Wednesday, August 12, 2026

#Risk #assessment of avian #influenza #H5N5 virus from the first #human case using the #ferret model

 


ABSTRACT

The incursion of Eurasian-origin genotype A6 A(H5N5) virus into North America expanded the genetic diversity among North American highly pathogenic avian influenza viruses and heightened concern about zoonotic risk. Following a fatal human infection with the A(H5N5) virus A/Washington/2148/2025, viral replication was assessed in polarized human bronchial epithelial cells, and pathogenicity, transmissibility in direct contact and respiratory droplet models, and airborne virus shedding were evaluated in ferrets to inform pandemic risk assessment. A(H5N5) displayed robust replication in Calu-3 cells at 33°C and 37°C, showing kinetics and peak titers comparable to those of contemporary genotype B3.13 and D1.1 A(H5N1) viruses. In ferrets, A(H5N5) replicated efficiently in the respiratory tract, disseminated to extrapulmonary tissues, and caused fatal disease in all inoculated animals. Airborne transmission was not observed, and infrequent, low-level detection of virus in air samples paralleled that of A(H5) viruses that are not transmissible via air in ferrets. In a direct contact model, limited transmission was detected within 4 days of exposure, with evidence of lower respiratory tract replication in contact animals. These findings indicate that the A(H5N5) virus has the capacity for robust replication in an airway epithelial cell line and can cause severe systemic infection and mortality in ferrets but has not acquired adaptations for airborne spread in mammals. Collectively, these results underscore heterogeneity among clade 2.3.4.4b A(H5Nx) viruses in North America and the need for genotype-by-genotype evaluation of newly emerged viruses to understand public health risk.


IMPORTANCE

The emergence of Eurasian-origin genotype A6 highly pathogenic avian influenza A(H5N5) virus in North America has increased viral diversity and raised concerns about zoonotic and pandemic risk. In this study, we evaluated the replication kinetics, pathogenesis, and transmission of A/Washington/2148/2025 A(H5N5) virus, which was isolated from the first reported human infection with this influenza virus subtype, using polarized human bronchial epithelial cells and the ferret model. The A(H5N5) virus replicated efficiently in vitro at temperatures representative of the upper and lower respiratory tracts and caused fatal systemic disease in inoculated ferrets. Limited transmission was observed during 4 days of direct contact. Airborne virus detection was infrequent and did not result in airborne transmission. These findings show that A(H5N5) virus can replicate robustly in mammalian cells and cause severe disease but lacks adaptations supporting efficient airborne spread, informing assessment of the pandemic risk posed by genotype A6 influenza viruses.

Source: 


Link: https://journals.asm.org/doi/10.1128/jvi.00856-26

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Protective effect of #H5N8 stockpiled #vaccine against a virus genetically identical to a #human isolate of #bovine #H5N1 #influenza virus

 


Summary

Background

Since early 2024, highly pathogenic avian influenza A(H5N1) viruses of clade 2.3.4.4b have caused extensive outbreaks in dairy cattle in the United States, with spillover into mammalian species, including humans. A bovine-derived A(H5N1) virus isolated from a human case retains high pathogenicity and transmissibility in mammalian models, highlighting its pandemic potential. Stockpiled pre-pandemic influenza vaccines are intended to provide early protection before strain-matched vaccines are available; however, their protective efficacy against bovine A(H5N1) viruses has not been directly evaluated in vivo.

Methods

In this study, we assessed the protective efficacy of an AS03-adjuvanted A/Astrakhan/3212/2020 (H5N8) clade 2.3.4.4b-based influenza vaccine stockpiled in Japan using mouse and ferret models. Vaccinated and unvaccinated animals were challenged with a virus genetically identical to a human isolate of bovine A(H5N1) virus. Neutralising antibody responses, viral replication in organs, and survival were evaluated.

Findings

Vaccination with the AS03-adjuvanted A(H5N8)-based stockpiled vaccine induced robust neutralising antibody responses in both animal models, significantly suppressed viral replication, and conferred complete protection against lethal challenge. In contrast, all unvaccinated mice and ferrets succumbed to infection. These findings demonstrate that the AS03-adjuvanted A(H5N8)-based stockpiled vaccine provides strong cross-protective efficacy against bovine A(H5N1) viruses.

Interpretation

An AS03-adjuvanted A(H5N8)-based vaccine stockpiled in Japan could serve as an immediate countermeasure against bovine A(H5N1) viruses during the early phase of a pandemic.

Funding

This work was supported by grants from the Japan Program for Infectious Diseases Research and Infrastructure (JP20wm0125002) and the Japan Initiative for World-leading Vaccine Research and Development Centers (JP223fa627001) from the Japan Agency for Medical Research and Development.

Source: 


Link: https://www.thelancet.com/journals/ebiom/article/PIIS2352-3964(26)00314-2/fulltext

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Loss-of-function #mutation in #Omicron #variants reduces #spike protein expression and attenuates #SARS-CoV-2 infection

 


Abstract

SARS-CoV-2 Omicron variants emerged in 2022 with >30 novel mutations in the spike alone. While most studies focus on receptor binding domain changes, mutations in the C-terminus of S1 (CTS1), adjacent to the furin cleavage site, have largely been ignored. Here, we examine three Omicron mutations in CTS1: H655Y, N679K, and P681H. Generating a SARS-CoV-2 triple mutant (YKH), we find that the mutant increases spike processing, consistent with prior reports for H655Y/P681H. In addition, the YKH mutant induces attenuated disease, but augments viral loads in male golden Syrian hamsters. Next, we generate a single N679K mutant, finding it reduces viral replication in Calu3 human respiratory cells and induces less disease in male golden Syrian hamsters. Mechanistically, the N679K mutant has increased spike processing but also reduces spike in purified virions; spike decreases are further exacerbated in infected Calu3 cell lysates. Importantly, exogenous spike expression reveals that N679K reduces overall spike protein in the context of the epidemic strain. Although a loss-of-function mutation, transmission competition demonstrates that N679K confers a replication advantage in the upper airway, potentially impacting transmissibility. Together, the data show that N679K reduces overall spike protein during Omicron infection, which has implications for infection, immunity, and transmission.

Source: 


Link: https://www.nature.com/articles/s41467-026-76680-4

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Tuesday, August 11, 2026

#Bacterial #Infection in #Ebola Virus Disease, #Marburg Virus Disease, #CCHF, and #Lassa Fever

 


Abstract

Background

Concern for bacterial coinfection in patients with high consequence viral infections (HCVIs) has made empiric antibiotic administration the standard of care. However, the incidence, microbiology, and clinical significance of bacterial coinfection in HCVIs remain unclear.

Methods

We conducted a systematic review of case reports, cohort studies, and cross-sectional analyses describing bacterial coinfection in Ebola virus disease (EVD), Marburg virus disease (MVD), Crimean–Congo hemorrhagic fever (CCHF), and Lassa fever (LF). Data were extracted on study design, setting, diagnostic methods, pathogens, antibiotic use, and outcomes.

Results

Thirty publications met inclusion criteria. Bacteremia was most commonly reported among patients with CCHF (n = 46), followed by EVD (n = 16), MVD (n = 16), and LF (n = 2). Of 27 EVD patients treated outside Africa, 7 (26%) had bacterial coinfection. Across HCVIs, bacteremia was detected a median of 11 days after symptom onset (range 0–23) and was associated with features of sepsis. Pathogens included enteric flora, healthcare-associated organisms, opportunistic pathogens, and zoonotic bacteria—most notably Brucella spp. in CCHF. Ceftriaxone was the most common empiric antibiotic but is predicted to have activity against a minority of bloodstream isolates. Mortality among coinfected patients with EVD or MVD was similar to those without bacterial coinfection, whereas coinfected CCHF patients had higher mortality than those without coinfection (15.5%; 95% CI 8.0%–25.9% vs 5.7%; 95% CI 5.1%–6.4%).

Conclusions

Despite being a major concern driving empiric antibiotic use, bacterial coinfection in HCVIs remains poorly described, precluding determination of its incidence or clinical significance. Prospective studies with standardized protocols for bacterial diagnosis and characterization of antimicrobial resistance are needed to guide antimicrobial strategies.

Source: 


Link: https://academic.oup.com/ofid/article/13/8/ofag404/8741539

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Bundibugyo Virus Disease Outbreak in the #DRC, #Uganda & #France - Situation Report 13, Data as of 09 August 2026 (WHO, summary): 4,381 cases & 2,011 deaths in DRC

 




{Click on Image to Enlarge}

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Event description

Democratic Republic of the Congo

    The Bundibugyo virus disease (BVD) outbreak in the Democratic Republic of the Congo remains in a phase of intense and expanding transmission, with cumulative deaths crossing the grim milestone of 2,000 only 86 days after the outbreak was officially declared on 15 May 2026. 

    Since External Situation Report #12, an additional 579 confirmed cases and 304 confirmed deaths have been reported, bringing the cumulative total to 4,381 confirmed cases and 2,011 confirmed deaths as of 9 August 2026, corresponding to a case fatality ratio of 45.9%. 

    Ituri remains the epicentreaccounting for 85.8% of cumulative cases and 80.6% of cumulative deaths.


{Click on Image to Enlarge}

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    The epidemic is increasingly characterized by sustained transmission within interconnected geographic clusters alongside continued geographic expansion. 
    
    The Bunia–Rwampara–Mongbwalu–Nizi corridor remains the principal transmission focus, while persistent transmission in North Kivu and  increasing activity in Haut-UĂ©lĂ© indicate spread beyond the original Ituri epicentre. 

    The number of affected health zones increased from 51 in External Situation Report #12 to 53 as of 9 August 2026, with Gombari in Haut-UĂ©lĂ© and  Bafwasende in Tshopo being the most recently affected health zones. 

    Overall, the outbreak now affects 53 of 140 health zones across five provinces.

(...)

    Persistently high mortality continues to highlight gaps in early detection  and timely access to care. 
    
    Community deaths remain frequent, with 34 of 51 reported deaths (66.7%)  occurring outside treatment centres on 9 August 2026.

    Surveillance performance improved, with all 242 validated suspected cases  being investigated on 9 August 2026. 

    Contact follow-up also increased to 86.7%, exceeding 85% for the first  time, although performance remained substantially lower in Haut-UĂ©lĂ© at 57.9%,  partly due to incomplete reporting. 

    Despite these improvements, gaps in alert reporting, contact identification  and follow-up around confirmed cases persist. 

    Treatment capacity also remains under pressure, with several treatment  and transit centres in Ituri saturated, while North Kivu continues to face constraints in referral capacity and Haut-UĂ©lĂ© still lacks a standard Ebola  treatment centre in its six affected health zones.

    Intense transmission is also occurring against a backdrop of increasing  operational and workforce pressures. 

    Challenges related to the timely remuneration of response personnel have  been reported in some affected areas, with potential implications for  workforce motivation and the continuity of response activities, including  community-based interventions and operations at points of entry and points of  control. 

    Community resistance, insecurity and operational incidents continued to  pose challenges to the timely implementation of response activities, including safe  and dignified burials. 

    These pressures are particularly concerning as epidemiological analyses  indicate that transmission is occurring faster than cases are being detected and  isolated, while contact-tracing capacity is increasingly stretched. 

    Despite the absence of further international transmission, the continued high incidence in eastern Democratic Republic  of the Congo poses a substantial risk of cross-border spread, particularly to Uganda and South Sudan through  major population movement corridors. 

    Surveillance at points of entry (PoEs) and points of control (PoCs) continued  along key mobility corridors, although operational constraints persist at  some sites. 

    Continued strengthening of cross-border surveillance, information sharing  and coordination with neighbouring countries remains essential for the early  detection and management of potential cross-border transmission.


Uganda and France

    No new BVD cases have been reported in Uganda. The last confirmed  patient was discharged on 16 July 2026, and all identified contacts subsequently  completed follow-up. As of 9 August 2026, 24 days had elapsed since the last  patient's discharge without a new confirmed case. However, continued high  transmission in neighbouring eastern Democratic Republic of the Congo poses a risk of reintroduction.

    France has reported no secondary transmission following the imported  case detected on 24 June 2026. The patient recovered and was discharged on 4  July 2026 after two consecutive negative polymerase chain (PCR) test results, and all five identified flight contacts completed 21 days of follow-up without  developing symptoms. As of 9 August 2026, 36 days had elapsed since the  patient's discharge without an additional confirmed case being reported in France.

(...)


Situation interpretation

    The BVD outbreak remains uncontrolled, with transmission continuing to  outpace response capacity. Persistent community deaths, geographic expansion  and gaps in contact follow-up indicate continued undetected community transmission, while pressure on treatment facilities, uneven infection  prevention and control capacity, workforce constraints and community resistance continue to challenge response effectiveness. 

    The response should now shift to targeted interruption of transmission in  the main clusters and emerging hotspots, while deepening community leadership  and ownership of the response. This requires empowering trusted local leaders  and community networks to drive active case finding, contact tracing, early care- seeking, and safe and dignified burials, alongside faster case investigation and  isolation and rapid infection prevention and control interventions. Workforce and  payment constraints require urgent resolution, while neighbouring countries  should maintain heightened preparedness given the continued risk of cross-border spread.


Source: 

Link: https://www.afro.who.int/health-topics/ebola-disease

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First detected incursions of avian #influenza #H5N1 clade 2.3.4.4b into mainland #Australia from the Southern Ocean

 


Abstract

High pathogenicity avian influenza H5N1 clade 2.3.4.4b has caused a panzootic of devastating impact to poultry and wildlife globally. The Australian continent and broader Oceania until recently remained the last major region without confirmed detections. Here we report the first H5N1 clade 2.3.4.4b detections from two live seabirds - a brown skua and a southern giant petrel - found on the south coast of Western Australia in June 2026. Virus genome sequencing showed that both viruses were most closely related to H5N1 viruses recently detected on sub-Antarctic islands in the Southern Indian Ocean. In time-calibrated phylogeographic analyses, both viruses sampled in Western Australia clustered with viruses from Heard Island, a sub-Antarctic external territory of Australia. Ancestral location reconstruction also identified Heard Island as the most probable source location, although unsampled intermediate locations cannot be excluded. The two Western Australian detections were estimated to be independent incursions from Heard Island, rather than local transmission on mainland Australia. There was no evidence of reassortment with endemic avian influenza viruses in Australia, and both virus sequences retained key avian-like genetic markers and lacked known substitutions for reduced antiviral susceptibility. These detections revealed a Southern Ocean pathway of recurrent H5N1 incursions into Australia, highlighting the risk of potential establishment on the mainland and the need for heightened surveillance and rapid, nationally-coordinated, virus genomic characterisation.


Competing Interest Statement

The authors have declared no competing interest.

Source: 


Link: https://www.biorxiv.org/content/10.64898/2026.08.08.743700v1

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#Taiwan, #COVID19 #epidemic continues to escalate, citizens urged to get vaccinated (CDC, August 12 '26): PQ.16.1.1 Variant still dominant

 


{Excerpt}

(...)

    According to data from the Taiwan Centers for Disease Control (CDC), the COVID-19 epidemic in Taiwan is on the rise

    In the 31st week (August 2-8), there were 24,645 outpatient and emergency room visits related to COVID-19, a 27.6% increase compared to the previous week (July 26-August 1). 

    Last week (August 4-10), there were 72 new locally transmitted severe cases and 14 new locally transmitted deaths

    Since October of last year (2014), there have been a cumulative total of 337 locally transmitted cases of COVID-19 complicated by severe illness, of which 42 have died

    The majority of severe cases are among those aged 65 and above (73.9%) and those with a history of chronic diseases (84.0%). 

    89.6% of these cases have not received the COVID-19 vaccine this season. 

    In the past four weeks, the most prevalent variant strain in locally transmitted cases has been PQ.16.1.1.

    The CDC explained that the global positivity rate is on the rise, particularly in Europe and Africa, while the Western Pacific region remains at a plateau. 

    The COVID-19 outbreaks are rising in China, Thailand, South Korea, and the United States; Japan is experiencing a relatively high point with fluctuating outbreaks, while Hong Kong's outbreak is declining; the most prevalent variants globally recently are NB.1.8.1, XFG, and JN.1.

(...)

Source: 


Link: https://www.cdc.gov.tw/Bulletin/Detail/rKEajQHrBk-SYtJSD4SB5w?typeid=9

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Monday, August 10, 2026

Effectiveness of #Oseltamivir in Hospitalized #Children With Laboratory-Confirmed #Influenza, 2014-2023

 


Key Points

    ° Question: 

        § Does oseltamivir treatment reduce risk of intensive care unit (ICU) admission and hospital length of stay among pediatric patients hospitalized with influenza?

    ° Findings:  

        § Using a cohort study from a population-based surveillance network in 13 states across 8 influenza seasons, oseltamivir treatment was found to decrease both the likelihood of ICU admission and hospital length of stay among pediatric patients hospitalized with laboratory-confirmed influenza.

    ° Meaning:  

        § These findings support the current national recommendations from the American Academy of Pediatrics, US Centers for Disease Control and Prevention, and Infectious Diseases Society of America that recommend antiviral treatment for children hospitalized with laboratory-confirmed influenza.


Abstract

Importance  

National organizations recommend antiviral treatment for hospitalized children with influenza; however, use in this setting has recently declined. Studies of oseltamivir effectiveness in children are limited by misclassification bias, unknown symptom onset date, and incomplete capture of antiviral use prior to admission.

Objective  

To assess the association between oseltamivir receipt and intensive care unit (ICU) admission and hospital length of stay (LOS) among pediatric influenza-associated hospitalizations.

Design, Setting, and Participants  

This cohort study used data that were obtained from the Influenza Hospitalization Surveillance Network (FluSurv-NET), which conducts US population-based surveillance for laboratory-confirmed influenza hospitalizations for all ages across 13 states. The study data include seasons 2014 to 2015 through 2022 to 2023, excluding 2020 to 2021. Participants included children aged younger than 18 years who were hospitalized with laboratory-confirmed influenza and for whom a respiratory symptom onset date was available. These data were analyzed from October 2024 through May 2026.

Exposures  

Oseltamivir receipt as a time-dependent exposure.

Main Outcome(s) and Measure(s)  

The primary outcome was time from symptom onset to ICU admission. Secondary outcome was time from admission to discharge (LOS). Adjusted Cox proportional hazard models (aHR) with oseltamivir receipt as a time-dependent exposure were used.

Results  

After exclusions, 6044 influenza cases were included in the primary ICU analysis, of whom 4240 (70.2%) received oseltamivir, and 7103 cases were included in the secondary LOS analysis, of whom 5746 (80.9%) received oseltamivir. In the ICU analysis, the median (IQR) age was 3 (1-7) years, 3382 (56%) were male and 3721 (44%) were female, and 2937 (49%) had 1 or more medical comorbidity—the most common of which was asthma in 1547 children (26%). In adjusted models, compared with untreated children, oseltamivir treatment reduced the hazard of ICU admission (aHR, 0.69; 95% CI, 0.60-0.80) and shortened LOS (analyzed as hazard of hospital discharge; aHR, 1.13; 95% CI, 1.06-1.21).

Conclusions and Relevance  

In this cohort of children hospitalized with influenza, oseltamivir treatment was significantly associated with a reduced risk of ICU admission by 31% and decreased hospital LOS. These findings demonstrate the benefits of oseltamivir receipt and support current national recommendations for oseltamivir treatment as soon as possible in children hospitalized with suspected or laboratory-confirmed influenza.

Source: 


Link: https://jamanetwork.com/journals/jamapediatrics/fullarticle/2852671

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#Clinical #outcomes of early #aspirin versus non-aspirin #NSAID use in #adults hospitalized with #influenza: A retrospective study

 


Abstract

Seasonal influenza remains a major cause of morbidity and mortality worldwide. Although neuraminidase inhibitors improve outcomes, influenza-related deaths persist. We evaluated the impact of early aspirin (ASA) and non-aspirin nonsteroidal anti-inflammatory drug (NSAID) use on outcomes in adults hospitalized with influenza. This retrospective study included adults admitted to the University of Minnesota Medical Center from 2016 to 2018. Continuous variables were summarized as medians with interquartile ranges (IQRs) and categorical variables as counts and percentages. Group comparisons used Wilcoxon rank-sum, Chi-square, or Fisher’s exact tests. Analyses included case–control comparisons, assessments by vaccination status, and subgroup analyses by early ASA or NSAID use. Among 2,816 patients, 320 had laboratory-confirmed influenza, with vaccination less common among cases. Unvaccinated patients had higher rates of intensive care unit (ICU) admission (23.6% vs. 11.1%; P = 0.003) and ventilatory support (15.0% vs. 6.1%; P = 0.009). In vaccinated patients, early ASA use was associated with older age and higher in-hospital mortality, whereas early NSAID use was associated with no in-hospital deaths, better one- and three-year survival (P < 0.001), and fewer, though not statistically significant, cardiovascular complications. In unvaccinated patients, ASA use was associated with lower three-year survival (59.1% vs. 79.2%; P = 0.013), while NSAID use was associated with fewer ICU admissions and no cardiovascular or renal complications. In both vaccinated and unvaccinated adults hospitalized with influenza, early NSAID use was associated with improved survival and fewer complications, whereas ASA use was associated with worse outcomes.


Competing Interest Statement

The authors have declared no competing interest.

Source: 


Link: https://www.medrxiv.org/content/10.64898/2026.08.05.26359840v1

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#Livestock production intensity and mucosal #IgA and #IgG responses to #H5N1 highly pathogenic avian #influenza A virus, North Carolina, 2021-2022

 


Abstract

Background

Direct livestock exposure is a risk factor for zoonotic influenza, including H5N1 highly pathogenic avian influenza (HPAI) A virus. But whether living in regions of high poultry and swine production intensity (PPI, SPI) increases risk of exposure to zoonotic influenza viruses independent of occupational livestock contact remains unclear. 

Objectives

To determine whether livestock workers and community members with no occupational livestock exposure in North Carolina, where poultry and swine production are increasingly co-located, are at higher risk of exposure to zoonotic influenza. 

Methods

Saliva samples from industrial livestock operation worker (ILO-W), ILO neighbor (ILO-N) and metropolitan area (Metro) households were analyzed for mucosal influenza A (H5N1, H1N1, and H3N2) hemagglutinin (HA) IgA and IgG antibodies to determine associations of PPI, SPI, exposure group, and detection of a swine-specific fecal contamination marker (Pig-2-Bac DNA) with influenza A antibody levels. 

Results

Residing in the highest PPI and SPI tertile was associated with significantly higher mucosal H5 and H1 HA IgA levels, including among residents without occupational livestock exposure. Households with occupational poultry or swine contact had significantly higher H5 IgA and IgG and H1 IgA levels compared to Metro households. In regression models accounting for clustering at the participant level, log10 anti-H5 HA mucosal IgA increased 0.16 (95% CI: 0.06, 0.27, p<0.005) and 0.10 (95% CI: 0.03, 0.17, p<0.005), per log10 increase in PPI and SPI, respectively, and 0.16 (95% CI: 0.03, 0.19, p<0.02) when Pig-2-Bac DNA was detected on household surfaces

Conclusions

Mucosal H5 HA IgA and IgG and H1 HA IgA were consistently elevated across different metrics of livestock exposure intensity, including residential exposure, occupational contact within a household, and a molecular marker of household swine fecal contamination in a state with intensive poultry and swine production.


Competing Interest Statement

The authors have declared no competing interest.

Source: 


Link: https://www.medrxiv.org/content/10.64898/2026.08.06.26359901v1

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Sunday, August 9, 2026

#Coronavirus Disease Research #References (AMEDEO, August 9 '26)

 


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    PubMed         Abstract available

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  8. ACKLAND J, Barozi V, Penrice-Randal R, Hartley C, et al
    Identifying molecular signatures underpinning treatment responses to novel therapeutics influencing COVID-19 outcomes.
    J Immunol. 2026;215:vkag189.
    PubMed         Abstract available

  9. SILVA JDC, Almeida C, Silva BMS, Bonfim BS, et al
    Elastase and myeloperoxidase participate in neutrophil extracellular trap release stimulated by SARS-CoV-2.
    J Immunol. 2026;215:vkaf313.
    PubMed         Abstract available


    J Infect Dis

  10. SMITH D, Weir IR, Ramirez S, Coelho CH, et al
    Impact of COVID-19 Monoclonal Antibody Therapy on Subsequent Vaccine-elicited SARS-CoV-2 Immune Responses.
    J Infect Dis. 2026 Feb 17:jiag091. doi: 10.1093.
    PubMed         Abstract available

  11. PLATT AP, Callier V, Grazioli A, Hu Z, et al
    Association of Plasma Biomarkers of Immunothrombosis With Death in Patients With Coronavirus Disease 2019 on Extracorporeal Membrane Oxygenation.
    J Infect Dis. 2026;234:e40-e53.
    PubMed         Abstract available

  12. SANGIORGIO G, Chamberlin G, Castagnoli R, Wachter B, et al
    Immune-Based Cytokine Signatures of Prolonged Pandemic-Associated Chilblains.
    J Infect Dis. 2026;234:e29-e33.
    PubMed         Abstract available

  13. JAYAWARDENA I, Dean NE, Witrick B, Litwin AH, et al
    2024-2025 COVID-19 mRNA Vaccine Effectiveness against Severe Disease.
    J Infect Dis. 2026 Mar 2:jiag137. doi: 10.1093.
    PubMed         Abstract available

  14. ROSAS-SALAZAR C, Gebretsadik T, Chappell JD, Peebles RS Jr, et al
    Infant Infection With Respiratory Syncytial Virus Genotypes and Subsequent Childhood Asthma Risk.
    J Infect Dis. 2026;234:e34-e39.
    PubMed         Abstract available

  15. KACHIKIS A, Frivold C, Pike M, Reed JC, et al
    Comparison of Respiratory Syncytial Virus (RSV)-Specific Antibody Durability in Pregnant/Postpartum Individuals and Older Adults After RSV Vaccination.
    J Infect Dis. 2026 Mar 26:jiag111. doi: 10.1093.
    PubMed         Abstract available

  16. KOBERSSY Z, Daher J, Durieux JC, Atieh O, et al
    Comparison of Immune Activation and Gut Barrier Dysfunction between Long COVID and HIV infection.
    J Infect Dis. 2026 Mar 31:jiag146. doi: 10.1093.
    PubMed         Abstract available

  17. FEYS S, Heylen J, Goncalves SM, Pereira I, et al
    Genetic variation in the long pentraxin PTX3 and Dectin-1 does not predispose to influenza- or COVID-19-associated pulmonary aspergillosis.
    J Infect Dis. 2026 Aug 7:jiag403. doi: 10.1093.
    PubMed         Abstract available


    PLoS One

  18. ALSHAMMARI AO, Alshammari HO, Ali H, Himmat B, et al
    A flexible exponential type family for modeling non-monotonic hazard rates with application to mortality analysis: A COVID-19 case study.
    PLoS One. 2026;21:e0331050.
    PubMed         Abstract available

  19. GOURAUD C, Guemouni S, Thoreux P, Ouazana-Vedrines C, et al
    Health-related quality of life among patients with long COVID according to the presence of a diagnosis of functional somatic disorder: A cross-sectional study.
    PLoS One. 2026;21:e0354238.
    PubMed         Abstract available


    Proc Natl Acad Sci U S A

  20. ZHOU J, Li W, Wang X, Sun J, et al
    A structural and mechanistic atlas of NTD antibody neutralization and immune escape across SARS-CoV-2 prototype and its (sub-)variants.
    Proc Natl Acad Sci U S A. 2026;123:e2535385123.
    PubMed         Abstract available

  21. MULLER L, Sartori F, Dehning J, Eggl MF, et al
    Optimizing infectious disease mitigation under dynamic conditions.
    Proc Natl Acad Sci U S A. 2026;123:e2527395123.
    PubMed         Abstract available


    Vaccine

  22. XU N, Wang L, Zhao C, Shen Y, et al
    Advances in clinical immunogenicity evaluation of influenza vaccines.
    Vaccine. 2026;89:128989.
    PubMed         Abstract available

Far from Home, William-Adolphe Bouguereau (1867)

 


{Click on Image to Enlarge}

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Public Domain.

Source: 


Link: https://www.wikiart.org/en/william-adolphe-bouguereau/far-from-home-1867

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History of Mass Transportation: The ÄŒSD Class E 669.2 Skoka Electric Locomotive

 


{Click on Image to Enlarge}

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By Motacilla - Own work, CC BY-SA 4.0, https://commons.wikimedia.org/w/index.php?curid=65498383


Source: 


Link: https://en.wikipedia.org/wiki/%C4%8CSD_Class_E_669.2

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Saturday, August 8, 2026

History of Mass Transportation: The HGe 4/4 II narrow-gauge mixed rack and adhesion locomotive


 {Click on Image to Enlarge}

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Von GoodRJ - Eigenes Werk -- Canon Digital Ixus v3, CC BY-SA 3.0, https://commons.wikimedia.org/w/index.php?curid=35002


Source: Wikipedia, https://de.wikipedia.org/wiki/Wikipedia:Hauptseite

Link: https://de.wikipedia.org/wiki/HGe_4/4_II#/media/Datei:CH_FO_HGE44-105-1.JPG

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Friday, August 7, 2026

#Influenza #H3N2 #epidemiology in #England during the 2025 to 2026 season: a mathematical modelling study

 


Abstract

Background

England experienced an unusually early and rapid increase in influenza A/H3N2 subclade K infections in 2025/26. Antigenic change and a fast selective sweep raised concerns over a potentially severe season. Building on analysis conducted as the subclade emerged, we aim to compare epidemic dynamics of the 2025/26 season to previous years and to model plausible epidemiological scenarios.

Methods

We compared peak epidemic growth rates and reproduction numbers across influenza seasons from 2011/12 to 2025/26 using routine surveillance data in England. Weekly epidemic growth rates were estimated using a Gaussian random walk model, and time-varying reproduction numbers using EpiEstim. We also developed an age-stratified transmission model and interactive web tool to explore scenarios varying immune escape, transmissibility, and seed date, using 2022/23 as a baseline season.

Results

Peak A/H3N2 growth rates and time-varying reproduction numbers for the 2025/26 season are of similar magnitude but earlier than previous severe seasons. Scenario analyses suggest early trends are compatible with moderate levels of immune escape, a 10% higher R0, or an earlier seed date, though it is not possible to distinguish the relative importance of these mechanisms from these data alone.

Conclusions

The 2025/26 influenza season is characterised by early but not unusually rapid growth. Earlier growth does not systematically lead to especially large epidemics due to earlier susceptible depletion combined with a dampening effect from school holidays. Laboratory evidence for antibody escape does not directly translate to large reductions in population immunity, supporting the need for complementary real-time epidemiological analyses and modelling.

Source: 


Link: https://www.nature.com/articles/s44528-026-00016-3

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#Risk #assessment of introduction, spread, and zoonotic #spillover of #MERS-CoV Clade B in #camel populations of the Nile Basin and Across #Africa (WHO, summary)

 


INTRODUCTION  

    The Global Early Warning System for Health Threats and Emerging Risks at the Human-Animal Ecosystems Interface (GLEWS+) is a joint initiative of the Food and Agriculture Organization of the UN (FAO), the World Health Organization (WHO), and the World Organisation for Animal Health (WOAH). 

    Within this framework, the GLEWS+ Risk Assessment (RA) mechanism enables the three organizations to jointly assess emerging health threats at the human–animal–ecosystem interface and provide evidence-based risk estimates

    These assessments support Members and State Parties in strengthening the prevention, detection, response and control measures.  


Event Description and Scope of the Assessment 

    Middle East respiratory syndrome coronavirus (MERS-CoV) is a zoonotic virus for which dromedary camels (Camelus dromedarius) are recognized as the primary animal reservoir

    Viral circulation within camel populations poses a risk of transmission to humans, particularly in settings characterized by frequent and close human–camel interactions. 

    Historically, MERS-CoV strains detected in dromedary camels in Africa have belonged to clade C, whereas clade B viruses have been associated with the majority of reported human MERS cases and have predominantly circulated in dromedary camel populations in the Middle East

    The recent detection of MERS-CoV clade B genome fragments in camels from the Nile Basin region represents a notable epidemiological development, suggesting the possibility of inter-regional viral movement and genetic mixing. 

    This finding may have implications for virus circulation and transmission dynamics, including potential changes in the risk of zoonotic spillover to humans and/or alterations in viral transmissibility and pathogenicity. 

    This assessment evaluates the risk of spread of MERS-CoV clade B within camel populations at both sub-regional (Nile Basin) and regional (Africa) levels. 

    It also assesses the risk of spillover from infected camels to humans in Nile Basin countries. 

    The assessment considers available virological, epidemiological, ecological, and socio-economic factors that influence virus circulation, including camel husbandry practices, pastoralist mobility patterns, cross-border animal movements, live-animal trade networks, and the extent of human-camel contact in the region.  

    Information used in this assessment was compiled from eight countries in Africa reporting camel populations exceeding 10,000 in 2024. 

    The countries included in the assessment are:     

        ° Chad, 

        ° Egypt*, 

        ° Eritrea*, 

        ° Ethiopia*, 

        ° Kenya*, 

        ° Libya, 

        ° South Sudan* and 

        ° Sudan*. 

    The six countries belonging to the Nile Basin sub-region are indicated by an asterisk (*). 

    This risk assessment reflects information available to 27 July 2026. FAO, WHO and WOAH will review and update the assessment as new information becomes available.  


SUMMARY 

    Middle East respiratory syndrome coronavirus (MERS-CoV) is an enveloped, positive-sense RNA virus belonging to the genus Betacoronavirus

    It causes Middle East respiratory syndrome (MERS), a zoonotic respiratory disease first recognized in 2012, following the detection of human cases in Saudi Arabia and Jordan

    As of 11 June 2026, a total of 2,637 laboratory-confirmed human cases have been reported to WHO globally, the majority from countries in the Arabian Peninsula, with an estimated crude case fatality ratio (CFR) of approximately 37%. (WHO, 2025c) 

    Dromedary camels (Camelus dromedarius) are the primary animal reservoir of MERS-CoV and the main source of zoonotic transmission to humans

    Human infections are thought to occur through direct or indirect contact with infected camels. 

    Consumption of raw camel products is considered a plausible route of exposure, although it has not been definitively confirmed as a primary transmission pathway. 

    Human-to-human transmission can occur, particularly in healthcare settings and among those in close-contact. 

    MERS-CoV antibodies have been found in other camelid species, including Bactrian camels, hybrid camels, llamas and alpacas, indicating susceptibility to infection (Islam, 2003). 

    However, these species are not considered to play a significant role in the current epidemiology of MERS.  

    MERS-CoV has evolved into three genetic clades (A, B, and C) with distinct geographic patterns. 

    Clade B predominates in the Arabian Peninsula and has been associated with all recent human infections

    Clade A has not been detected since 2015 and is considered extinct. 

    Clade C circulates among dromedary camels across Africa and despite frequent camel imports from Nile Basin countries into the Arabian Peninsula, has not become established in local camel populations. 

    Experimental and phenotypic studies indicate that clade B viruses exhibit higher replication efficiency in human respiratory tissues and experimentally infected camelids, more efficient cellular entry, and prolonged viral shedding compared with clade C viruses. (Rodon, 2023) 

    These characteristics suggest a greater zoonotic potential and an increased likelihood of transmission to humans. (Zhou, 2021) 

    The global camel population is estimated at over 42 million heads as of 2023, with more than 80% of the population in Africa (FAO, 2025a). 

    Camel trade within Africa is predominantly regional and fragmented, with significant informal cross-border movement. (WHO, 2025d, FAO, 2026) In the Nile Basin and the Horn of Africa {1}. 

    Camel trade and movement are largely driven by informal cross-border pastoralist systems, with frequent but poorly documented movements between neighboring countries such as Sudan, Ethiopia, Kenya, and South Sudan. 

    Sudan plays a central role as a major camel exporter, with substantial formal and informal movements to neighboring countries and toward North Africa, while Egypt functions primarily as a terminal hub where camels from multiple origins converge for trade and slaughter. 

    In contrast, long-distance east-to-west transcontinental movement appears limited, with little evidence of sustained camel movement from the Nile Basin into North or West Africa. (Younan et al., 2016) 

    Recent genomic surveillance studies have suggested the introduction of MERS-CoV clade B strains into camel populations in the Nile Basin, outside its historically recognized circulation in the Arabian Peninsula. 

    In Egypt, phylogenetic analyses of a camel-derived sample identified genome fragments clustering with clade B viruses from the Arabian Peninsula, circulating alongside endemic African clade C viruses (Gomaa, Edwards, Wang, Taweel, et al., 2025). 

    Recombination analyses in these studies were interpreted by the authors as suggesting potential genomic mixing between introduced clade B and endemic clade C lineages, highlighting a potential for inter-regional viral exchange and the emergence of novel variants

    However, as the publicly available sequences are incomplete, these findings require confirmation through full genome sequencing.  

    In a separate study (Hassan et al., 2025), metagenomic sequencing of nasal swabs from camels imported from Sudan also detected MERS-CoV genome fragments clustering with clade B human and camel strains. 

    Whole genome sequencing would be necessary to confirm these findings and better characterize their evolutionary relationships. 

    Overall, while these observations suggest the possible introduction of clade B viruses into camel population in the Nile Basin sub-region, additional research is required to determine whether there is sustained circulation, establishment, or recombination of clade B viruses in continental African camel populations. 

    Using a qualitative evidence-based approach and considering the assessed likelihood and consequences in the countries assessed, the overall risk at sub-regional level (Nile Basin) of further introduction and spread of MERS-CoV clade B within camel populations is minor

    The risk of introduction and spread from camel populations in the Nile Basin to camel populations in neighbouring countries is also assessed as minor

    However, if MERS-CoV clade B is introduced and established in camel populations in the Nile Basin countries, the public health risk of spillover from camels to humans exposed to infected camels or their products is assessed as high.  

    The level of confidence in the risk estimates is considered low for the first two questions, reflecting limitations in the quality and completeness of available genomic data, the presence of plausible but unconfirmed transmission pathways, very limited surveillance in camels and humans, and evolving camel trade dynamics that may facilitate virus spread within and beyond the Nile Basin. 

    The level of confidence is considered moderate for the third question. 

    While the clinical presentation and potential consequences of MERS-CoV infection in humans are well documented and observed in previous outbreaks, important uncertainties remain regarding the social, behavioral, and contextual factors that influence the likelihood of camel- to- human spillover in the Nile Basin.  

(...)

{1} Countries in the Horn of Africa are: Djibouti, Eritrea, Ethiopia, and Somalia

Source: 


Link: https://www.who.int/publications/m/item/risk-assessment-of-the-introduction--spread--and-zoonotic-spillover-of-mers-cov-clade-b-in-camel-populations-of-the-nile-basin-and-across-africa

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