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20 pages, 1754 KB  
Article
Enhancing Nutritional and Health Benefits of Wheat Bran Through Bifunctional LAB Screening and BCAA-Enriched Fermentation
by Byung Hoon Lee, Sun Ok Han, Jun Seok Hong, Seung Jo Jeong, Ji Youn Hong and Young Jun Kim
Foods 2026, 15(14), 2555; https://doi.org/10.3390/foods15142555 - 20 Jul 2026
Viewed by 185
Abstract
Lactic acid bacteria (LAB)-mediated fermentation has been widely explored as a strategy to enhance the nutritional functionality of cereal processing by-products. In this study, 50 LAB strains previously isolated from Korean traditional fermented foods and obtained from the National Agrobiodiversity Center (KACC, Jeonju-si, [...] Read more.
Lactic acid bacteria (LAB)-mediated fermentation has been widely explored as a strategy to enhance the nutritional functionality of cereal processing by-products. In this study, 50 LAB strains previously isolated from Korean traditional fermented foods and obtained from the National Agrobiodiversity Center (KACC, Jeonju-si, Republic of Korea) were systematically screened for bifunctional carbohydrate and protein degradation capacities, and their potential to improve the nutritional functionality of wheat bran was evaluated. Paper disc assays revealed substantial inter-strain variability, with clear zone diameters ranging from 12.35 to 29.52 mm for carbohydrate degradation and 11.61 to 25.45 mm for protein degradation. Ten strains exceeding both upper-quartile enzymatic degradation cutoff thresholds (≥25.25 mm for carbohydrate degradation and ≥17.98 mm for protein degradation, respectively) were putatively identified as Lactiplantibacillus plantarum and Lacticaseibacillus paracasei based on 16S rRNA gene sequencing (99.73–100% similarity). Substrate-specific fermentation using L. paracasei KS 595 across four substrates (brewed soy sauce soybean meal, pea, floury rice, and wheat bran) demonstrated substrate-dependent differences in growth and branched-chain amino acid (BCAA) accumulation, with the highest increase observed in pea fermentation. Strain-specific evaluation during wheat bran fermentation revealed distinct differences in growth kinetics, pH reduction, and BCAA production driven by cell-envelope proteinases and intracellular peptidases, with viable cell counts reaching 9–10 log CFU/mL after 48 h. Biogenic amine analysis indicated that histamine levels remained below commonly accepted safety limits in all strains, while L. paracasei KS 543 showed no detectable tyramine or histamine. Although the potential improvement in plant protein bioavailability was indirectly inferred through the free BCAA enrichment rather than directly measured in vivo, these results support a systematic screening approach for selecting LAB strains capable of producing BCAA-enriched fermented wheat bran, with potential implications for improving plant protein bioavailability and addressing nutritional needs in aging and active populations. Full article
(This article belongs to the Topic Fermented Food: Health and Benefit, 2nd Edition)
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21 pages, 4539 KB  
Article
Molecular Evolution of the Chikungunya Virus E1 Gene in Saudi Arabia: Predominance of Purifying Selection and ECSA/IOL Lineage Circulation
by Mohamed A. Farrag
Viruses 2026, 18(7), 791; https://doi.org/10.3390/v18070791 - 19 Jul 2026
Viewed by 234
Abstract
Background: Chikungunya virus (CHIKV) is a re-emerging alphavirus that has caused millions of cases worldwide, yet its molecular epidemiology in Saudi Arabia remains poorly understood. This study integrates bioinformatic analysis of the envelope gene (E1) gene sequences from Saudi isolates with [...] Read more.
Background: Chikungunya virus (CHIKV) is a re-emerging alphavirus that has caused millions of cases worldwide, yet its molecular epidemiology in Saudi Arabia remains poorly understood. This study integrates bioinformatic analysis of the envelope gene (E1) gene sequences from Saudi isolates with global genotypes to characterize circulating lineages, selection pressures and stability effects of endemic mutations. Methods: A total of 109 CHIKV E1 sequences (1155 bp) representing the East/Central/South African (ECSA), Asian, and West African genotypes were retrieved from GenBank and GISAID. Phylogenetic relationships were reconstructed using maximum likelihood (IQ-TREE). Codon-based selection analyses were performed with MEME, FEL, SLAC, and FUBAR. The structural effects of nine missense mutations were assessed using DynaMut and consensus predictors (DUET, mCSM). Results: All seven Saudi isolates clustered within the ECSA-Indian Ocean Lineage (IOL) subclade with strong bootstrap support (≥95%). Short branch lengths among Saudi strains indicated recent common ancestry and limited local divergence, suggesting possible repeated introductions or limited local circulation. No codon showed robust evidence of positive selection across multiple methods. However, episodic diversifying selection was detected at codon 99 (MEME, p = 0.01), while pervasive purifying selection acted on numerous sites (e.g., codons 135, 307, 344; strong signals across FEL, SLAC, and FUBAR). A single conserved N-linked glycosylation site was present at residue 141 (NITV motif) in all Saudi and most global strains. Three mutations unique to or prominent in Saudi isolates (N20H, L136F, A249T) were identified; consensus stability predictions (DUET) classified them as destabilizing. Conclusions: Saudi CHIKV strains belong exclusively to the ECSA-IOL lineage and exhibit strong purifying selection on the E1 gene, consistent with functional constraints on this essential fusion protein. The identified Saudi-associated mutations appear to be non-adaptive, tolerated changes. These findings underscore the value of continued genomic surveillance to monitor potential adaptive evolution, particularly in the context of mass gatherings and competent Aedes vectors. Full article
(This article belongs to the Special Issue Current Trends in Arbovirus Outbreaks and Research)
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28 pages, 8847 KB  
Article
Fusion Inhibition of Zika Virus Entry by a Teicoplanin Pseudoaglycone Derivative with Broad Antiviral Activity
by Zoltán Kopasz, Ilona Bereczki, Krisztina Leiner, Henrietta Papp, Eszter Boglárka Lőrincz, Levente Sipos-Szabó, Kornélia Bodó, Eszter Szabó, Mónika Madai, Brigitta Zana, Réka Erdei, Gyula Batta, Tamás Kovács-Öller, Zoltán Varga, Dávid Bajusz, Gábor Kemenesi, Anikó Borbás and Anett Kuczmog
Pharmaceutics 2026, 18(7), 879; https://doi.org/10.3390/pharmaceutics18070879 - 17 Jul 2026
Viewed by 297
Abstract
Background/Objectives: The lack of effective antiviral therapies for many viral infections highlights the need for the development of new antiviral agents. The broad antiviral effects of glycopeptide antibiotics (GPAs) and their derivatives have been previously described. In our studies, we investigated the [...] Read more.
Background/Objectives: The lack of effective antiviral therapies for many viral infections highlights the need for the development of new antiviral agents. The broad antiviral effects of glycopeptide antibiotics (GPAs) and their derivatives have been previously described. In our studies, we investigated the in vitro viral inhibitory activity of newly synthesized GPA derivatives against Zika virus (ZIKV), chikungunya virus (CHIKV), o’nyong-nyong virus (ONNV) and severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2). Methods: Antiviral activity (EC50) and cytotoxicity (CC50) of the active compounds were determined using cell-based assays. The mechanism of action of the lead compound was investigated using binding and entry assays, cell-free virion pre-incubation, a virion destabilization assay, a liposome-based capsid protection assay, and molecular docking analysis. Results: Seven of the compounds were able to inhibit ZIKV and two compounds inhibited all four tested viruses. Among them, a teicoplanin pseudoaglycone derivative, compound 7, showed the strongest antiviral activity, inhibiting all four viruses at low micromolar concentrations. Mechanistic studies demonstrated that compound 7 acts during an early stage of ZIKV infection and inhibits low-pH-triggered virus–liposome fusion. Molecular docking analysis suggested potential interactions between compound 7 and the viral envelope protein that could interfere with the conformational rearrangements required for membrane fusion. Conclusions: The present findings demonstrate that hydrophobic GPA derivatives, particularly compound 7, exhibit promising broad-spectrum antiviral activity in vitro. Whether similar mechanisms contribute to the antiviral activity against other viruses remains unknown. The studied GPA derivatives are promising candidates for further pre-clinical and clinical development as broad-spectrum antivirals. Full article
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22 pages, 4275 KB  
Article
Fluorescent Powassan Reporter Viruses Infect Neuron, Astrocyte and Microglial Cell Lines Independent of Attenuating D308N Envelope Protein Modification
by Autumn Y. Laird, Varvara Kirillov, Elena E. Gorbunova, Alexander Vostrov, Genevieve Rochlin, Catherine E. Finnerty, Aisling G. Byrne, Priscila Ikeda, Romario Matos, Marissa R. Lindner, Hwan Keun Kim and Erich R. Mackow
Viruses 2026, 18(7), 768; https://doi.org/10.3390/v18070768 - 13 Jul 2026
Viewed by 471
Abstract
The Powassan virus (POWV) is a neurovirulent tick-borne virus that causes age-associated lethality and long-term neurologic sequelae in 50% of survivors. In aged mice the POWV strain LI9 mirrors human lethality and neuropathology; however, an avirulent POWV mutant, LI9-D308N, fails to enter the [...] Read more.
The Powassan virus (POWV) is a neurovirulent tick-borne virus that causes age-associated lethality and long-term neurologic sequelae in 50% of survivors. In aged mice the POWV strain LI9 mirrors human lethality and neuropathology; however, an avirulent POWV mutant, LI9-D308N, fails to enter the CNS or cause lethal disease. The D308N mutation is present in an envelope protein domain associated with cell attachment, yet the role of D308N mutations in cell tropism and neuroinvasion remains to be resolved. Here, we engineered fluorescent mScarlet3 and mNeonGreen reporter genes into WT LI9, and avirulent LI9-D308N viruses and assessed their ability to infect CNS cells in vitro. In addition, we generated replication-defective reporter POWVs that only replicate in NS1-expressing cells by replacing NS1 with fluorescent genes. Similar to WT LI9, fluorescent reporter POWVs spread focally and nonlytically, are stable following passage and reach high titers 2–5 dpi. In NS1-expressing VeroE6 cells, LI9-ΔNS1-FL reporters exhibited robust fluorescence 24 h post-infection (hpi), while fluorescence from LI9-reporter infections was first observed ~32 hpi. Comparing LI9-mScarlet3 and avirulent LI9-D308N-mScarlet3 viruses revealed no difference in their ability to infect human brain microvascular endothelial cells, pericytes, astrocytes, microglia or neuronal cells in vitro. Notably, LI9-mScarlet3 viruses productively and persistently infected differentiated, neuron-like, SH-SY5Y cells without apparent cytotoxicity. These findings indicate that LI9-D308N is capable of infecting blood–brain-barrier and CNS cells, and suggest that neuroinvasion is restricted prior to LI9-D308N engaging CNS cells. These results are consistent with clearance of LI9-D308N from the blood, or the D308N mutation interfering with potential routes of POWV neuroinvasion. Collectively, fluorescent POWV reporter viruses provide insight into the mechanism of POWV neuroinvasion, permit analysis of replication-defective POWVs as vaccines and provide a means of analyzing POWV cell tropism, antivirals and cell-to-cell spread in BSL2 and BSL3 settings.: Full article
(This article belongs to the Special Issue Tick-Borne Viruses 2026)
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31 pages, 20610 KB  
Review
Control Targets in Plant-Pathogenic Bacteria: From Growth-Essential Processes to Anti-Virulence Strategies and Candidate Targets in Candidatus Liberibacter Asiaticus
by Jinyin Zeng, Chenyu Huang, Yuxun Yu, Xiaobing Song, Meirong Xu, Xiaoling Deng, Bo Wang and Zheng Zheng
Plants 2026, 15(14), 2150; https://doi.org/10.3390/plants15142150 - 12 Jul 2026
Viewed by 378
Abstract
Plant-pathogenic bacteria threaten crop productivity and quality, yet chemical options remain limited compared with those for fungal and oomycete diseases. Current management relies mainly on copper bactericides, limited antibiotics, induced-resistance agents, biocontrol and resistant cultivars. However, copper and streptomycin resistance, efflux-mediated multidrug tolerance [...] Read more.
Plant-pathogenic bacteria threaten crop productivity and quality, yet chemical options remain limited compared with those for fungal and oomycete diseases. Current management relies mainly on copper bactericides, limited antibiotics, induced-resistance agents, biocontrol and resistant cultivars. However, copper and streptomycin resistance, efflux-mediated multidrug tolerance and rapid pathogen adaptation have weakened these strategies. Target-oriented research provides a framework for exploring agricultural antibacterials, anti-virulence agents, anti-colonization strategies, resistance sensitizers and host-resistance interventions, but many of these approaches remain conceptual, model-system, greenhouse or medical-bacteriology-derived rather than proven field solutions. This review classifies bacterial control targets into two interconnected groups: growth-essential targets, including peptidoglycan biosynthesis, membrane/envelope systems, nucleic-acid processes, protein synthesis, metabolism, nutrient transport and cell division; and anti-virulence/anti-adaptation targets, including secretion systems, quorum sensing, biofilms, motility, adhesion, cell-wall-degrading enzymes, tolerance systems, oxidative-stress responses and host susceptibility factors. Using “Candidatus Liberibacter asiaticus” (CLas) as a case study, genome annotation and infection-stage transcript-abundance data prioritized Sec-dependent secretion, outer-membrane/surface proteins, Bam assembly, nutrient transporters, Clp proteostasis, redox adaptation and core cellular processes as candidate target classes. Envelope-associated, secretion/anti-virulence, nutrient-acquisition and stress-sensitization modules may represent potential directions for downstream validation, but CLas candidates remain hypothesis-generating priorities requiring validation for essentiality, conservation, druggability, delivery feasibility, crop safety and field performance. Full article
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20 pages, 3191 KB  
Article
Methylation Dynamics in Helicobacter pylori: Exploring Acidic Stress Effects on Epigenetic Acclimation
by Sarah K. Patterson, Joanna Y. He, Yixin Xu, Ella M. Greene, Yaroslav Poznyak, Mary Virginia Nye and Mark H. Forsyth
Microorganisms 2026, 14(7), 1501; https://doi.org/10.3390/microorganisms14071501 - 9 Jul 2026
Viewed by 347
Abstract
Helicobacter pylori possesses an unusually high number of restriction–modification (R-M) systems relative to its small genome, contributing to a methylome increasingly implicated in bacterial gene regulation. In this study, we analyzed the methylomes of two mutant strains of H. pylori 26695: ∆rdxA [...] Read more.
Helicobacter pylori possesses an unusually high number of restriction–modification (R-M) systems relative to its small genome, contributing to a methylome increasingly implicated in bacterial gene regulation. In this study, we analyzed the methylomes of two mutant strains of H. pylori 26695: ∆rdxA (control) and ∆rdxA/∆arsS. Each mutant was cultivated under neutral (pH 7) and acidic (pH 5) growth conditions. We identified one conspicuous hypomethylated region of 21 kBp possessing 21 annotated genes across each methylome. Notably, over 600 protein coding regions and 10 different promoters displayed differential methylation between pH conditions, including several virulence factors. The vacA gene, encoding the Vacuolating Cytotoxin A, exhibited eight differentially methylated positions between pH 7 and pH 5 within the H. pylori 26695 control mutant methylome, potentially contributing to its previously documented 32-fold down regulation of mRNA in acidic environments. pH-dependent methylation changes were widespread within the cag pathogenicity island, genes encoding cell envelope proteins including adhesin-encoding sabA, babA, and hopQ, and numerous flagellar-associated genes. These results reveal the plasticity of the H. pylori methylome and suggest that DNA methylation is responsive to environmental pH in both ArsRS-dependent and independent manners. Methylome dynamics may serve as an important layer of gene regulation in acclimation to hostile gastric environments and promote persistent infection. Full article
(This article belongs to the Special Issue Advances in Bacterial Genetics and Evolution)
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14 pages, 3049 KB  
Article
Identification and Nematicidal Characterization of an Extracellular Chitinase BLChi79 from Brevibacillus laterosporus Strain XJ-24-3
by Shuang Chen, Yikuan Qian, Lixiang Wei, Ming Wu, Yu Yang, Xuepeng Cai, Jie Li, Qingling Meng and Jun Qiao
Vet. Sci. 2026, 13(7), 656; https://doi.org/10.3390/vetsci13070656 - 7 Jul 2026
Viewed by 272
Abstract
This study aimed to identify and characterize a high-efficiency chitinase gene from Brevibacillus laterosporus (B. laterosporus), characterize its enzymatic traits, and assess its degrading activity against Caenorhabditis elegans (C. elegans) and Parascaris equorum (P. equorum) eggs. A [...] Read more.
This study aimed to identify and characterize a high-efficiency chitinase gene from Brevibacillus laterosporus (B. laterosporus), characterize its enzymatic traits, and assess its degrading activity against Caenorhabditis elegans (C. elegans) and Parascaris equorum (P. equorum) eggs. A nematicidal B. laterosporus isolate was subjected to whole-genome sequencing for chitinase gene screening, cloning, and molecular identification. The target gene was heterologously expressed in Escherichia coli BL21 (DE3), and biochemical properties including temperature, pH, metal ions, and substrate conditions were investigated, its kinetic parameters were determined, and its biological effects on C. elegans and P. equorum eggs were analyzed. The protein BLChi79 (79.3 kDa) belongs to GH18 chitinases with a typical carbohydrate-binding module. Its optimum activity occurred at 60 °C and pH 6.0, with colloidal chitin as the optimal substrate. Mg2+, Fe2+, and Mn2+ boosted its activity, while K+, Cu2+, Zn2+, and Ca2+ suppressed catalysis. Its Km was 6.14 mg·mL−1, Vmax 7.78 μmol·min−1·mg−1, and kcat 10.16 min−1. The purified recombinant enzyme could degradethe C. elegans chitin layer and the P. equorum egg vitelline envelope. In summary, the BLChi79 derived from B. laterosporus targets chitin-enriched eggshells, acting as a green biocatalyst for controlling livestock gastrointestinal nematodes. Full article
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36 pages, 10206 KB  
Review
Machine Learning and Deep Learning Frameworks for Human–Virus Protein–Protein Interaction Prediction: Emerging Architectures, Methods, Benchmarks, and Challenges
by Subhadeep Basu, Dipanwita Adhikary, Kuntal Ghosh, Swarup Chattopadhyay, Shramana Deb, Ritwick Mondal, Jayanta Roy, Anjan Chowdhury and Julián Benito-León
Int. J. Mol. Sci. 2026, 27(13), 6034; https://doi.org/10.3390/ijms27136034 - 5 Jul 2026
Viewed by 550
Abstract
The outbreak of coronavirus disease 2019 (COVID-19), caused by severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), has emerged as one of the most significant global health crises in recent history. Coronaviruses are a diverse group of RNA viruses classified into alpha, beta, gamma, [...] Read more.
The outbreak of coronavirus disease 2019 (COVID-19), caused by severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), has emerged as one of the most significant global health crises in recent history. Coronaviruses are a diverse group of RNA viruses classified into alpha, beta, gamma, and delta genera, with SARS-CoV-2 belonging to the beta-coronavirus family. The virus exhibits high transmissibility and causes a wide spectrum of clinical manifestations ranging from mild respiratory symptoms to severe complications such as acute respiratory distress syndrome, multi-organ failure, and death, particularly among elderly and immunocompromised individuals. Structurally, SARS-CoV-2 possesses a large single-stranded RNA genome encoding major structural proteins, including spike (S), envelope (E), membrane (M), and nucleocapsid (N) proteins, which play critical roles in host-cell recognition and viral infection. Understanding the molecular mechanisms of virus–host interactions, especially protein–protein interactions (PPIs), is essential for uncovering viral pathogenesis and identifying potential therapeutic targets. Traditional experimental techniques for PPI detection, such as yeast two-hybrid and affinity purification methods, are often expensive, labor-intensive, and prone to inaccuracies. Consequently, computational approaches based on machine learning (ML) and deep learning (DL) have gained significant attention for efficient and scalable PPI prediction. These methods use diverse biological information, including protein sequences, structural features, genomic data, Gene Ontology annotations, and interaction networks, to model complex biological relationships. This survey reviews computational approaches to PPI prediction, highlighting ML- and DL-based techniques, methodological advances, performance evaluation practices, and limitations that affect benchmark comparability. It also discusses biological databases and data sources commonly used in PPI studies and explicitly considers how models trained in coronavirus-centered settings may generalize to other viral families with different mechanisms of host interaction. Full article
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31 pages, 4716 KB  
Review
Retrovirus-Induced Immunosuppression: Role of the Transmembrane Envelope Protein
by Joachim Denner
Viruses 2026, 18(7), 740; https://doi.org/10.3390/v18070740 - 3 Jul 2026
Viewed by 616
Abstract
Retroviruses induce immunosuppression in their infected hosts. This phenomenon is well described for the immunodeficiency viruses, with human immunodeficiency virus type 1 (HIV-1) representing the best-studied example, but it also occurs in other retroviral infections. Immunosuppressive properties were first characterized in murine leukemia [...] Read more.
Retroviruses induce immunosuppression in their infected hosts. This phenomenon is well described for the immunodeficiency viruses, with human immunodeficiency virus type 1 (HIV-1) representing the best-studied example, but it also occurs in other retroviral infections. Immunosuppressive properties were first characterized in murine leukemia viruses (MuLV). Additional well-studied examples include feline leukemia virus (FeLV) and koala retrovirus (KoRV). Investigations into the mechanisms underlying retrovirus-induced immunosuppression revealed that not only inactivated viral particles but also their purified transmembrane (TM) envelope proteins exhibit immunosuppressive activity. However, in certain retroviral infections, additional viral proteins contribute to the immunosuppression in vivo. Within the TM envelope proteins, a highly conserved region—designated the immunosuppressive (isu) domain—was identified. Synthetic peptides corresponding to this domain suppress a wide range of in vitro immune responses, possibly by regulating Ras-Raf-MEK-MAPK and PI3K-AKT-mTOR pathways. They modulate cytokine release and alter gene expression in immune cells, mirroring the activity of the corresponding TM envelope protein. Mutations in the sequence abrogate the effect. Numerous TM envelope proteins have demonstrated immunosuppressive activity in vivo in a tumor rejection model, and mutations within the isu domain also abrogate this function. These studies have important implications for reproduction, particularly through the immunosuppressive syncytins in the placenta, for tumor development, where similar mechanisms may protect cancer cells from the host immune system, and for vaccine development and xenotransplantation. Notably, immunization with TM envelope proteins carrying mutations in the isu domain elicits stronger immune responses compared with the wild-type proteins. Finally, the potential of retroviral TM envelope proteins to protect xenotransplants from immune rejection will be discussed. Full article
(This article belongs to the Special Issue Viruses 2026—New Horizons in Virology)
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20 pages, 8026 KB  
Article
DIA-Based Quantitative Proteomics Reveals Adaptive Responses and Potential Mechanisms of Se(IV) Resistance in Rhodococcus qingshengii PM1
by Zhikang Guo, Zecheng Li, Fang Chen, Mu Peng and Haibo Wang
Microorganisms 2026, 14(7), 1455; https://doi.org/10.3390/microorganisms14071455 - 1 Jul 2026
Viewed by 250
Abstract
Microbial reduction of soluble selenium oxyanions is a sustainable strategy for remediating selenium-contaminated environments, yet the molecular mechanisms underlying selenite tolerance in the genus Rhodococcus remain poorly understood. In this study, we investigated the proteomic adaptation of the highly tolerant strain Rhodococcus qingshengii [...] Read more.
Microbial reduction of soluble selenium oxyanions is a sustainable strategy for remediating selenium-contaminated environments, yet the molecular mechanisms underlying selenite tolerance in the genus Rhodococcus remain poorly understood. In this study, we investigated the proteomic adaptation of the highly tolerant strain Rhodococcus qingshengii PM1 under high-concentration selenite stress (50 mM Na2SeO3) using a data-independent acquisition (DIA)-based quantitative proteomics approach. A total of 3335 proteins were identified, and 3310 proteins were retained for downstream analysis. Comparative proteomics revealed 1411 differentially expressed proteins, including 972 upregulated and 439 downregulated proteins in the selenite-treated group. These changes indicate extensive systems-level proteomic reprogramming and support a growth–defense trade-off strategy. Strain PM1 strongly upregulated ferredoxin and multiple respiratory-chain- and oxidoreductase-associated proteins, suggesting a ferredoxin-associated electron-transfer network that may contribute to Se(IV) transformation and intracellular redox adjustment. In parallel, proteins involved in sulfur assimilation, cysteine/methionine and selenocompound metabolism, ergothioneine biosynthesis, GSH-associated metabolism, Trx/MSH thiol-redox systems, peroxidase/Ohr-Prx detoxification, metalloid/oxyanion resistance, urease-associated pH adaptation, DNA repair, and cell-envelope remodeling were induced, indicating activation of multilayered defense and homeostasis mechanisms. Conversely, proteins associated with central carbon metabolism, carbohydrate uptake, and ribosome-dependent translation were repressed, suggesting reduced growth investment and energy conservation under severe selenite pressure. Overall, this study provides a systems-level proteomic framework for understanding Se(IV) resistance in R. qingshengii PM1 and identifies candidate targets for future functional validation, strain engineering, and selenium/metal(loid) bioremediation. Full article
(This article belongs to the Collection Biodegradation and Environmental Microbiomes)
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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 358
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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17 pages, 4326 KB  
Article
P22 Small Noncoding RNAs Are Actively Secreted in Salmonella Outer Membrane Vesicles During Bacteriophage Infection
by Sayema Naaz, Haley A. Kominek, Lydia A. Hayes-Guastella, Autumn M. McDaniel, Enas S. Alsatari, Adeyeye I. Haastrup, Olivia G. Clark, Devin M. Katerski, Francois O. Prinsloo, Olivia R. Roberts, Meredith A. Shaddix, Bridgette N. Sullivan, Isabella M. Swan, Emily M. Hartsell, Jeffrey D. DeMeis, Suhas S. Patil, Richard H. Pham, Makala R. Cox and Glen M. Borchert
Non-Coding RNA 2026, 12(4), 21; https://doi.org/10.3390/ncrna12040021 - 26 Jun 2026
Viewed by 463
Abstract
Background/Objectives: Outer membrane vesicles (OMVs) are membrane-encapsulated spherical structures ~120 nm in diameter derived from Gram-negative bacterial cell envelopes. OMVs are primarily generated by outer membrane blebbing but contain proteins, DNA, and RNAs at concentrations distinct from that of the intracellular complement. [...] Read more.
Background/Objectives: Outer membrane vesicles (OMVs) are membrane-encapsulated spherical structures ~120 nm in diameter derived from Gram-negative bacterial cell envelopes. OMVs are primarily generated by outer membrane blebbing but contain proteins, DNA, and RNAs at concentrations distinct from that of the intracellular complement. OMVs have been associated with a number of different cellular functions including intercellular communication and resistance to phage. Methods: As bacterial small RNAs (sRNAs) also participate in bacteriophage defense and are specifically delivered to and enriched in OMVs, we recently elected to examine the effects of P22 infection on Salmonella cytosolic and OMV sRNA abundance by employing RNA sequencing. Results: We find that P22 infection triggers a global reduction in sRNAs (with Salmonella sRNA expression levels averaging only 15.6% those observed in noninfected cells) coupled with a reciprocal 72.7% global increase in Salmonella tRNA expression levels. Additionally, of note, while OMV small noncoding RNA (sncRNA) abundance is normally ~1/10 that found in the cytosol, we find that P22 infection triggers active OMV encapsulation and secretion of: (1) a subset of sRNAs, (2) all Salmonella tRNAs including one highly complementary to the P22 genome, and, much to our surprise, (3) ten distinct sRNAs expressed from P22. Conclusions: In summary, the work presented here identifies several Salmonella sncRNA cytosolic and/or OMV abundances significantly altered during P22 infection, and to our knowledge, this constitutes the first reported characterization of bacteriophage-encoded sRNAs being actively secreted within host OMVs. Full article
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17 pages, 12521 KB  
Article
In Silico Perturbome Analysis Reveals Conserved Genes and Drug–Target Interactions in Pseudomonas aeruginosa, Escherichia coli, and Staphylococcus aureus in the Response to Stress
by Jose Arturo Molina-Mora and Ravi Kant
Pathogens 2026, 15(7), 665; https://doi.org/10.3390/pathogens15070665 - 25 Jun 2026
Viewed by 318
Abstract
Background: Bacterial adaptation to environmental and chemical stress involves coordinated, system-level responses collectively described as perturbome. Understanding conserved elements within core perturbomes may reveal strategic vulnerabilities for antimicrobial development. Methods: In this study, we implemented an integrative framework combining functional and comparative genomics, [...] Read more.
Background: Bacterial adaptation to environmental and chemical stress involves coordinated, system-level responses collectively described as perturbome. Understanding conserved elements within core perturbomes may reveal strategic vulnerabilities for antimicrobial development. Methods: In this study, we implemented an integrative framework combining functional and comparative genomics, drug–target interactions and molecular docking to prioritize conserved stress-response targets in Escherichia coli, Pseudomonas aeruginosa, and Staphylococcus aureus. Results: A total of 147 genes from previously defined core perturbomes were analyzed through interactome reconstruction and functional enrichment. Interactome and functional analyses revealed significant connectivity and functional clustering, primarily associated with molecule biosynthesis, translation, transcriptional regulation, and energy metabolism. Orthology-based comparative genomics identified six conserved orthogroups shared across at least two species, representing key stress-adaptive nodes including fatty acid synthesis initiation, metabolic stress buffering, transcription termination (Rho), ATP synthesis, peptidoglycan remodeling, and UDP-glucose-mediated envelope biosynthesis. Drug–target interaction analyses suggested that these conserved proteins are modulated by enzymatic inhibitors, metabolite analogs, or active-site competitors. Structural and docking analyses focused on a selected protein, FabF (β-ketoacyl-ACP synthase II) and confirmed catalytically coherent binding of cerulenin within the active site, with high concordance between experimentally resolved and AlphaFold-predicted structures, supporting the reliability of structure-based prioritization. Conclusions: Overall, the results demonstrate that bacterial stress responses converge on evolutionarily conserved metabolic and regulatory elements essential for homeostasis and tolerance to perturbations, being the first work integrating core perturbome data from different microorganisms. The proposed perturbome-informed framework provides a rational strategy to identify robust, broad-spectrum antimicrobial targets and highlights opportunities for drug repurposing and future experimental validation. Full article
(This article belongs to the Section Bacterial Pathogens)
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14 pages, 4300 KB  
Article
DeepFlare: Weakly Supervised Cross-Modality Translation and Segmentation for Immunohistochemistry and Immunofluorescence Imaging
by Md. Tamim, Aditto Rahman, Redwan Hossain, Tausib Abrar and Riasat Khan
BioMedInformatics 2026, 6(3), 37; https://doi.org/10.3390/biomedinformatics6030037 - 22 Jun 2026
Viewed by 724
Abstract
Immunohistochemistry (IHC) is a widely used method for detecting specific proteins in tissue samples, helping diagnose diseases such as cancer. Traditional analysis methods rely heavily on human interpretation, which can lead to inconsistencies. In this study, we propose DeepFlare, a weakly supervised deep [...] Read more.
Immunohistochemistry (IHC) is a widely used method for detecting specific proteins in tissue samples, helping diagnose diseases such as cancer. Traditional analysis methods rely heavily on human interpretation, which can lead to inconsistencies. In this study, we propose DeepFlare, a weakly supervised deep learning framework for cross-modality translation and segmentation of immunofluorescence and immunohistochemistry images. The proposed method utilizes multiplex immunofluorescence (mpIF) and co-registered IHC images, combined with preprocessing techniques such as affine transformation, stain normalization, noise reduction, and artifact removal. Multiple imaging channels, including hematoxylin, DAPI, Lap2, and nuclear envelope signals, are leveraged to generate segmentation masks using a U-Net++ architecture. The final segmentation mask is obtained through weighted fusion of modality-specific outputs. A generative adversarial network (GAN) is employed to measure translation fidelity between generated and real images. Weakly supervised learning techniques, including image-level supervision and consistency constraints, are applied to enhance performance under limited annotation scenarios. Pretrained pathology foundation encoders such as UNI and Virchow are integrated to extract multi-scale morphological and contextual features. Explainable AI techniques are incorporated to highlight critical regions and refine model attention. Experimental results demonstrate strong performance, achieving an SSIM of 0.7077 for image translation and a Dice score of 0.7424 for segmentation. The integration of the UNI encoder provides marginal improvement over the baseline (0.72 Dice score), indicating limited domain adaptation without fine-tuning on the dataset of 1264 training samples. Full article
(This article belongs to the Section Imaging Informatics)
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19 pages, 27476 KB  
Article
Combustion and Heated Tobacco Cigarettes, but Not E-Cigarettes, Impair Aquaporin-Dependent H2O2 Permeability in ATII-Like Cells
by Giorgia Senise, Francesca Bodega, Cristina Porta and Umberto Laforenza
Cells 2026, 15(12), 1112; https://doi.org/10.3390/cells15121112 - 19 Jun 2026
Viewed by 420
Abstract
Cigarette smoke is a major inducer of oxidative stress, promoting reactive oxygen species (ROS) accumulation and contributing to the pathogenesis of chronic obstructive pulmonary disease (COPD) and lung cancer. Heated tobacco products (HTP) and e-cigarettes are promoted as reduced-risk alternatives; however, their impact [...] Read more.
Cigarette smoke is a major inducer of oxidative stress, promoting reactive oxygen species (ROS) accumulation and contributing to the pathogenesis of chronic obstructive pulmonary disease (COPD) and lung cancer. Heated tobacco products (HTP) and e-cigarettes are promoted as reduced-risk alternatives; however, their impact on cellular redox regulation remains unclear. Here, we investigated the effects of conventional cigarette smoke extract (CSE), HTP, and e-cigarette extracts on hydrogen peroxide (H2O2) permeability mediated by aquaporins (peroxiporins) and on the activity of key antioxidant enzymes (catalase, superoxide dismutase, and glutathione peroxidase) in ATII-like cells. Eight aquaporins were detected at the mRNA level, and seven were confirmed at the protein level. CSE markedly inhibited H2O2 permeability across plasma, mitochondrial, and nuclear membranes. HTP extract impaired H2O2 transport across the plasma membrane and nuclear envelope, while mitochondrial permeability was preserved. Both CSE and HTP extract reduced superoxide dismutase and glutathione peroxidase activities. In contrast, e-cigarette extract exerted minimal effects on membrane H2O2 permeability and selectively decreased superoxide dismutase activity. Overall, our findings identify a graded pattern of oxidative toxicity (CSE > HTP > e-cigarette) and highlight peroxiporins as critical regulators of intracellular redox homeostasis. Although less harmful than cigarettes, alternative nicotine delivery systems are not biologically inert. Full article
(This article belongs to the Special Issue Aquaporins at the Crossroads of Human Health and Disease)
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