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Keywords = SARS-CoV-2 inactivation

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22 pages, 2101 KB  
Article
Safety and Immunogenicity of an Additional Dose of Thailand Government Pharmaceutical Organization (GPO) Inactivated NDV-HXP-S COVID-19 Vaccine (HXP-GPOVac) Administered After Primary Vaccination with HXP-GPOVac or BNT162b2: An Open-Label Phase II Extension Trial in Thai Adults
by Prabda Praphasiri, Darunee Ditsungneon, Anusak Kerdsin, Sutthichai Nakphook, Jiraphut Kittiwatanachod, Kanlaya Sornwong, Suriya Naosri, Sarunpattori Khunarsa, Ponthip Wirachwong, Isariya Techatanawat, Piengthong Narakorn, Somchaiya Surichan, Jorge Flores, Laina D. Mercer, Christina S. Polyak, Bruce L. Innis, Rama Raghunandan, Chakrarat Pittayawonganon, Sopon Iamsirithaworn, Supakit Sirilak and Kriengkrai Prasertadd Show full author list remove Hide full author list
Vaccines 2026, 14(8), 660; https://doi.org/10.3390/vaccines14080660 - 28 Jul 2026
Viewed by 353
Abstract
Background/Objectives: Waning immunity after primary COVID-19 vaccination supports evaluation of additional doses. HXP-GPOVac is an egg-based, inactivated Newcastle disease virus (NDV)-vectored vaccine expressing a prefusion-stabilized SARS-CoV-2 HexaPro spike antigen. We evaluated the safety, tolerability, and immunogenicity of a single additional 10 µg dose [...] Read more.
Background/Objectives: Waning immunity after primary COVID-19 vaccination supports evaluation of additional doses. HXP-GPOVac is an egg-based, inactivated Newcastle disease virus (NDV)-vectored vaccine expressing a prefusion-stabilized SARS-CoV-2 HexaPro spike antigen. We evaluated the safety, tolerability, and immunogenicity of a single additional 10 µg dose of HXP-GPOVac administered to adults previously primed with two doses of either HXP-GPOVac or BNT162b2. Methods: Study GPO NDV-HXP-S 203 was an open-label phase II extension enrolling adults (18–75 years) who previously completed a two-dose primary series in Study 202 with either HXP-GPOVac or BNT162b2 (Pfizer–BioNTech; Comirnaty). All participants received a single additional 10 µg intramuscular dose of HXP-GPOVac ≥ 6 months after their second primary dose. Solicited local/systemic adverse events (AEs) were recorded for 7 days, unsolicited AEs through Day 28, and serious AEs (SAEs) and adverse events of special interest (AESIs) throughout follow-up. Neutralizing antibody titers (pseudovirus 50% neutralization titer, NT50) and anti-spike IgG (BAU/mL) were assessed pre-dose (Day 1) and post-vaccination through 12 months; a predefined subset underwent IFN-γ and IL-5 ELISpot. SARS-CoV-2 infection during follow-up was assessed using anti-nucleocapsid (anti-N) IgG. Symptomatic COVID-19 was identified through symptom-reported, symptom-triggered RT-PCR testing; sequencing was performed when feasible. Results: All 219 participants received HXP-GPOVac (167 primed with HXP-GPOVac and 52 with BNT162b2). Any solicited local reaction occurred in 22.2% (37/167) of HXP-GPOVac-primed and 26.9% (14/52) of BNT162b2-primed participants; any solicited systemic reaction occurred in 10.8% (18/167) and 13.5% (7/52), respectively. No vaccine-related unsolicited AEs or AESIs were reported. Three deaths occurred during the 12-month follow-up; one (a sudden cardiac death in an HXP-GPOVac-primed participant) was assessed by the safety medical team as possibly related to vaccination, and two were assessed as not related. Neutralizing antibody GMTs increased from 46.33 at baseline to 1569.04 at Day 15 in HXP-GPOVac-primed participants and from 77.25 to 841.34 in BNT162b2-primed participants; corresponding SCRs were 78.8% and 76.9%. Anti-spike IgG GMCs increased from 48.79 to 1480.14 BAU/mL and from 194.48 to 1547.88 BAU/mL, respectively. Responses declined over time but remained above baseline through 12 months. In the cellular immunity subset, post-vaccination IFN-γ responses increased, with comparatively modest IL-5 responses and no pattern suggestive of Th2 predominance. Conclusions: A single additional dose of HXP-GPOVac administered ≥6 months after primary vaccination with HXP-GPOVac or BNT162b2 was generally well tolerated and elicited robust recall humoral responses, with supportive findings of cellular immunity. Trial registration: Thai Clinical Trials Registry, TCTR20230213001. Full article
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12 pages, 514 KB  
Article
Adverse Events in Following Immunization with Inactivated SARS-CoV-2 Vaccines (TURKOVAC and CoronaVac) in PCR-Positive Asymptomatic or Mildly Symptomatic Individuals Compared to PCR-Negative Recipients
by Ateş Kara, İhsan Ateş, Sebahat Tekcan, Seçil Uysal, Yüksel Hakan Aydoğmuş, Mine Durusu Tanrıöver, Aykut Özdarendeli, Erdogan Oz and Muhammed Emin Demirkol
Vaccines 2026, 14(8), 657; https://doi.org/10.3390/vaccines14080657 - 27 Jul 2026
Viewed by 256
Abstract
Background/Objectives: COVID-19 vaccines may be given without requiring a negative test or absence of symptoms; however, this recommendation needs further safety evaluation. This study aimed to compare the adverse events following immunization (AEFI) between PCR-positive (asymptomatic/mildly symptomatic) and PCR-negative individuals at the [...] Read more.
Background/Objectives: COVID-19 vaccines may be given without requiring a negative test or absence of symptoms; however, this recommendation needs further safety evaluation. This study aimed to compare the adverse events following immunization (AEFI) between PCR-positive (asymptomatic/mildly symptomatic) and PCR-negative individuals at the time of vaccination, with a secondary objective of comparing the two vaccines (TURKOVAC and CoronaVac). Methods: This descriptive study was a secondary analysis of phase III clinical trials. Individuals who were positive for SARS-CoV-2 PCR at the time of vaccination constituted the PCR(+) group and those who tested negative or became positive after the 4th day following vaccination constituted the PCR(−) group. Whether participants had a history of COVID-19 was not considered. Results: Data from 5207 individuals were analyzed. AEFIs were more frequent in the PCR(+) group than PCR(−) group: site pain (24.5% vs. 16.7%, p < 0.001), arm pain (9.5% vs. 7.8%, p = 0.008), headache (14.8% vs. 10.0%, p < 0.001), fatigue (14.5% vs. 8.9%, p < 0.001), myalgia (12.3% vs. 7.5%, p < 0.001), sore throat (11.9% vs. 8.1%, p < 0.001), cough (7.9%; 11.1% vs. 6.9%, p < 0.001). These AEFIs were more frequent in the PCR(+) group with both vaccine groups separately. The distribution of AEFIs over time followed similar patterns in PCR(+) and PCR(−) individuals. Local AEFIs were slightly more common with the TURKOVAC, systemic AEFIs with the CoronaVac. Conclusions: While AEFIs were more common among PCR(+) group, they were mild, tolerable, and easily manageable. Our results support the suggestion that routine PCR testing prior to vaccination may not be warranted solely to mitigate concerns about anticipated adverse events. Full article
(This article belongs to the Section COVID-19 Vaccines and Vaccination)
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24 pages, 9438 KB  
Article
Human Coronavirus Photodynamic Inactivation and In Silico Mechanisms Induced by Ga(III) vs. Zn(II) Phthalocyanines
by Neli Vilhelmova-Ilieva, Emilio Mateev, Muhammed Tilahun Muhammed, Aleksandra Rangelova, Diana Braikova, Ivan Iliev and Vanya Mantareva
Viruses 2026, 18(8), 815; https://doi.org/10.3390/v18080815 - 24 Jul 2026
Viewed by 381
Abstract
Photodynamic inactivation (PDI) is a relatively new approach for targeting viruses. Recently, PDI has been shown to be effective against various viral infections, with a low probability of resistance development. The study presents PDI towards the infectivity of human coronavirus (HCoV-OC43) at different [...] Read more.
Photodynamic inactivation (PDI) is a relatively new approach for targeting viruses. Recently, PDI has been shown to be effective against various viral infections, with a low probability of resistance development. The study presents PDI towards the infectivity of human coronavirus (HCoV-OC43) at different stages of its propagation and through different mechanisms of action. Two tetra-methylpyridiloxy-substituted gallium and zinc phthalocyanines (GaPcMe and ZnPcMe), exposed to light from a 660 nm light-emitting diode (LED), were evaluated and showed a high potential against HcoV-OC43. The effect of PDI on extracellular virions and the stage of their adsorption was assessed using the finite dilution method and by determining changes in viral infectivity (Δlgs). The impact on the viral replicative cycle was assessed by inhibition of the cytopathic effect (CPE). The direct effect on virions was notable for both phthalocyanines, but was significantly more pronounced for ZnPcMe (Δlg = 4). A strong inhibitory effect on virus adsorption was observed for ZnPcMe (from Δlg = 3.5 to complete inhibition, Δlg = 5.0, depending on the irradiation time). Both GaPcMe and ZnPcMe demonstrate PDI at an early stage of the virus replication cycle. This is reflected in the high photoinactivation indices PII = 44.0 for ZnPcMe and PII = 23.3 for GaPcMe. The binding potential of GaPcMe and ZnPcMe toward viral and host protein targets was investigated using molecular docking and molecular dynamics (MD) simulations. The computational panel included HCoV-OC43 3CLpro (Nsp5, PDB 9PAM) and homologous SARS-CoV-2 proteins, namely Nsp5, Nsp12, M protein, S protein, as well as human ACE2. The docking results indicated that both phthalocyanines exhibit notable theoretical binding affinity toward these targets. Full article
(This article belongs to the Special Issue Coronaviruses Pathogenesis, Immunity, and Antivirals (2nd Edition))
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24 pages, 1759 KB  
Review
Arming Inactivated Enveloped Virus Vaccines with the GGTA1 Gene: A Potent Method for Amplification of Viral Vaccines Effectiveness and Protection Against Variants
by Uri Galili
Vaccines 2026, 14(7), 571; https://doi.org/10.3390/vaccines14070571 - 29 Jun 2026
Viewed by 505
Abstract
This review describes a novel method for increasing the effectiveness of inactivated enveloped whole-virus vaccines by targeting them for extensive uptake by antigen-presenting cells (APCs). Several inactivated whole-virus vaccines with dense glycan shields display suboptimal effectiveness because the multiple carbohydrate chains (glycans) on [...] Read more.
This review describes a novel method for increasing the effectiveness of inactivated enveloped whole-virus vaccines by targeting them for extensive uptake by antigen-presenting cells (APCs). Several inactivated whole-virus vaccines with dense glycan shields display suboptimal effectiveness because the multiple carbohydrate chains (glycans) on the virus mask immunogenic peptides and surround the virus with a negative electrostatic charge that decreases uptake by APCs. It is postulated that engineering such vaccinating viruses to present the carbohydrate antigen “α-gal epitope” on the glycan shields will immunocomplex them with the anti-Gal antibody; thus, it will target them for robust uptake by APCs. Anti-Gal is an abundant natural antibody in humans, constituting ~1% of human circulating immunoglobulins. The ligand of anti-Gal is the α-gal epitope, which is naturally synthesized in non-primate mammals and New World monkeys by the glycosylation enzyme α1,3galactosyltransferase. This enzyme is encoded by the GGTA1-gene. Viral vaccines presenting multiple α-gal epitopes on their glycan shield bind anti-Gal and activate the complement system to produce complement chemotactic cleavage peptides C5a and C3a that induce extensive recruitment of APCs to vaccine injection sites. The virion-bound anti-Gal further targets the viral vaccine for robust uptake by APCs, following binding of its Fc “tail” to Fcγ-receptors on APCs. The efficacy of this method was studied in anti-Gal-producing mice with α-gal presenting inactivated influenza virus vaccine and with gp120 of HIV presenting this epitope. These studies indicated that virus vaccines engineered to present α-gal epitopes increase anti-virus antibody production and virus-specific T-cell activation by 15- to 100-fold in comparison to the same vaccines lacking α-gal epitopes. It is suggested that α-gal presenting inactivated SARS-CoV-2 virus vaccines can induce a similar protective long-term immune memory against S- M-, E-, and N-viral proteins. Furthermore, immune-escaping variants of the mutated S-protein may be destroyed by antibodies to M and E proteins, and cells infected with such variants may be killed by cytotoxic T cells specific to peptides of the N-protein. Such an anti-M-, E-, and N-protein immune protection may prevent expansion of these variants and thus may avoid the need for immunization with COVID-19 vaccines every 6 months or following the appearance of new variants. A similar potent immunization may be achieved with an inactivated Ebolavirus vaccine engineered to present α-gal epitopes on the glycan shield. The resulting immune response to the various Ebolavirus proteins also may contribute to cross-reactive protection against other Ebolavirus species containing proteins with evolutionarily conserved structures. An effective method for the preparation of a whole-virus vaccine presenting α-gal epitopes is by arming it with the GGTA1-gene inserted into the viral genome. Such virions will present multiple α-gal epitopes on their glycan shield, which will amplify their immunogenicity instead of reducing it in the wild-type virus. Full article
(This article belongs to the Section Vaccine Advancement, Efficacy and Safety)
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21 pages, 6366 KB  
Article
Magnetoencephalography Reveals Neuroprotection of COVID-19 Vaccination in Nonhuman Primates
by Jennifer Stapleton-Kotloski, Jared Rowland, April Davenport, Phillip Epperly, Maria Blevins, Dwayne Godwin, Daniel Ewing, Zhaodong Liang, Appavu Sundaram, Nikolai Petrovsky, Kevin Porter, John Sanders and James Daunais
Vaccines 2026, 14(6), 543; https://doi.org/10.3390/vaccines14060543 - 20 Jun 2026
Viewed by 673
Abstract
Background/Objectives: COVID-19, caused by the SARS-CoV-2 virus, can lead to widespread neurological and cognitive complications, even in the absence of significant structural brain abnormalities. Understanding the evolving health concerns in the context of viral infections is critical to service member readiness, fitness, and [...] Read more.
Background/Objectives: COVID-19, caused by the SARS-CoV-2 virus, can lead to widespread neurological and cognitive complications, even in the absence of significant structural brain abnormalities. Understanding the evolving health concerns in the context of viral infections is critical to service member readiness, fitness, and mission completion. The potential neuroprotective effects of SARS-CoV-2 vaccination remain underexplored. Methods: Using a cross-sectional, non-human primate model (female cynomolgus macaques), we employed magnetoencephalography (MEG) to assess resting-state brain activity following vaccination with escalating doses of a novel psoralen-inactivated SARS-CoV-2 vaccine (PsIV) or a combination of PsIV and a DNA vaccine (prime boost), and subsequent challenge with the Delta variant (SARS-CoV-2 B.1.617.2). MEG scans were acquired 41 days after inoculation. Source series were constructed for 42 regions of interest for each subject, and band power was computed. Results: Band power demonstrated substantial preservation of neural activity across multiple brain regions in vaccinated subjects compared to unvaccinated controls following viral challenge. Significantly lower power was observed across the brain at all bandwidths in the unvaccinated group relative to the prime boost group. As PsIV concentration increased, spectral power increased, with the prime boost group having the greatest power. Conclusions: This approach not only underscores the role of vaccination in mitigating neuropathology but also highlights the capability of MEG to detect subtle yet significant changes in brain function that may be overlooked by other imaging modalities. These findings advance our understanding of vaccine-induced neuroprotection and establish MEG as a powerful tool for monitoring brain function in the context of viral infections. Full article
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12 pages, 1105 KB  
Article
Longevity and Magnitude of Antibody Responses After Homologous and Heterologous COVID-19 Booster Vaccinations in Bangladesh
by Marjahan Akhtar, Md. Rashedul Islam, Zahid Hasan Khan, Afroza Akter, Imam Tauheed, Tasnuva Ahmed, Ishtiakul Islam Khan, Mohammad Ashraful Amin, Fatema Khaton, Farhana Khanam, Md. Taufiqul Islam, Prasanta Kumar Biswas, Rumana Rashid, Md. Mamunur Rashid, Md. Zakir Hossain, Ahmed Nawsher Alam, A. S. M. Alamgir, Edward T. Ryan, Sayera Banu, Tahmina Shirin, Fahima Chowdhury, Ashraful Islam Khan, Taufiqur Rahman Bhuiyan and Firdausi Qadriadd Show full author list remove Hide full author list
Vaccines 2026, 14(6), 531; https://doi.org/10.3390/vaccines14060531 - 15 Jun 2026
Viewed by 702
Abstract
Background: The dynamics of humoral immune responses following primary and booster COVID-19 vaccinations are crucial to understand in order to optimize vaccination strategies. This study evaluates the magnitude and durability of SARS-CoV-2-specific IgG antibody responses across different vaccines in a large cohort of [...] Read more.
Background: The dynamics of humoral immune responses following primary and booster COVID-19 vaccinations are crucial to understand in order to optimize vaccination strategies. This study evaluates the magnitude and durability of SARS-CoV-2-specific IgG antibody responses across different vaccines in a large cohort of Bangladeshi adults. Methods: A total of 6300 adults from nine hospitals across eight divisions of Bangladesh were enrolled. Participants received two primary doses of either ChAdOx1 nCoV-19 (Covishield, Serum Institute of India, n = 2855), mRNA-1273 (Moderna, n = 578), BNT162b2 (Pfizer-BioNTech, n = 121), or Vero-cell-inactivated (Sinopharm, n = 2746) vaccines. Booster doses were administered at one-year intervals post-primary vaccination. SARS-CoV-2 spike receptor-binding domain (RBD)-specific IgG antibody responses were measured by ELISA using serum from vaccinees at multiple time points after two primary and two booster doses. Results: A total of 3745 individuals received booster 1 (third dose), with 59% receiving heterologous boosters (a different vaccine regimen than the primary doses). Only 5.5% (n = 347) of participants received a second booster one year after the first booster (among them, 99% received BNT162b2). Our results suggest that heterologous boosters with the mRNA vaccine induced higher IgG levels than homologous boosters for individuals who received primary vaccination with adenovirus vector-based ChAdOx1 nCoV-19 or a Vero-cell-inactivated vaccine. However, in those who initially received the mRNA-based vaccine, both homologous and heterologous boosters produced comparable IgG responses. Among all vaccine types, booster immunization with the Vero-cell-inactivated vaccine induced the lowest antibody responses. Longitudinal analysis demonstrated significantly high IgG levels over the 12 months following the first booster (p < 0.0001); however, IgG levels declined significantly after the second booster dose (fourth dose). Conclusions: Heterologous boosting strategies, particularly those involving mRNA vaccines, elicit stronger and more sustained IgG responses compared to a homologous booster. However, antibody waning after the second booster highlights the need for continued monitoring and potential additional vaccine strategies. Full article
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14 pages, 5711 KB  
Article
Impact of COVID-19 Booster Vaccination on Serum Redox Homeostasis
by Marija Vukčević, Dušan Mihajlo Spasić, Vladimir Kešelj, Lena Platanić Arizanović, Tanja Grahovac, Teodora Vidonja Uzelac, Zorana Oreščanin Dušić, Aleksandra Nikolić-Kokić and Milan Nikolić
Int. J. Mol. Sci. 2026, 27(10), 4574; https://doi.org/10.3390/ijms27104574 - 20 May 2026
Viewed by 457
Abstract
This study examined alterations in serum redox biomarkers before and one month after administration of the coronavirus disease 2019 (COVID-19) booster (third) doses across four vaccine regimens. A longitudinal cohort of 410 adults was analyzed following homologous Pfizer-BioNTech, Sinopharm [Vero Cell]-Inactivated, Sputnik V, [...] Read more.
This study examined alterations in serum redox biomarkers before and one month after administration of the coronavirus disease 2019 (COVID-19) booster (third) doses across four vaccine regimens. A longitudinal cohort of 410 adults was analyzed following homologous Pfizer-BioNTech, Sinopharm [Vero Cell]-Inactivated, Sputnik V, or heterologous Sinopharm/Pfizer vaccination. Serum total proteins, albumin, total thiols, nitrites, ferric-reducing antioxidant power (FRAP), and 2,2-diphenyl-1-picrylhydrazyl (DPPH) radical-scavenging activity were measured, with DPPH interpreted as an ex vivo surrogate of serum radical-scavenging capacity. Additional analyses included stratification by prior severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) infection, multivariable regression, correlation analysis, effect-size estimation, and sensitivity testing. Booster vaccination was associated with modest but consistent decreases in DPPH activity, albumin, and total proteins, whereas FRAP, nitrite, and total thiol levels remained stable. This pattern supports a transient shift in antioxidant buffering capacity but, by itself, does not exclude oxidative stress, as direct oxidative damage markers were not assessed. The most pronounced changes were observed in Sinopharm-based regimens, particularly in the heterologous Sinopharm/Pfizer group. Prior SARS-CoV-2 infection did not materially alter the qualitative response pattern, whereas older age and comorbidities were associated with greater declines in DPPH activity and albumin. Overall, the findings indicate a modest, transient redox-associated response following booster-induced immune activation and suggest that host-related factors, such as age and comorbidity burden, may accentuate short-term changes in antioxidant buffering capacity. Full article
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20 pages, 3709 KB  
Article
Carbon Dots-TiO2 Decorated with Ag Nanoparticles for Efficient Photocatalytic and Antiviral Applications
by Alexandra Karagianni, Adamantia Zourou, Aekkachai Tuekprakhon, Afroditi Ntziouni, Anna-Maria Tavlaridi, Ioanna Kitsou, Dimitra Katerinopoulou, Aspasia Stoumpidi, Georgios Kiriakidis, Zania Stamataki and Konstantinos V. Kordatos
Materials 2026, 19(10), 2084; https://doi.org/10.3390/ma19102084 - 15 May 2026
Viewed by 727
Abstract
The modern world is confronting critical environmental and biomedical challenges, underscoring the urgent need for the development of multifunctional materials—an inherently interdisciplinary field, bridging materials science and engineering, environmental science and biomedicine. Titanium dioxide (TiO2) is widely recognized for its photocatalytic [...] Read more.
The modern world is confronting critical environmental and biomedical challenges, underscoring the urgent need for the development of multifunctional materials—an inherently interdisciplinary field, bridging materials science and engineering, environmental science and biomedicine. Titanium dioxide (TiO2) is widely recognized for its photocatalytic and antiviral properties, enabling the degradation of pollutants and mitigation of viral contamination under solar irradiation. Nevertheless, it exhibits certain limitations, such as wide band gap and high recombination rate of photogenerated electron–hole pairs. To address these limitations, TiO2 prepared by a co-precipitation method was modified with N-Doped Carbon Dots (N-CDs) via a hydrothermal treatment, which extend light absorption into the visible region and enhance charge separation. Further functionalization with silver nanoparticles (Ag NPs)—well known for their antimicrobial properties—via a simple thermal process under ambient conditions, introduced additional reactive oxygen species generation, creating a synergistic effect. The as-prepared TiO2, TiO2/N-CDs and TiO2/N-CDs/Ag samples were characterized via several techniques, such as XRD, micro-Raman, FT-IR, TEM and UV-Vis. In addition, their photocatalytic and antiviral activity against methylene blue (MB) and nitrogen oxide (NOx) pollutants, as well as SARS-CoV-2, was evaluated. Based on the results of liquid-phase photocatalysis, TiO2, TiO2/N-CDs and TiO2/N-CDs/Ag presented a degradation efficiency of 78%, 85% and 95%, respectively, whereas different trends were observed under gaseous-phase conditions. The TiO2/N-CDs/Ag hybrid material demonstrated superior antiviral activity against SARS-CoV-2 (IC50: 1.24 ± 0.34 g/L), compared to both TiO2 (IC50: 1.78 ± 0.30 g/L) and TiO2/N-CDs (IC50: >2.5 g/L), highlighting its potential as an effective multifunctional material. Finally, TiO2/N-CDs/Ag was incorporated onto a paper substrate, demonstrating antiviral activity, showing promising scalability for application across a wide range of future substrates. To the best of our knowledge, this is the first study presenting TiO2/N-CDs/Ag with dual photocatalytic and antiviral activity. Full article
(This article belongs to the Special Issue Revisiting the Fundamentals: Synthesis of Metal Oxides)
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18 pages, 4245 KB  
Article
Polylactide Modified with ZnO and Raspberry Leaf Extract as Active Food Packaging
by Magdalena Zdanowicz, Małgorzata Mizielińska and Wojciech Jankowski
Int. J. Mol. Sci. 2026, 27(9), 4002; https://doi.org/10.3390/ijms27094002 - 29 Apr 2026
Cited by 2 | Viewed by 588
Abstract
The aim of the study was to modify polylactide with zinc oxide nanoparticles (ZnO), raspberry leaf extract (E), and a combined ZnO/extract system (EZnO) in order to prepare novel packaging materials via a solvent-free method, namely cast extrusion. Physicochemical properties: Morphology (GPC, SEM, [...] Read more.
The aim of the study was to modify polylactide with zinc oxide nanoparticles (ZnO), raspberry leaf extract (E), and a combined ZnO/extract system (EZnO) in order to prepare novel packaging materials via a solvent-free method, namely cast extrusion. Physicochemical properties: Morphology (GPC, SEM, FTIR), mechanical (tensile tests, puncture), barrier (WVTR, OTR, UV-Vis) and water contact angle for PLA-based films with two thickness ranges were investigated. Additionally, antimicrobial (antibacterial, antifungal and antiviral) tests were performed. GPC results revealed that the presence of the extract counteracted biopolyester degradation during hot melt processing. The best mechanical properties (TS ca. 50 MPa, EB ca. 18%) were obtained for PLA modified with raspberry leaf extract (PLA/E). EZnO addition led to the highest increase in oxygen (with 25%) and water vapor (up to ca. 28%) barrier properties. The material with EZnO addition was also found to be the only one to demonstrate antibacterial effectiveness, although the activity was insignificant. However, the incorporation of EZnO into the biopolymer matrix enhanced its antiviral properties, resulting in the complete inactivation of Φ6 bacteriophage particles used as a surrogate of SARS-CoV-2 virus. Full article
(This article belongs to the Special Issue Bioactive Molecules from Food Waste in Food Packaging Applications)
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15 pages, 438 KB  
Review
Advances in Ozone-Based Inactivation of SARS-CoV-2: An Updated Review
by Karyne Rangel, Maria Helena Simões Villas-Bôas and Salvatore Giovanni De-Simone
Int. J. Mol. Sci. 2026, 27(8), 3632; https://doi.org/10.3390/ijms27083632 - 18 Apr 2026
Viewed by 1107
Abstract
The onset of the COVID-19 pandemic prompted the rapid development and deployment of novel strategies and methodologies to manage the dissemination of microorganisms. Understanding the crucial role that contaminated surfaces play in the spread of viruses highlights the importance of having effective cleaning [...] Read more.
The onset of the COVID-19 pandemic prompted the rapid development and deployment of novel strategies and methodologies to manage the dissemination of microorganisms. Understanding the crucial role that contaminated surfaces play in the spread of viruses highlights the importance of having effective cleaning and disinfection protocols in place for inanimate objects. A variety of antimicrobial agents have shown strong effectiveness against the SARS-CoV-2 virus. Various factors can impact on the performance of these agents. As a result, technologies utilizing ozone’s microbicidal effects have been developed or improved for cleaning indoor areas, surfaces, and materials, despite ozone’s diverse uses being known for years. Ozone offers the advantage of adaptability for both gaseous and aqueous use, depending on the nature of the decontaminated surfaces. Moreover, ozone-infused water is ecologically benign, possesses microbial-fighting capabilities, and synergistically reinforces the biocidal action of other chemical disinfectants. This review aims to summarize the efforts dedicated to harnessing gaseous and aqueous ozone as a valuable means to eliminate the SARS-CoV-2 virus from environments, surfaces, clinical equipment, and office supplies. This review sourced evidence-based articles from electronic databases, including MEDLINE (via PubMed), EMBASE, the Cochrane Library (CENTRAL), and preprint repositories. The findings illustrated that ozone could serve as an additional tool for curbing the proliferation of COVID-19 and other viral infections. Additionally, we elucidated the operational attributes of ozone, the variables that influence its disinfection potency, and the mechanisms of its virucidal action. Notably, this review does not encompass the disinfection of the COVID-19 virus in wastewater. Full article
(This article belongs to the Special Issue Molecular Mechanisms of Ozone Therapy)
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16 pages, 622 KB  
Article
Comparative Evaluation of Rapid Nucleic Acids Extraction Methods for Biosensor-Based Point-of-Care Solutions
by Maciej Polak, Aldona Wiatrzyk, Katarzyna Krysztopa-Grzybowska, Karolina Sobiecka, Ewa Mosiej, Marta Prygiel, Robert Ziółkowski, Dawid Jańczak, Katarzyna Pancer, Aleksandra Skiba and Aleksandra Anna Zasada
Biosensors 2026, 16(4), 195; https://doi.org/10.3390/bios16040195 - 28 Mar 2026
Cited by 2 | Viewed by 1239
Abstract
The translation of nucleic acid amplification into practical point-of-care and biosensor-integrated diagnostics is still significantly impeded by the necessity for rapid sample preparation. For this reason, a broad comparison of seven commercially available kits for DNA/RNA extraction containing their temperature-related adjustments was performed. [...] Read more.
The translation of nucleic acid amplification into practical point-of-care and biosensor-integrated diagnostics is still significantly impeded by the necessity for rapid sample preparation. For this reason, a broad comparison of seven commercially available kits for DNA/RNA extraction containing their temperature-related adjustments was performed. Extracts isolated from SARS-CoV-2-positive nasopharyngeal swabs, viral stocks, as well as laboratory-prepared suspensions of clinically relevant Gram-positive and Gram-negative bacteria were evaluated by recombinase polymerase amplification (RPA) and real-time PCR. In addition, the impact of transport media for SARS-CoV-2 samples was investigated. Extraction performance varied markedly according to the kit, pathogen, sample background. For SARS-CoV-2, rapid extraction was more effective for samples collected in viral transport medium than in inactivation buffer. Across bacterial targets, performance was species dependent, highlighting substantial differences in compatibility between simplified extraction workflows and downstream amplification. Among the rapid methods tested, a simplified QuickExtract protocol (95 °C, 5 min) provided the most consistent overall results, although it did not uniformly match the reference silica-based method for all targets. In conclusion, these results demonstrate that rapid nucleic acid extraction must be thoroughly evaluated as an essential element of the entire sample-to-answer workflow, rather than being chosen as a standalone preprocessing step for point-of-care molecular diagnostics. Full article
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14 pages, 1731 KB  
Article
Inactivation of Respiratory Syncytial Virus in Aerosols by Means of Selected Radiated Microwaves
by Pietro Bia, Alessandro Filisetti, Margherita Losardo and Antonio Manna
Appl. Sci. 2026, 16(7), 3253; https://doi.org/10.3390/app16073253 - 27 Mar 2026
Viewed by 666
Abstract
Human respiratory syncytial virus (RSV) is the predominant etiological agent responsible for lower respiratory tract infections in young children. Recurrent infections throughout an individual’s lifespan can lead to significant morbidity, particularly in the elderly and in adults, influencing the trends of [...] Read more.
Human respiratory syncytial virus (RSV) is the predominant etiological agent responsible for lower respiratory tract infections in young children. Recurrent infections throughout an individual’s lifespan can lead to significant morbidity, particularly in the elderly and in adults, influencing the trends of hospitalization rates. Consequently, it is imperative to develop technologies that can sanitize environments from this pathogen while being compatible with human presence. Structure Resonant Energy Transfer (SRET) is the scientific principle underlying a sanitization technology that has demonstrated efficacy against several enveloped viruses, including SARS-CoV-2 and Influenza A viruses. SRET employs specific frequencies of electromagnetic waves to effectively disrupt the structural integrity of viral envelopes through dipole coupling. This disruption leads to the inactivation of the virus, rendering it non-infectious. The objective of this study is to analyse the effect of a specific SRET sanitization method on RSV. The sanitization test was conducted in aerosol form within a BSL-3 laboratory, exploring the frequency band from 8 to 16 GHz. An optimal sub-band was identified, giving an inactivation efficiency up to 99.5%. In conclusion, it has been demonstrated that the microwave non-thermal sanitization method is effective against RSV. These results confirm its potential as a viable approach for environmental decontamination. Full article
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16 pages, 1426 KB  
Article
Association Between Homologous and Heterologous COVID-19 Vaccine Regimens and Doses and Mortality in Hemodialysis Patients: A Nationwide Cohort Study from Thailand
by Pattharawin Pattharanitima, Suthiya Anumas, Manoch Rattanasompattikul, Sukit Raksasuk, Suchai Sritippayawan and Thatsaphan Srithongkul
COVID 2026, 6(3), 49; https://doi.org/10.3390/covid6030049 - 13 Mar 2026
Viewed by 983
Abstract
Background: During the COVID-19 pandemic, Thailand prioritized hemodialysis patients for vaccination. Due to limited supply, heterologous regimens were used. This study evaluates the mortality rate and risk factors in hemodialysis patients who received heterologous versus homologous vaccine regimens. Methods: We retrospectively reviewed data [...] Read more.
Background: During the COVID-19 pandemic, Thailand prioritized hemodialysis patients for vaccination. Due to limited supply, heterologous regimens were used. This study evaluates the mortality rate and risk factors in hemodialysis patients who received heterologous versus homologous vaccine regimens. Methods: We retrospectively reviewed data of hemodialysis patients in Thailand from January 2021 to December 2022, using data from the Department of Medical Sciences, Ministry of Public Health, and Thailand Renal Replacement Therapy Registry. Mortality was defined as death within 30 days of a positive RT-PCR or rapid antigen test for SARS-CoV-2. Multivariate logistic regression was used to identify mortality risk factors. Results: The associated risks of mortality in hemodialysis patients with COVID-19 were female sex, age ≥ 50 years, diabetes, and BMI ≥ 25.0 kg/m2. Regarding vaccination regimens, the inactivated–Viral vector–mRNA regimen was associated with lower mortality compared with the mRNA–mRNA regimen (OR 0.29, 95% CI 0.08–0.99). In contrast, no vaccination (OR 16.95, 95% CI 7.86–36.54) and single-dose vaccination with inactivated vaccine (OR 17.54, 95% CI 7.01–43.88) or Viral vector vaccine (OR 20.74, 95% CI 9.38–45.86) were associated with markedly higher mortality risk. Conclusion: The inactivated–Viral vector–mRNA vaccine regimen was associated with a decreased mortality risk among this population. Full article
(This article belongs to the Special Issue COVID and Public Health)
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17 pages, 3842 KB  
Article
Fluoxetine Reshapes Macrophage Membrane Sphingolipids and Inflammatory Response Without Affecting Extracellular Vesicle Biogenesis upon Inactivated SARS-CoV-2 Stimulation
by Jonatan C. S. de Carvalho, Pedro Nobre-Azevedo, Pedro V. da Silva-Neto, Bianca T. M. Oliveira, Lucas A. Tavares, Diana M. Toro, Andrews O. Borges, Murillo A. Nascimento, Eurico Arruda, Ronaldo B. Martins, Fausto Almeida and Carlos A. Sorgi
Membranes 2026, 16(3), 98; https://doi.org/10.3390/membranes16030098 - 4 Mar 2026
Cited by 1 | Viewed by 1933
Abstract
Sphingolipids (SL) are essential structural and bioactive components of cell membranes, remarkably involved in inflammatory signaling and membrane dynamics. Dysregulation of SL metabolism contributes to pathological inflammation and cellular stress. Selective serotonin reuptake inhibitors (SSRIs), such as fluoxetine (FXT), are known inhibitors of [...] Read more.
Sphingolipids (SL) are essential structural and bioactive components of cell membranes, remarkably involved in inflammatory signaling and membrane dynamics. Dysregulation of SL metabolism contributes to pathological inflammation and cellular stress. Selective serotonin reuptake inhibitors (SSRIs), such as fluoxetine (FXT), are known inhibitors of acid sphingomyelinase (aSMase), although their impact on macrophage SL remodeling and inflammatory responses remains unclear. Here, we investigated the modulation of FXT on SL species composition and inflammatory activation in THP-1-derived macrophages stimulated with inactivated SARS-CoV-2 particles, which is a model of viral-induced inflammation. Sphingolipidomic profiling revealed that FXT pre-treatment markedly reduced ceramide (Cer) species while increasing sphingomyelin (SM) and sphingosine-1-phosphate (S1P) levels, consistent with inhibition of the aSMase-Cer axis. These changes were accompanied by attenuation of proinflammatory components, including interleucin (IL)-6, IL-1β, and matrix metalloproteinase (MMP)-9, indicating that SL remodeling correlates with reduced macrophage activation. Despite pronounced alterations in membrane lipid composition, the quantification of extracellular vesicles (EVs) released by FXT-treated macrophages remained unchanged, however the EVs size distribution was smaller compared to non-treated cells. Altogether, our findings demonstrate that FXT reshapes SL metabolism and lipid membrane composition, thereby diminishing macrophage activation without affecting EVs biogenesis. This study emphasizes the immunometabolic role of SL on membrane reprogramming as a mechanism by which pharmacological aSMase inhibition modulates viral inflammation responses. Full article
(This article belongs to the Special Issue Composition and Biophysical Properties of Lipid Membranes)
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15 pages, 2447 KB  
Article
Pre-Exposure Intranasal Treatment with Neomycin Sulfate Reduces Transmission of Influenza B Virus
by Mariia V. Sergeeva, Daria Shamakova, Kira Kudrya, Nikita Zagriadskii, Daria M. Karachevtseva, Aleksandr A. Matichin, Arman Muzhikyan and Marina Stukova
Antibiotics 2026, 15(3), 245; https://doi.org/10.3390/antibiotics15030245 - 26 Feb 2026
Viewed by 1137
Abstract
Background/Objectives: Influenza B virus infection contributes substantially to annual morbidity and mortality, accounting for 20% to 30% of influenza-associated deaths worldwide. Although vaccination reduces the risk of severe disease, widely used inactivated influenza vaccines are often insufficient to prevent virus transmission. Moreover, [...] Read more.
Background/Objectives: Influenza B virus infection contributes substantially to annual morbidity and mortality, accounting for 20% to 30% of influenza-associated deaths worldwide. Although vaccination reduces the risk of severe disease, widely used inactivated influenza vaccines are often insufficient to prevent virus transmission. Moreover, influenza B viruses are less susceptible to commonly used antivirals than influenza A viruses. New approaches are therefore required to decrease disease burden and limit virus spread. Neomycin, an aminoglycoside antibiotic, was recently shown to mitigate SARS-CoV-2 transmission in a hamster model. Here, we conducted an exploratory study to assess the effect of neomycin on influenza B virus transmission. Methods: Contact transmission was evaluated using a guinea pig model (n = 4 per group), and aerosol transmission was assessed using a ferret model (n = 6 per group). Animals in the experimental groups received neomycin sulfate (5 mg/guinea pig, 20 mg/ferret) or placebo intranasally, starting one day before exposure to infected animals and continuing for four days thereafter. In the guinea pig study, an additional control group received intranasal interferon alpha. Viral transmission to contact animals was assessed by RT-PCR and virus culture of nasal washes collected over two weeks. Clinical signs and body weight were monitored daily. Results: In the guinea pig model, 75% of contact animals became infected with influenza B virus regardless of treatment. Neither neomycin nor interferon alpha prevented infection, although both delayed the onset of viral shedding in contact animals. In the ferret model, infection occurred in 33% of placebo-treated contact animals, whereas no viral shedding was detected in the neomycin-treated group. Conclusions: Prophylactic intranasal neomycin treatment has the potential to protect exposed individuals from aerosol transmission of influenza B virus during influenza outbreaks. Full article
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