315 (2016): 1016.12–1018. http://dx.doi.org/10.1126/science.354.6315.1016-l.

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6

Yu, Xiaojie, and Mark S. Cragg. "Engineered antibodies to combat viral threats." Nature 588, no. 7838 (2020): 398–99. http://dx.doi.org/10.1038/d41586-020-03196-2.

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7

Speed, Bryan R., Marie P. Gerrard, Margery L. Kennett, Michael G. Catton, and Bronwen M. Harvey. "Viral haemorrhagic fevers: current status, future threats." Medical Journal of Australia 164, no. 2 (1996): 79–83. http://dx.doi.org/10.5694/j.1326-5377.1996.tb101353.x.

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8

Bykhovets, Yu. "Intensity of information exposure as a psycho-traumatic factor in a viral threat situation." Psikhologicheskii zhurnal 42, no. 5 (2021): 37–48. http://dx.doi.org/10.31857/s020595920017072-5.

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A review of research into psychological impact of the viral threat COVID-19 is presented. It is proposed that a pandemic should be seen as a traumatic stressor. A comparison of different types of "invisible" threats is given: the threat of radiation contamination, the threat of terrorist acts to indirect victims and the viral threat. The main distinguishing features of the viral threat are the multifactorial nature of the impact, the totality of dissemination and the control/prevention of contamination. The key role of the media in shaping psychopathological signs in populations in epidemic si
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9

Bartlett, Maggie, Heather Poeck-Goux, Linwood Johnson Johnson, et al. "Biomarkers of Neurological Injury for Emerging Viral Threats and Post Viral Disease." Journal of Immunology 210, no. 1_Supplement (2023): 235.23. http://dx.doi.org/10.4049/jimmunol.210.supp.235.23.

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Abstract Neurotropic viral infection and the ensuant immune response are a significant cause of morbidity and mortality worldwide, which can range in severity from mild to permanent central nervous system (CNS) damage and death. Encephalitic alphaviruses include Venezuelan and eastern equine encephalitis viruses (VEEV and EEEV; Alphavirus; Togaviridae). Injury to the CNS is an important determinant of poor outcome and tools to predict this outcome are lacking. Neurons are the primary target cells of encephalitic alphaviruses where cytopathology plays a major role in CNS dysfunction. Proteins a
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10

Shammugam, Inthrani, Ganthan Narayana Samy, Pritheega Magalingam, Nurazean Maarop, Sundresan Perumal, and Shanmugam6 Bharanidharan. "Information security threats encountered by Malaysian public sector data centers." Indonesian Journal of Electrical Engineering and Computer Science 21, no. 3 (2021): 1820–29. https://doi.org/10.11591/ijeecs.v21.i3.pp1820-1829.

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Data centers are primarily the main targets of cybercriminals and security threats as they host various critical information and communication technology (ICT) services. Identifying the threats and managing the risks associated with data centers have become a major challenge as this will enable organizations to optimize their resources to focus on the most hazardous threats to prevent the potential risks and damages. The objective of this paper is to identify major ICT security threats to data centers in the Malaysian public sector and their causes. The data for this study was collected throug
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11

HIGUCHI, Ryoji. "Functional Paint to Fight Viral and Microbial Threats." Journal of the Japan Society of Colour Material 94, no. 12 (2021): 336–42. http://dx.doi.org/10.4011/shikizai.94.336.

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12

Fry, Donald E. "New crises in viral threats for trauma surgeons." Current Opinion in Critical Care 3, no. 6 (1997): 470–74. http://dx.doi.org/10.1097/00075198-199712000-00012.

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13

Marston, H. D., G. K. Folkers, D. M. Morens, and A. S. Fauci. "Emerging Viral Diseases: Confronting Threats with New Technologies." Science Translational Medicine 6, no. 253 (2014): 253ps10. http://dx.doi.org/10.1126/scitranslmed.3009872.

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14

Dunstan, Robert A., Clive R. Seed, and Anthony J. Keller. "Emerging viral threats to the Australian blood supply." Australian and New Zealand Journal of Public Health 32, no. 4 (2008): 354–60. http://dx.doi.org/10.1111/j.1753-6405.2008.00254.x.

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15

Herndon, R. M. "Evasion of Immunologic Defenses and Emerging Viral Threats." Archives of Neurology 53, no. 1 (1996): 23–27. http://dx.doi.org/10.1001/archneur.1996.00550010033013.

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16

Zhu, Ninghao, and Pak Kin Wong. "Advances in Viral Diagnostic Technologies for Combating COVID-19 and Future Pandemics." SLAS TECHNOLOGY: Translating Life Sciences Innovation 25, no. 6 (2020): 513–21. http://dx.doi.org/10.1177/2472630320953798.

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The emergence of coronavirus disease 2019 (COVID-19) caused by severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) threatens the health of the global population and challenges our preparedness for pandemic threats. Previous outbreaks of coronaviruses and other viruses have suggested the importance of diagnostic technologies in fighting viral outbreaks. Nucleic acid detection techniques are the gold standard for detecting SARS-CoV-2. Viral antigen tests and serological tests that detect host antibodies have also been developed for studying the epidemiology of COVID-19 and estimating th
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17

Phelps, Kendra, Luke Hamel, Nisreen Alhmoud, et al. "Bat Research Networks and Viral Surveillance: Gaps and Opportunities in Western Asia." Viruses 11, no. 3 (2019): 240. http://dx.doi.org/10.3390/v11030240.

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Bat research networks and viral surveillance are assumed to be at odds due to seemingly conflicting research priorities. Yet human threats that contribute to declines in bat populations globally also lead to increased transmission and spread of bat-associated viruses, which may pose a threat to global health and food security. In this review, we discuss the importance of and opportunities for multidisciplinary collaborations between bat research networks and infectious disease experts to tackle shared threats that jeopardize bat conservation as well as human and animal health. Moreover, we ass
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18

Phelps, Kendra L., Luke Hamel, Nisreen Alhmoud, et al. "Bat Research Networks and Viral Surveillance: Gaps and Opportunities in Western Asia." Viruses 11, no. 3 (2019): 240. https://doi.org/10.5281/zenodo.13510643.

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(Uploaded by Plazi for the Bat Literature Project) Bat research networks and viral surveillance are assumed to be at odds due to seemingly conflicting research priorities. Yet human threats that contribute to declines in bat populations globally also lead to increased transmission and spread of bat-associated viruses, which may pose a threat to global health and food security. In this review, we discuss the importance of and opportunities for multidisciplinary collaborations between bat research networks and infectious disease experts to tackle shared threats that jeopardize bat conservation a
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19

Phelps, Kendra L., Luke Hamel, Nisreen Alhmoud, et al. "Bat Research Networks and Viral Surveillance: Gaps and Opportunities in Western Asia." Viruses 11, no. 3 (2019): 240. https://doi.org/10.5281/zenodo.13510643.

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(Uploaded by Plazi for the Bat Literature Project) Bat research networks and viral surveillance are assumed to be at odds due to seemingly conflicting research priorities. Yet human threats that contribute to declines in bat populations globally also lead to increased transmission and spread of bat-associated viruses, which may pose a threat to global health and food security. In this review, we discuss the importance of and opportunities for multidisciplinary collaborations between bat research networks and infectious disease experts to tackle shared threats that jeopardize bat conservation a
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20

Phelps, Kendra L., Luke Hamel, Nisreen Alhmoud, et al. "Bat Research Networks and Viral Surveillance: Gaps and Opportunities in Western Asia." Viruses 11, no. 3 (2019): 240. https://doi.org/10.5281/zenodo.14820361.

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(Uploaded by Plazi for the Bat Literature Project) Bat research networks and viral surveillance are assumed to be at odds due to seemingly conflicting research priorities. Yet human threats that contribute to declines in bat populations globally also lead to increased transmission and spread of bat-associated viruses, which may pose a threat to global health and food security. In this review, we discuss the importance of and opportunities for multidisciplinary collaborations between bat research networks and infectious disease experts to tackle shared threats that jeopardize bat conservation a
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21

Phelps, Kendra L., Luke Hamel, Nisreen Alhmoud, et al. "Bat Research Networks and Viral Surveillance: Gaps and Opportunities in Western Asia." Viruses 11, no. 3 (2019): 240. https://doi.org/10.5281/zenodo.13510643.

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(Uploaded by Plazi for the Bat Literature Project) Bat research networks and viral surveillance are assumed to be at odds due to seemingly conflicting research priorities. Yet human threats that contribute to declines in bat populations globally also lead to increased transmission and spread of bat-associated viruses, which may pose a threat to global health and food security. In this review, we discuss the importance of and opportunities for multidisciplinary collaborations between bat research networks and infectious disease experts to tackle shared threats that jeopardize bat conservation a
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22

Phelps, Kendra L., Luke Hamel, Nisreen Alhmoud, et al. "Bat Research Networks and Viral Surveillance: Gaps and Opportunities in Western Asia." Viruses 11, no. 3 (2019): 240. https://doi.org/10.5281/zenodo.13510643.

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(Uploaded by Plazi for the Bat Literature Project) Bat research networks and viral surveillance are assumed to be at odds due to seemingly conflicting research priorities. Yet human threats that contribute to declines in bat populations globally also lead to increased transmission and spread of bat-associated viruses, which may pose a threat to global health and food security. In this review, we discuss the importance of and opportunities for multidisciplinary collaborations between bat research networks and infectious disease experts to tackle shared threats that jeopardize bat conservation a
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23

Luo, Shuwen, Lihong Yin, Xiaohui Liu, and Xuemei Wang. "Advances in Virus Biorecognition and Detection Techniques for the Surveillance and Prevention of Infectious Diseases." Biosensors 15, no. 3 (2025): 198. https://doi.org/10.3390/bios15030198.

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Viral infectious diseases pose a serious threat to global public health due to their high transmissibility, rapid mutation rates, and limited treatment options. Recent outbreaks of diseases such as plague, monkeypox, avian influenza, and coronavirus disease 2019 (COVID-19) have underscored the urgent need for efficient diagnostic and surveillance technologies. Focusing on viral infectious diseases that seriously threaten human health, this review summarizes and analyzes detection techniques from the perspective of combining viral surveillance and prevention advice, and discusses applications i
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24

Flanagan, M. L., C. R. Parrish, S. Cobey, G. E. Glass, R. M. Bush, and T. J. Leighton. "Anticipating the Species Jump: Surveillance for Emerging Viral Threats." Zoonoses and Public Health 59, no. 3 (2011): 155–63. http://dx.doi.org/10.1111/j.1863-2378.2011.01439.x.

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25

Cleaveland, S. "Viral threats and vaccination: disease management of endangered species." Animal Conservation 12, no. 3 (2009): 187–89. http://dx.doi.org/10.1111/j.1469-1795.2009.00276.x.

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26

Flanagan, M. "Anticipating the species jump: Surveillance for emerging viral threats." International Journal of Infectious Diseases 14 (March 2010): e282. http://dx.doi.org/10.1016/j.ijid.2010.02.2112.

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27

Goyal, Dinesh, Naresh Kaushik, Swetha Sunkar, et al. "Pathogen transmission in aquaculture systems: emerging threats and control strategies." International Journal of Aquatic Research and Environmental Studies 5, no. 1 (2025): 471–80. https://doi.org/10.70102/ijares/v5i1/5-1-43.

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Aquaculture is the world’s most rapidly growing food production sector, representing one-third of total food output. Similar to all intensive agricultural systems, the rise in infectious illnesses has negatively affected the expansion of marine aquaculture globally. Viral infections result in significant economic detriment to marine farming. The research presents an overview of the primary obstacles hindering managing and avoiding viral infections in marine aquaculture, while emphasizing potential remedies. The primary challenges are the rise in new viral diseases, wild dams, species that migr
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28

Branda, Francesco, and Massimo Ciccozzi. "Navigating Novel Viral Challenges: Understanding, Tracking, and Mitigating Emerging Threats." Microorganisms 12, no. 4 (2024): 807. http://dx.doi.org/10.3390/microorganisms12040807.

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29

Kyriakopoulos, Leandros. "Viral Economies." Homo Virtualis 3, no. 2 (2020): 15. http://dx.doi.org/10.12681/homvir.25446.

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The article examines the Covid-19 pandemic by investigating the ways in which viruses are mapped out through the biosciences and recognized as threats in informational systems. Two examples are analyzed that, although seemingly unrelated, intersect the assemblages of biological and communicational networks. The first one concerns the speed at which a third of the world's population was quarantined. The second one involves the readiness of the material-technical infrastructure to support, and the political planning to transfer, a multitude of social and labour activities onto digital platforms.
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30

Krekulova, Laura, Radkin Honzák, and Lee W. Riley. "Viral hepatitis C pandemic: Challenges and threats to its elimination." Journal of Viral Hepatitis 28, no. 5 (2021): 694–98. http://dx.doi.org/10.1111/jvh.13480.

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31

Matsui, S. "Protecting human and ecological health under viral threats in Asia." Water Science and Technology 51, no. 8 (2005): 91–97. http://dx.doi.org/10.2166/wst.2005.0234.

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Severe acute respiratory syndrome (SARS) outbroke in 2003, and the avian influenza A (H5N1) also outbroke in 2003 and continued to 2004. These pandemic viral diseases originated in South East Asia. Many human and animal lives were lost. Economic damages due to the pandemics were also very large. The question arises of why did the pandemics originate from South East Asian areas. Human influenza A consists of many sub-types of coronaviruses including the SARS virus and the avian influenza (H5N1) that are all variants of RNA of avian coronavirus. Variants are formed during infection of a coronavi
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32

Allegra, John R., and Ray H. Baughman. "Vaccine time–temperature indicators for present and future viral threats." Vaccine 38, no. 45 (2020): 6967–68. http://dx.doi.org/10.1016/j.vaccine.2020.09.052.

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33

Yurchenko, Oksana, Dmytro Dubina, Dmytro Sokolovskyi, and Oleksandr Gaidash. "Possible zoonotic viral threats associated with bats in southern Ukraine." Proceedings of the Theriological School 2017, no. 15 (2017): 150–53. http://dx.doi.org/10.15407/ptt2017.15.150.

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34

de Drézigué, David, Jean-Paul Fizaine, and Nils Hansma. "In-depth analysis of the viral threats with OpenOffice.org documents." Journal in Computer Virology 2, no. 3 (2006): 187–210. http://dx.doi.org/10.1007/s11416-006-0020-2.

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35

Tennant, Paula, Sephra Rampersad, Angela Alleyne, et al. "Viral Threats to Fruit and Vegetable Crops in the Caribbean." Viruses 16, no. 4 (2024): 603. http://dx.doi.org/10.3390/v16040603.

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Viruses pose major global challenges to crop production as infections reduce the yield and quality of harvested products, hinder germplasm exchange, increase financial inputs, and threaten food security. Small island or archipelago habitat conditions such as those in the Caribbean are particularly susceptible as the region is characterized by high rainfall and uniform, warm temperatures throughout the year. Moreover, Caribbean islands are continuously exposed to disease risks because of their location at the intersection of transcontinental trade between North and South America and their role
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36

Leung, Anthony K. L., Diane E. Griffin, Jürgen Bosch, and Anthony R. Fehr. "The Conserved Macrodomain Is a Potential Therapeutic Target for Coronaviruses and Alphaviruses." Pathogens 11, no. 1 (2022): 94. http://dx.doi.org/10.3390/pathogens11010094.

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Emerging and re-emerging viral diseases pose continuous public health threats, and effective control requires a combination of non-pharmacologic interventions, treatment with antivirals, and prevention with vaccines. The COVID-19 pandemic has demonstrated that the world was least prepared to provide effective treatments. This lack of preparedness has been due, in large part, to a lack of investment in developing a diverse portfolio of antiviral agents, particularly those ready to combat viruses of pandemic potential. Here, we focus on a drug target called macrodomain that is critical for the r
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37

Dehesh, Erfan, and Fahad Dehesh. "Nanotechnology in COVID-19 and SARS-CoV-2: Advances in Antiviral Therapies and Applications." Journal of Complementary and Alternative Medical Research 26, no. 1 (2025): 87–105. https://doi.org/10.9734/jocamr/2025/v26i1616.

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Innovative diagnostics, therapeutics, and preventive strategies must be developed to combat the emergence of new viral pathogens and the resurgence of known viruses. Using nanotechnology to enhance antiviral therapeutic efficacy through improved drug delivery, targeted viral inhibition, and immune modulation has emerged as a transformative approach to addressing these viral threats. SARS-CoV-2, hemorrhagic viruses, and zoonotic pathogens can be combated with nanotechnology-based platforms, including nanogels, dendrimers, and metal-based nanoparticles. As a result of recent advances in nanopart
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38

Cohen, Jon. "Novel viruses highlight risks of Asia’s wild animal trade." Science 375, no. 6583 (2022): 805. http://dx.doi.org/10.1126/science.ada1555.

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39

AMADI, THANKGOD, PEACE IGWE, and HENRY NMELISI OZURU. "FEAR APPEAL AND CUSTOMER PATRONAGE OF RETROVIRAL DISTRIBUTING HOSPITALS IN PORT HARCOURT." GPH-International Journal of Social Science and Humanities Research 05, no. 10 (2022): 72–87. https://doi.org/10.5281/zenodo.7371337.

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The study’s goal was to look into the affiliation between fear appeal and client patronage in Port Harcourt’s retro-viral distribution hospitals. The objectives were to investigate the effect between perceived threats and self-control on customer patronage of retro-viral distributing hospitals in Port Harcourt, and mediated with audience perception on fear appeal and customer patronage of retro-viral distributing hospitals in Port Harcourt. The three major government-operated hospitals constitute the population for the study and customers of the above organizations served as the re
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40

Zhou, Lifeng, Arun Richard Chandrasekaran, Jibin Abraham Punnoose, et al. "Programmable low-cost DNA-based platform for viral RNA detection." Science Advances 6, no. 39 (2020): eabc6246. http://dx.doi.org/10.1126/sciadv.abc6246.

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Detection of viruses is critical for controlling disease spread. Recent emerging viral threats, including Zika virus, Ebola virus, and SARS-CoV-2 responsible for coronavirus disease 2019 (COVID-19) highlight the cost and difficulty in responding rapidly. To address these challenges, we develop a platform for low-cost and rapid detection of viral RNA with DNA nanoswitches that mechanically reconfigure in response to specific viruses. Using Zika virus as a model system, we show nonenzymatic detection of viral RNA with selective and multiplexed detection between related viruses and viral strains.
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41

Shepherd, Phoenix M., Amy Elbe, Brianna M. Lynch, Erin Lashnits, and Robert N. Kirchdoerfer. "Detection of Feline Coronavirus RNA in Cats with Feline Infectious Peritonitis and Their Housemates." Viruses 17, no. 7 (2025): 948. https://doi.org/10.3390/v17070948.

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Feline coronavirus (FCoV), the causative agent behind feline infectious peritonitis (FIP), is one of the biggest infectious threats to feline health. Despite this threat, the tissue distribution and viral RNA levels in cats infected with feline coronaviruses are poorly understood in the context of natural infection. Here, we used a two-step reverse-transcription quantitative PCR (RT-qPCR) to examine viral RNA levels from different sampling sites in both cats that have been clinically suspected of FIP and their feline housemates. We show that the distribution and amount of FCoV viral RNA does n
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42

Handa, Tanuj, Ankita Saha, Aarthi Narayanan, et al. "Structural Virology: The Key Determinants in Development of Antiviral Therapeutics." Viruses 17, no. 3 (2025): 417. https://doi.org/10.3390/v17030417.

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Structural virology has emerged as the foundation for the development of effective antiviral therapeutics. It is pivotal in providing crucial insights into the three-dimensional frame of viruses and viral proteins at atomic-level or near-atomic-level resolution. Structure-based assessment of viral components, including capsids, envelope proteins, replication machinery, and host interaction interfaces, is instrumental in unraveling the multiplex mechanisms of viral infection, replication, and pathogenesis. The structural elucidation of viral enzymes, including proteases, polymerases, and integr
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43

Parish, Lindsay A., Shyam Rele, Kimberly A. Hofmeyer, Brooke B. Luck, and Daniel N. Wolfe. "Strategic and Technical Considerations in Manufacturing Viral Vector Vaccines for the Biomedical Advanced Research and Development Authority Threats." Vaccines 13, no. 1 (2025): 73. https://doi.org/10.3390/vaccines13010073.

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Over the past few decades, the world has seen a considerable uptick in the number of new and emerging infectious disease outbreaks. The development of new vaccines, vaccine technologies, and platforms are critical to enhance our preparedness for biological threats and prevent future pandemics. Viral vectors can be an important tool in the repertoire of technologies available to develop effective vaccines against new and emerging infectious diseases. In many instances, vaccines may be needed in a reactive scenario, requiring technologies than can elicit rapid and robust immune responses with a
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44

Vaculovicova, Marketa, Petr Michalek, Sona Krizkova, Mirek Macka, and Vojtech Adam. "Nanotechnology-based analytical approaches for detection of viruses." Analytical Methods 9, no. 16 (2017): 2375–91. http://dx.doi.org/10.1039/c7ay00048k.

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45

Grinstein, Jonathan D. "Apriori Bio's AI Platform Provides Variant-Proof Protection from Viral Threats." GEN Edge 4, no. 1 (2022): 593–97. http://dx.doi.org/10.1089/genedge.4.1.97.

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46

Bruneau, Ryan C., Loubna Tazi, and Stefan Rothenburg. "Cowpox Viruses: A Zoo Full of Viral Diversity and Lurking Threats." Biomolecules 13, no. 2 (2023): 325. http://dx.doi.org/10.3390/biom13020325.

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Cowpox viruses (CPXVs) exhibit the broadest known host range among the Poxviridae family and have caused lethal outbreaks in various zoo animals and pets across 12 Eurasian countries, as well as an increasing number of human cases. Herein, we review the history of how the cowpox name has evolved since the 1700s up to modern times. Despite early documentation of the different properties of CPXV isolates, only modern genetic analyses and phylogenies have revealed the existence of multiple Orthopoxvirus species that are currently constrained under the CPXV designation. We further chronicle modern
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47

Rahaman, Md Mizanur, Bhavya Sharma, Saranika Talukder, Muhammad Jasim Uddin, Muhammad A. B. Siddik, and Subir Sarker. "Viral Threats to Australian Fish and Prawns: Economic Impacts and Biosecurity Solutions—A Systematic Review." Viruses 17, no. 5 (2025): 692. https://doi.org/10.3390/v17050692.

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Viral diseases pose significant threats to aquaculture industries worldwide, including the Australian fish and prawn farming sectors, which contribute over AUD 1.6 billion annually to the national economy. The Australian aquaculture industry relies heavily on wild-caught broodstock for seedstock production, introducing substantial and unprecedented biosecurity risks. This systematic review consolidates current knowledge on the viral pathogens affecting key Australian fish and prawn species, their economic impacts, and the biosecurity measures implemented for mitigation. Notably, viral outbreak
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48

Bykhovets, J. V. "Stress of Invisible Information Threats and its Consequences." Консультативная психология и психотерапия 31, no. 3 (2023): 132–66. http://dx.doi.org/10.17759/cpp.2023310307.

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<p style="text-align: justify;"><strong>Relevance.</strong> In recent years, studies have accumulated a lot of factual material on the psychological consequences of stress caused by exposure to aggressive environmental factors, including the COVID–19 virus threat factor. In this connection, the task of generalizing and rethinking the role of information threats in the development of psychopathological symptoms in the general population becomes obvious. <strong>Goal.</strong> The work is devoted to the theoretical and empirical analysis of the psychologic
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49

Gass, Jonathon D. "Drivers of Zoonotic Viral Spillover: Understanding Pathways to the Next Pandemic." Zoonotic Diseases 5, no. 3 (2025): 18. https://doi.org/10.3390/zoonoticdis5030018.

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In the wake of the COVID-19 pandemic and amid growing concerns regarding viral threats such as avian influenza, Mpox, and HKU5 bat coronaviruses, the phenomenon of viral zoonotic spillover, when viruses leap from circulation in non-human animals to humans, has garnered unprecedented global attention [...]
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Raksakoon, Chadchalerm, and Rutcharin Potiwat. "Current Arboviral Threats and Their Potential Vectors in Thailand." Pathogens 10, no. 1 (2021): 80. http://dx.doi.org/10.3390/pathogens10010080.

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Abstract:
Arthropod-borne viral diseases (arboviruses) are a public-health concern in many regions of the world, including Thailand. This review describes the potential vectors and important human and/or veterinary arboviruses in Thailand. The medically important arboviruses affect humans, while veterinary arboviruses affect livestock and the economy. The main vectors described are mosquitoes, but other arthropods have been reported. Important mosquito-borne arboviruses are transmitted mainly by members of the genus Aedes (e.g., dengue, chikungunya, and Zika virus) and Culex (e.g., Japanese encephalitis
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