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Int. J. Mol. Sci., Volume 27, Issue 16 (August-2 2026) – 441 articles

Cover Story (view full-size image): Alzheimer’s disease involves interactions between vascular dysfunction, impaired clearance, amyloid and tau pathology. We propose cerebral intramural cells—arterial smooth muscle cells, specialized pericytes and venular mural cells—as a cellular link between vascular aging and neurodegeneration. These cells regulate vasomotion, cerebral blood flow, blood–brain barrier integrity and intramural periarterial drainage (IPAD), which supports Aβ clearance. With aging and Alzheimer’s disease, cerebral intramural cell dysfunction can impair perfusion, disrupt the BBB and reduce IPAD, promoting vascular Aβ accumulation and cerebral amyloid angiopathy. This framework identifies the vessel wall as a potential therapeutic target linking vascular dysfunction, impaired clearance and neurodegeneration. View this paper
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17 pages, 11913 KB  
Article
Multispecies Transcriptomics of Mammalian Skin Reveals Conserved and Divergent Regulatory Features
by Wen-Tian Wei, Chen Zhou, Qi-Xuan Huang, Zhong-Hua Ning, Yi-Lin Bai, Yue-Yu Bai and Song-Song Xu
Int. J. Mol. Sci. 2026, 27(16), 7508; https://doi.org/10.3390/ijms27167508 - 21 Aug 2026
Viewed by 282
Abstract
Skin is a highly specialized barrier organ, which serves essential barrier, immune, and sensory functions and exhibits conserved structure. In addition, each species exhibits a unique skin transcriptional profile for adapting distinct environmental conditions and physiological demands. However, these transcriptional profiles across mammals [...] Read more.
Skin is a highly specialized barrier organ, which serves essential barrier, immune, and sensory functions and exhibits conserved structure. In addition, each species exhibits a unique skin transcriptional profile for adapting distinct environmental conditions and physiological demands. However, these transcriptional profiles across mammals remain incompletely understood. In this study, we integrated 61 publicly available skin RNA-seq datasets from eight mammalian species: human (Homo sapiens), macaque (Macaca fascicularis), mouse (Mus musculus), sheep (Ovis aries), goat (Capra hircus), donkey (Equus asinus), rabbit (Oryctolagus cuniculus), and pig (Sus scrofa). We identified a large number (2286 to 4588) of differentially expressed genes (DEGs) based on 10,504 one-to-one orthologous genes in all pairwise species comparisons. A total of 44 conserved genes were identified by integrating tissue specificity, expression variability, and mean expression level, which were enriched in epidermal development, keratinocyte differentiation, and desmosome organization. We also identified species-specific genes and transcription factors, such as STMN1 (donkey), COL1A1 (goat), and ACTN2 (mouse), which are associated with the cell cycle, extracellular matrix, and muscle contraction pathways, respectively. WGCNA further revealed goat-associated module 2 (M2) enriched in the negative regulation of angiogenesis. Collectively, this study provides a comprehensive cross-species transcriptional profile resource for mammalian skin, providing a valuable resource for understanding the regulatory plasticity underlying skin evolution across mammals. Full article
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44 pages, 3948 KB  
Review
Glutathione Biology in Neurodegenerative and Metabolic Diseases: Molecular Mechanisms, Pathophysiological Roles, and Therapeutic Perspectives
by Grażyna Gromadzka, Magdalena Kąkol, Magdalena Klimkiewicz and Maria Bendykowska
Int. J. Mol. Sci. 2026, 27(16), 7507; https://doi.org/10.3390/ijms27167507 - 21 Aug 2026
Viewed by 468
Abstract
Glutathione is an abundant intracellular low-molecular-weight thiol that contributes importantly to cellular redox homeostasis. Besides its well-established role in the antioxidant defense of the cell, glutathione regulates mitochondrial function, metabolism of toxicants, protein thiol oxidation/reduction, redox signaling, and immunity. Disturbances in glutathione metabolism [...] Read more.
Glutathione is an abundant intracellular low-molecular-weight thiol that contributes importantly to cellular redox homeostasis. Besides its well-established role in the antioxidant defense of the cell, glutathione regulates mitochondrial function, metabolism of toxicants, protein thiol oxidation/reduction, redox signaling, and immunity. Disturbances in glutathione metabolism have been shown to play a role in various diseases; however, it has become clear that changes in glutathione metabolism are a part of a complex, multifactorial process. In this review, we summarize current knowledge of the molecular mechanisms governing glutathione synthesis, recycling, compartmentalization, and biological functions, with particular emphasis on redox signaling, the nuclear factor erythroid 2-related factor 2/Kelch-like ECH-associated protein 1 (Nrf2/Keap1) pathway, and reversible protein S-glutathionylation. We further examine how disturbances in glutathione homeostasis interact with mitochondrial dysfunction, chronic inflammation, metabolic stress, and impaired cellular signaling in Parkinson’s disease, Alzheimer’s disease, Huntington’s disease, multiple sclerosis, Wilson’s disease, type 2 diabetes, and nonalcoholic fatty liver disease. We also evaluate current translational interventions targeting restoration of glutathione balance through glutathione supplementation, precursor supplementation, pharmacological modulation of endogenous antioxidant mechanisms, dietary interventions, and changes in lifestyle. Despite the fact that many interventions have been promising at the mechanistic and experimental level, there are still insufficient clinical data because of the problems associated with glutathione availability, tissue specificity, disease variability, and a lack of sufficiently powered clinical trials. The conclusion of this review is that glutathione should not be viewed as a universal therapeutic target; instead, glutathione should be perceived as an important factor contributing to cellular resilience and able to help other disease-specific interventions. Future progress in glutathione-based interventions will likely depend on integrating redox biomarkers, patient stratification, and precision medicine strategies to identify individuals most likely to benefit from targeted modulation of glutathione homeostasis. Full article
(This article belongs to the Collection New Advances in Molecular Toxicology)
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19 pages, 2628 KB  
Article
Association of ABHD12 Variants with the Spectrum of PHARC Syndrome Phenotypes
by Sara Romero-Vázquez, Cécile Méjécase, Ana Catalina Rodriguez-Martinez, Nicola Cronbach and Mariya Moosajee
Int. J. Mol. Sci. 2026, 27(16), 7506; https://doi.org/10.3390/ijms27167506 - 21 Aug 2026
Viewed by 344
Abstract
PHARC (polyneuropathy, hearing loss, ataxia, retinitis pigmentosa and cataracts) syndrome is a rare neurodegenerative inherited disorder characterized by a spectrum of these clinical phenotypes. Due to the considerable heterogeneity in the age of onset of the different clinical features and the similarities with [...] Read more.
PHARC (polyneuropathy, hearing loss, ataxia, retinitis pigmentosa and cataracts) syndrome is a rare neurodegenerative inherited disorder characterized by a spectrum of these clinical phenotypes. Due to the considerable heterogeneity in the age of onset of the different clinical features and the similarities with other conditions, it is often misdiagnosed. Variants in the ABHD12 gene have been identified as a genetic cause of PHARC syndrome and are predicted to result in loss-of-function or severely reduced protein synthesis. ABHD12 (α/β-hydrolase domain-containing protein 12) is responsible for the breakdown of very-long-chain lysophosphatidylserines (VLC-lyso-PS). When ABHD12 is dysfunctional, VLC-lyso-PS accumulates in the brain, producing inflammation. In this study, the clinical phenotypes of five patients with molecularly confirmed ABHD12 pathogenic variants from Moorfields Eye Hospital together with those of 64 patients reported in the literature were analyzed to investigate genotype–phenotype correlations. We report a novel variant c.985del p.(His329Thrfs*57) associated with PHARC syndrome. Moreover, patients with two null variants in ABHD12 manifest more of the clinical features of PHARC syndrome than those with at least one missense variant. Our study shows the importance of a complete clinical and genetic diagnosis to enable accurate diagnosis and genetic counselling for affected individuals. Full article
(This article belongs to the Special Issue Advances in Molecular Therapeutics for Retinal Disease)
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34 pages, 24035 KB  
Article
Single-Exposure Prophylactic Transcranial Nano-Pulsed Laser Therapy Promotes Functional Resilience Following Mild Blast-Induced Neurotrauma
by Nikita Gupta, Katherine N. Sheffield, Mohammadhossein Khanmirzaei, Auston C. Grant, Jutatip Guptarak, Ian J. Bolding, Kathia M. Johnson, Rinat O. Esenaliev, Donald S. Prough and Maria-Adelaide Micci
Int. J. Mol. Sci. 2026, 27(16), 7505; https://doi.org/10.3390/ijms27167505 - 21 Aug 2026
Viewed by 263
Abstract
Blast-induced traumatic brain injury is a prevalent and underreported condition, particularly among military service members, for whom effective prophylactic interventions are lacking. Nano-pulsed laser therapy (NPLT) is a non-invasive neuromodulatory approach that delivers short pulses of near-infrared light to generate optoacoustic effects within [...] Read more.
Blast-induced traumatic brain injury is a prevalent and underreported condition, particularly among military service members, for whom effective prophylactic interventions are lacking. Nano-pulsed laser therapy (NPLT) is a non-invasive neuromodulatory approach that delivers short pulses of near-infrared light to generate optoacoustic effects within cerebral tissue and has previously demonstrated therapeutic benefit following TBI. In this study, we evaluated whether a single pre-exposure application of NPLT could confer protection against neurological, cognitive, and cellular sequelae of mild blast injury. Adult male Sprague-Dawley rats were randomized to receive NPLT or Sham treatment 24 h prior to either Sham or mild blast exposure using the Advanced Blast Simulator. Neurological reflexes and vestibulomotor function were assessed on post-injury days (PIDs) 1–5, while cognitive performance was evaluated using the Morris Water Maze on PIDs 13–17. Histological analyses of microglia, astrocytes, and myelination were performed on PID 17. A single mild blast did not significantly alter gross neurological function but was associated with deficits in fine motor coordination and cognitive performance. Pre-exposure NPLT modestly attenuated blast-associated fine motor dysfunction, with a significant improvement compared with TBI on PID 4. In the Morris Water Maze, TBI animals exhibited significantly increased latency compared with Sham on PIDs 13 and 17, whereas NPLT + TBI animals did not significantly differ from Sham across the testing period, consistent with preservation of cognitive performance. Histological responses were regionally heterogeneous: NPLT alone produced distinct glial alterations, while NPLT + TBI animals exhibited a mixture of treatment- and injury-associated responses rather than uniform normalization to uninjured controls. NPLT did not prevent localized blast-associated reductions in corpus callosum myelin staining. In naive animals, NPLT significantly increased hippocampal brain-derived neurotrophic factor (BDNF) mRNA expression 24 h after treatment. A single pre-injury application of NPLT was associated with functional resilience following mild blast exposure despite persistent and regionally heterogeneous histopathological alterations. Increased hippocampal BDNF 24 h after NPLT, together with region-specific glial changes following NPLT in the absence of injury, demonstrates that a single treatment produces sustained molecular and cellular effects before blast exposure. These findings are consistent with the hypothesis that prophylactic NPLT establishes an altered pre-injury biological state that may modify the subsequent response to blast and support further investigation of NPLT as a prophylactic strategy and of the mechanisms underlying NPLT-associated preconditioning. Full article
(This article belongs to the Special Issue Progress in Photobiomodulation Therapy)
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25 pages, 2475 KB  
Article
PET Micro(nano)plastics Modulate Metformin–Albumin Binding and Species-Specific Bacterial Responses
by Hasan Saygin, Elif Aydin and Asli Baysal
Int. J. Mol. Sci. 2026, 27(16), 7504; https://doi.org/10.3390/ijms27167504 - 21 Aug 2026
Viewed by 311
Abstract
Metformin is a widely used antidiabetic drug that may enter biological and environmental systems together with micro/nanoplastics; however, their combined effects on protein interactions and microbial responses remain insufficiently understood. This study investigated how polyethylene terephthalate micro/nanoplastics (PET MNPs) influence metformin interactions with [...] Read more.
Metformin is a widely used antidiabetic drug that may enter biological and environmental systems together with micro/nanoplastics; however, their combined effects on protein interactions and microbial responses remain insufficiently understood. This study investigated how polyethylene terephthalate micro/nanoplastics (PET MNPs) influence metformin interactions with bovine serum albumin (BSA) and the subsequent responses of Escherichia coli and Staphylococcus aureus. BSA–metformin systems were conditioned with three PET MNP loads and increasing metformin concentrations. The resulting particle-depleted filtrates were evaluated using fluorescence spectroscopy, ultraviolet–visible spectroscopy, the Bradford assay, Rayleigh light scattering, turbidity, dithiothreitol-based oxidative potential, and reactive oxygen species (ROS) measurements. Bacterial growth, superoxide dismutase activity, glutathione-related thiol antioxidant response, lipid peroxidation, ROS generation, and biofilm formation were also assessed. PET MNP conditioning altered the fluorescence responses of tryptophan and tyrosine, modified BSA-associated absorbance, and produced non-linear changes in protein accessibility, aggregation-related scattering, turbidity, and oxidative indicators. The bacterial responses were species-specific. Escherichia coli showed increased bacterial growth under several exposure conditions, whereas Staphylococcus aureus exhibited reduced growth following metformin addition, particularly at the highest PET MNP load. Staphylococcus aureus also showed consistently elevated biofilm formation and a pronounced transient ROS increase under the high-PET, low-metformin condition. These findings indicate that upstream PET MNP conditioning can modify the physicochemical and biological properties of the filter-passing BSA–metformin phase, leading to concentration-dependent and species-specific bacterial responses. Full article
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18 pages, 1976 KB  
Article
Serum Periostin as a Complementary Biomarker of Frailty in Type 2 Diabetes: A Pilot Study Using the FRAIL Scale
by Sheila González-Salvatierra, Beatriz García-Fontana, Cristina García-Fontana, Luis Martínez-Heredia, José Francisco Rojas-Pérez, María Carmen Andreo-López, Antonia García-Martín and Manuel Muñoz-Torres
Int. J. Mol. Sci. 2026, 27(16), 7503; https://doi.org/10.3390/ijms27167503 - 21 Aug 2026
Viewed by 342
Abstract
Frailty is a multidimensional syndrome of reduced physiological reserve that is particularly prevalent in individuals with type 2 diabetes. Identifying objective biochemical markers to complement clinical screening tools, such as the FRAIL scale, is an increasingly important unmet need. Periostin, a matricellular protein [...] Read more.
Frailty is a multidimensional syndrome of reduced physiological reserve that is particularly prevalent in individuals with type 2 diabetes. Identifying objective biochemical markers to complement clinical screening tools, such as the FRAIL scale, is an increasingly important unmet need. Periostin, a matricellular protein involved in tissue remodeling, bone metabolism, and chronic complications of diabetes, has emerged as a potential candidate. In this cross-sectional study of 137 adults with type 2 diabetes (65 ± 8 years), participants were classified as robust, pre-frail, or frail according to FRAIL scores. Frailty correlated positively with age (p < 0.001), BMI (p = 0.006), waist circumference (p = 0.01), and diabetes duration (p = 0.040), and negatively with TBS (p = 0.001), HDL-c (p = 0.040), and eGFR (p = 0.009). A stronger positive correlation was observed with serum periostin (p < 0.001). Frail individuals showed higher periostin levels than pre-frail (p = 0.006) and robust participants (p = 0.008), independent of age. Periostin demonstrated moderate discriminatory capacity for frailty status (AUC = 0.710; p < 0.001), while adding periostin to clinical variables resulted in a numerical increase in overall model discrimination (AUC = 0.900 vs. 0.858). A threshold of >1307 pmol/L yielded 77.8% sensitivity and 66.7% specificity. These preliminary findings indicate that periostin is significantly associated with frailty in type 2 diabetes and may represent a complementary biochemical biomarker of frailty status, warranting further validation in longitudinal studies. Full article
(This article belongs to the Special Issue Molecular Studies in Aging, 2nd Edition)
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33 pages, 5776 KB  
Article
Molecularly Imprinted Polymers Based on Cyclodextrin Derivatives and Chitosan for Selective Extraction of Drugs and Dyes
by Linara Kopnova, Alexander Kopnov, Igor Zlotnikov and Elena Kudryashova
Int. J. Mol. Sci. 2026, 27(16), 7502; https://doi.org/10.3390/ijms27167502 - 21 Aug 2026
Viewed by 208
Abstract
A series of molecularly imprinted polymers (MIPs) based on hydroxypropyl-β-cyclodextrin (HPCD) crosslinked with 1,6-hexamethylene diisocyanate (HMD) or toluene diisocyanate (TDI), as well as hybrid chitosan–HPCD polymers crosslinked with genipin, were synthesized using levofloxacin and fluorescein as template molecules. The structure and spatial organization [...] Read more.
A series of molecularly imprinted polymers (MIPs) based on hydroxypropyl-β-cyclodextrin (HPCD) crosslinked with 1,6-hexamethylene diisocyanate (HMD) or toluene diisocyanate (TDI), as well as hybrid chitosan–HPCD polymers crosslinked with genipin, were synthesized using levofloxacin and fluorescein as template molecules. The structure and spatial organization of the obtained materials were characterized by FTIR spectroscopy, FTIR microscopy mapping, and ζ-potential measurements. The influence of pH, crosslinker content, and template structure on sorption performance was investigated. All MIPs exhibited maximum sorption at pH 3.0. The highest sorption capacity toward levofloxacin was achieved for the LV–Chit–HPCD–GenipinMIP (74.8 mg/g), whereas the fluorescein-imprinted FL–HPCD–TDIMIP (1:1) demonstrated the highest sorption capacity (135.5 mg/g) and selectivity coefficient (84.1). Dynamic column experiments confirmed efficient analyte extraction, reducing the analyte concentration by more than 90% after ten loading cycles. All synthesized MIPs exhibited excellent regenerability, with less than 3% loss of sorption efficiency after ten consecutive sorption–desorption cycles. The applicability of the developed sorbents to real matrices was demonstrated using milk and blood plasma samples after minimal sample preparation. Fluorescein extraction efficiencies reached 97.6% and 93.6% for milk and plasma, respectively. The obtained results demonstrate that HPCD-based MIPs combine high sorption capacity, exceptional selectivity, operational stability, and applicability to complex biological matrices, making them promising materials for selective sample preparation, analyte preconcentration, and controlled drug delivery systems. Full article
(This article belongs to the Special Issue Cyclodextrins: Properties and Applications, 4th Edition)
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17 pages, 2932 KB  
Article
Decoding Tumor–Immune Interactions in Hepatocellular Carcinoma Through Network-Centered Identification of CXCR2
by Saleh A. Almatroodi, Tarique Sarwar and Arshad Husain Rahmani
Int. J. Mol. Sci. 2026, 27(16), 7501; https://doi.org/10.3390/ijms27167501 - 21 Aug 2026
Viewed by 288
Abstract
Hepatocellular carcinoma (HCC) is one of the most prevalent cancers worldwide and exhibits considerable biological heterogeneity in both molecular and clinical characteristics. The diverse molecular alterations and clinical manifestations of HCC indicate substantial heterogeneity across patient subgroups. This study aimed to identify novel [...] Read more.
Hepatocellular carcinoma (HCC) is one of the most prevalent cancers worldwide and exhibits considerable biological heterogeneity in both molecular and clinical characteristics. The diverse molecular alterations and clinical manifestations of HCC indicate substantial heterogeneity across patient subgroups. This study aimed to identify novel therapeutic targets and predictive biomarkers associated with HCC using an integrative bioinformatics approach. High-throughput genomic datasets were obtained from the UCSC Xena browser to retrieve mRNA HTSeq-count data from the TCGA-HCC cohort. Gene co-expression network (GCN), protein–protein interaction network (PPIN), and enrichment analyses were performed to identify key dysregulated genes and their biological significance. Integrated network analyses identified three dysregulated hub genes, namely CXCR2, TLR2, and TLR4. Genomic alterations in these genes were further evaluated across tumor samples in the TCGA-HCC cohort. Kaplan–Meier (KM) survival analysis demonstrated that lower CXCR2 mRNA expression was significantly associated with poorer overall survival (OS) and recurrence-free survival (RFS). Furthermore, TIMER and UALCAN analyses revealed significant associations between CXCR2 expression and tumor purity, as well as immune cell infiltration levels, including T cells, macrophages, dendritic cells (DCs), and neutrophils. These findings suggest that CXCR2 is significantly associated with the immune microenvironment of HCC and represents a potential prognostic biomarker whose biological role warrants further mechanistic investigation. Full article
(This article belongs to the Special Issue Advances in Molecular and Cellular Pathology of Cancer Research)
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14 pages, 1138 KB  
Article
Identification of Growth-Related Single-Nucleotide Polymorphisms in the cAMP-Dependent Protein Kinase Type I Regulatory Subunit-like Gene of the Oriental River Prawn, Macrobrachium nipponense
by Yuefan Zhang, Hao Dong, Xiaofan Fang, Hui Qiao, Wenyi Zhang, Yiwei Xiong, Sufei Jiang and Shubo Jin
Int. J. Mol. Sci. 2026, 27(16), 7500; https://doi.org/10.3390/ijms27167500 - 21 Aug 2026
Viewed by 259
Abstract
Macrobrachium nipponense is an economically important freshwater crustacean in China, and growth-related traits are major determinants of its commercial value. Identifying single nucleotide polymorphisms (SNPs) associated with growth-related traits may provide useful molecular markers for the genetic improvement of growth performance. Previous studies [...] Read more.
Macrobrachium nipponense is an economically important freshwater crustacean in China, and growth-related traits are major determinants of its commercial value. Identifying single nucleotide polymorphisms (SNPs) associated with growth-related traits may provide useful molecular markers for the genetic improvement of growth performance. Previous studies have suggested that the cAMP-dependent protein kinase type I regulatory subunit-like gene (Mn-PKA-R1) is involved in the regulation of growth and molting in M. nipponense. In the present study, a cultured full-sib family comprising 120 females and 120 males was used to screen SNPs within the coding region of Mn-PKA-R1, and evaluate their associations with body weight, body length, full length, and abdominal width. Seven SNPs were identified in exon 12, including five nonsynonymous missense variants and two synonymous variants, whereas no SNPs were detected in the other exons examined. The mean effective number of alleles (Ne), observed heterozygosity (Ho), expected heterozygosity (He), Nei’s gene diversity (Nei), and polymorphic information content (PIC) were 1.3561, 0.3048, 0.2350, 0.2340, and 0.1962, respectively, in females, compared with 1.3118, 0.2714, 0.1868, 0.1861, and 0.1512, respectively, in males. Four SNPs were significantly associated with growth-related traits in females: C+82748G and A+82750G were associated with body weight and abdominal width, T+82810G was associated with abdominal width, and A+83324G was associated with body weight, full length, and abdominal width (p < 0.05). No significant genotype–trait associations were detected among the SNP loci that could be statistically evaluated in males. Pairwise r2 values ranged from 0.001 to 0.693 in females and from 0.000 to 0.351 in males, with generally higher values observed in females within the investigated full-sib family. Females also showed slightly higher mean genetic polymorphism parameters than males, while significant SNP–trait associations were detected only in females within this family. These findings provide candidate SNPs for further validation of their potential utility in marker-assisted selection in M. nipponense. Full article
(This article belongs to the Special Issue Molecular Genetics and Genomics of Aquatic Crustaceans)
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26 pages, 94016 KB  
Article
LMF-CP: An Interpretable Multimodal Late-Fusion Framework for Compound Carcinogenicity Prediction
by Yingjie Zhu, Liujie He and Xinjie Liang
Int. J. Mol. Sci. 2026, 27(16), 7499; https://doi.org/10.3390/ijms27167499 - 21 Aug 2026
Viewed by 348
Abstract
Accurately predicting the carcinogenicity of compounds is of great significance for drug discovery, clinical drug safety, and chemical risk assessment. Traditional methods for assessing carcinogenicity rely on animal testing, which suffers from limitations such as time-consuming processes, high costs, significant interspecies differences, and [...] Read more.
Accurately predicting the carcinogenicity of compounds is of great significance for drug discovery, clinical drug safety, and chemical risk assessment. Traditional methods for assessing carcinogenicity rely on animal testing, which suffers from limitations such as time-consuming processes, high costs, significant interspecies differences, and low predictive throughput. In recent years, computational modeling-based prediction methods (such as Quantitative Structure–Activity Relationships, QSAR) have made some progress, but they still face challenges such as insufficient molecular feature information and poor model interpretability. To overcome these barriers, the multimodal deep learning framework LMF-CP (Late Multimodal Fusion of Carcinogenicity Prediction) is proposed to enhance the performance and interpretability of compound carcinogenicity prediction. First, to comprehensively characterize the structural and physicochemical properties of compounds, a multimodal representation system based on four molecular modalities is constructed, namely SMILES sequences, molecular fingerprints, molecular images, and molecular graph structures. Specifically, Text Convolutional Neural Network (TextCNN), Multi-Layer Perceptron (MLP), Visual Geometry Group Network (VGGNet), as well as Molecular Graph Attention Network (MGAT) are employed to process this information, respectively. Second, to integrate information from different molecular representations, a late-stage fusion strategy based on Lasso stacking is employed. On the test set, LMF-CP achieves an area under curve (AUC) of 0.828, an accuracy (ACC) of 0.782, an F1 score of 0.786, a sensitivity (SEN) of 0.786, and a specificity (SPE) of 0.779. In addition, this paper combines Shapley Additive Explanations (SHAP) analysis with Bemis–Murcko scaffold analysis to interpret the model results from two perspectives. Finally, a visual online platform for predicting the carcinogenicity of compounds is designed, providing a convenient tool for the rapid assessment of compound carcinogenicity and structural interpretation. Full article
(This article belongs to the Special Issue Computational Strategies in Toxicology)
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15 pages, 3964 KB  
Article
Engineering of a Carbonic Anhydrase from Hydrogenimonas thermophila Through Fusion Tags and Surface Mutagenesis Enhances Solubility While Revealing Stability–Function Relationships
by Colleen Varaidzo Manyumwa, Carsten Jers and Ivan Mijakovic
Int. J. Mol. Sci. 2026, 27(16), 7498; https://doi.org/10.3390/ijms27167498 - 21 Aug 2026
Viewed by 302
Abstract
Protein solubility can limit enzyme performance in industrial applications. This is the case for some carbonic anhydrases (CAs), key enzymes for CO2 capture and utilization. In this study, we investigated an α-class CA from the thermophilic bacterium Hydrogenimonas thermophila (HtCA), which was [...] Read more.
Protein solubility can limit enzyme performance in industrial applications. This is the case for some carbonic anhydrases (CAs), key enzymes for CO2 capture and utilization. In this study, we investigated an α-class CA from the thermophilic bacterium Hydrogenimonas thermophila (HtCA), which was predominantly expressed as an insoluble protein in Escherichia coli. Surface analysis using Molecular Operating Environment (MOE) revealed extensive hydrophobic regions, suggesting a basis for its poor solubility. To improve solubility, three C-terminal fusion tags were evaluated (Gb1, ng3-NEXT, and T7B9). All tagged variants showed markedly increased soluble expression as determined by sodium dodecyl sulfate–polyacrylamide gel electrophoresis (SDS-PAGE) analysis. To reduce surface hydrophobicity, selected residues were substituted with charged amino acids. Most variants displayed improved solubility, and V136D showed enhanced thermostability, retaining 76% activity after exposure to 90 °C for an hour. However, the F177D variant completely lost all enzymatic activity, highlighting the importance of evaluating both solubility and catalytic function during protein engineering. Molecular dynamics simulations supported the experimental findings, revealing that thermostable variants exhibited reduced structural fluctuations and favorable free-energy landscapes, while the inactive F177D mutant sampled a broader conformational space and higher-energy conformations, consistent with decreased structural stability and loss of catalytic activity. Full article
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25 pages, 2404 KB  
Article
Beyond the Score: Fixed-Budget Benchmarking of Virtual Screening Integration Strategies for Decision-Centric Drug Discovery
by Elisabetta Grazia Tomarchio, Rocco Buccheri and Antonio Rescifina
Int. J. Mol. Sci. 2026, 27(16), 7497; https://doi.org/10.3390/ijms27167497 - 21 Aug 2026
Viewed by 328
Abstract
Virtual screening (VS) workflows often combine structure- and ligand-based methods; however, their value depends on the number of compounds that can be tested. We benchmarked 20 fixed-budget strategies derived from molecular docking (GNINA CNN score), maximum common substructure (MCS) similarity, and a calibrated [...] Read more.
Virtual screening (VS) workflows often combine structure- and ligand-based methods; however, their value depends on the number of compounds that can be tested. We benchmarked 20 fixed-budget strategies derived from molecular docking (GNINA CNN score), maximum common substructure (MCS) similarity, and a calibrated machine-learning (ML)-QSAR classifier across five pharmacologically diverse targets. Individual methods, best-rank and worst-rank fusion, mean-rank consensus, and sequential funnels were evaluated at 1%, 5%, and 10% library fractions, with every strategy selecting the same number of compounds. ML-QSAR was the strongest standalone method, recovering 47.6%, 81.6%, and 84.4% of actives at the three cutoffs. At the 1% budget, ML-QSAR achieved the highest mean hit recovery (47.6% recall; 99.2% precision). At 5% and 10%, best-rank fusion of QSAR and MCS produced the highest mean recall (83.2% and 86.4%). Among the sequential workflows, QSAR → MCS achieved the highest 1% hit recovery (45.2 ± 3.3% recall), whereas docking-first funnels consistently underperformed under the default, non-optimized conditions evaluated in this study. Target-level results showed substantial variability in MCS-containing workflows and limited benefits from adding docking without target-specific optimization. Under matched assay budgets, a validated ligand-based predictor or a simple two-method rank-fusion scheme provided the highest observed mean hit recovery without requiring elaborate integration. Full article
(This article belongs to the Special Issue Beyond Docking Scores: Decision-Centric Computer-Aided Drug Discovery)
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14 pages, 1637 KB  
Article
Molecular Dissection of the SlBAG9 Promoter from Tomato and Its Thermo-Regulatory Activity
by Fan Fei, Fan Yang, Yucheng Peng, Menghan Zhu, Sihan Li, Hailong Jiang and Haidong Ding
Int. J. Mol. Sci. 2026, 27(16), 7496; https://doi.org/10.3390/ijms27167496 - 21 Aug 2026
Viewed by 237
Abstract
The Bcl-2-associated athanogene (BAG) gene family plays vital roles in plant growth, development, and biotic and abiotic stress responses. Previous work has demonstrated that tomato SlBAG9, a group II BAG member, negatively regulates plant thermotolerance. However, the regulatory mechanisms governing SlBAG9 expression [...] Read more.
The Bcl-2-associated athanogene (BAG) gene family plays vital roles in plant growth, development, and biotic and abiotic stress responses. Previous work has demonstrated that tomato SlBAG9, a group II BAG member, negatively regulates plant thermotolerance. However, the regulatory mechanisms governing SlBAG9 expression remain poorly understood. In this study, we isolated and characterized the authentic 1486 bp full-length promoter (P1) of SlBAG9 from the tomato genome. Building upon our previous transcript-level observations, we provide here a detailed functional characterization of this promoter at the cellular and tissue level. In silico analysis identified several key cis-acting regulatory elements, including abscisic acid-responsive elements (ABRE), anaerobic response elements (ARE), and a heat shock element (HSE1). We used stable transgenic tomato plants carrying SlBAG9pro::GUS to verify that the full-length promoter was capable of driving the expression of β-glucuronidase reporter gene (GUS) in transgenic tomato plants, showing GUS staining was detectable in the roots, stems, leaves, flowers, fruits, and seeds, with the highest activity in red-ripe fruits. Notably, GUS activity was significantly upregulated by high temperature (HT) but not by PEG, NaCl, ABA, or cold treatments. To further dissect the HT-responsive regulatory module, we generated three 5′-terminal deletion fragments (−386 bp, P2; −239 bp, P3; and −113 bp, P4) and fused them to GUS. Under HT stress, the smallest deletion P4 showed negligible GUS activity, whereas P1, P2, and P3 retained significant activity. Furthermore, site-directed deletion of the HSE1 element in the full-length context (MU-P1) abolished HT inducibility, confirming that HSE1 serves as a critical positive HT-responsive element. Collectively, these findings confirm and extend our observations that SlBAG9 is a stress-responsive gene, and the characterized HSE1-dependent promoter module represents a promising candidate for genetic engineering aimed at enhancing thermotolerance in crops. Full article
(This article belongs to the Special Issue Advances in Plant Breeding and Biotechnology: From Lab to Field)
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33 pages, 15122 KB  
Review
Lactate as a Master Regulator of Immune Suppression: From Metabolic Waste to Epigenetic Checkpoint in Colorectal Cancer
by Beiyan Chen, Shuang Gao, Xin Chen, Qingping Shi, Mingli Shen and Jieru Han
Int. J. Mol. Sci. 2026, 27(16), 7495; https://doi.org/10.3390/ijms27167495 - 21 Aug 2026
Viewed by 403
Abstract
Colorectal cancer, especially the microsatellite-stable subtype, which accounts for 85% to 95% of cases, resists immune checkpoint inhibitors largely due to metabolic reprogramming in the tumor microenvironment. Lactate has evolved from a waste product into a central immunosuppressive regulator. Oncogenic KRAS and BRAF [...] Read more.
Colorectal cancer, especially the microsatellite-stable subtype, which accounts for 85% to 95% of cases, resists immune checkpoint inhibitors largely due to metabolic reprogramming in the tumor microenvironment. Lactate has evolved from a waste product into a central immunosuppressive regulator. Oncogenic KRAS and BRAF mutations drive aerobic glycolysis, causing glucose deprivation and massive lactate accumulation in the tumor microenvironment. Lactate suppresses immunity through three parallel mechanisms. It signals via GPR81 to recruit polymorphonuclear myeloid-derived suppressor cells (PMN-MDSCs) and inhibit T-cell function. It contributes to histone H3K18 lactylation, which silences effector genes including IFN-γ and GZMB while upregulating PD-L1 expression. It also acidifies the microenvironment to pH 6.0–6.5, directly impairing NK and T-cell activity. Concurrent lipid abundance stabilizes the MCT4 lactate exporter, forming a bidirectional feed-forward loop that amplifies lactate effects. Spatial metabolic heterogeneity creates distinct immune battlefields, with a supportive ‘metabolic oasis’—a concept proposed in this review—at the invasive front and a deeply immunosuppressive core. Thus, lactate acts as an epigenetic and signaling hub that bridges oncogenic mutations, metabolic competition and immune evasion. Targeting lactate metabolism through LDHA or MCT4 inhibition, modulation of histone lactylation, or disruption of lactate-lipid crosstalk, when combined with classical immune checkpoint blockade and guided by spatial biomarkers, offers a promising strategy to overcome immunotherapy resistance in this challenging subtype. Full article
(This article belongs to the Section Molecular Immunology)
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18 pages, 1700 KB  
Review
Rhizobacteria-Mediated Reprogramming of Phytohormone Landscapes for Mitigating Salinity Stress in Plants
by Arghyadeepa Moharana, Lochan Dhruw, Armita Chakraborty, Preeti Pashwan, Sanjida Sultana Keya, Md. Mezanur Rahman, Archita Singh, Mamta Bhardwaj, Lam-Son Phan Tran and Aarti Gupta
Int. J. Mol. Sci. 2026, 27(16), 7494; https://doi.org/10.3390/ijms27167494 - 21 Aug 2026
Viewed by 373
Abstract
Salinity stress is one of the major stressors that limits yield potential in field crops. Salinity-led imbalances in ionic and water potential, as well as oxidative damage, impair photosynthesis. Plant-growth-promoting rhizobacteria (PGPRs) have been demonstrated to mitigate salinity-stress-induced damage through various mechanisms such [...] Read more.
Salinity stress is one of the major stressors that limits yield potential in field crops. Salinity-led imbalances in ionic and water potential, as well as oxidative damage, impair photosynthesis. Plant-growth-promoting rhizobacteria (PGPRs) have been demonstrated to mitigate salinity-stress-induced damage through various mechanisms such as biofilm and exopolysaccharide production, modulation of plant root architecture or molecular signaling involving modulation of sodium/potassium efflux transporters. PGPRs are known to induce biosynthesis and signaling of various phytohormones in plants. PGPR-derived phytohormones can in turn regulate molecular signaling involved in maintaining ion fluxes, preventing salinity-induced senescence, and reinforcing plant root architecture, thereby maintaining plant growth and development under saline conditions. In this review, we provide comprehensive advances on how PGPRs modulate and integrate biosynthesis and/or signaling of various phytohormones, such as auxins, cytokinins, gibberellin, ethylene, abscisic acid, salicylic acid, jasmonates, brassinosteroids and strigolactones, to reshape plant architecture, physiological and biochemical responses in plants under salinity. We integrate molecular evidence with morpho-physiological studies and propose a phytohormone-centric framework to select strains that optimize growth, ion homeostasis and plant stress resilience under salinity. Full article
(This article belongs to the Special Issue Plant Stress Biology)
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26 pages, 21364 KB  
Article
Identification of Cellular Senescence-Related Hub Genes in Rheumatoid Arthritis from Bioinformatics Analysis Through Machine Learning up to Verifications in Mouse Macrophages and Tests in Patients
by Dandan Wang, Linkun Tian, Qingshan Ma, Zhengdong Zhang, Yi Wang, Junhao Fang, Hairong Xu, Qi Chen, Hongdian Chen, Fangyuan Wang, Qiaoyan Zhang, Quanlong Zhang and Luping Qin
Int. J. Mol. Sci. 2026, 27(16), 7493; https://doi.org/10.3390/ijms27167493 - 21 Aug 2026
Viewed by 367
Abstract
Rheumatoid arthritis (RA) is a chronic autoimmune disease characterized by synovial inflammation and joint destruction. Cellular senescence contributes to chronic inflammation, yet key senescence-associated regulators in RA remain unclear. This study aimed to identify RA senescence-related signatures and their roles. Using GSE89408 as [...] Read more.
Rheumatoid arthritis (RA) is a chronic autoimmune disease characterized by synovial inflammation and joint destruction. Cellular senescence contributes to chronic inflammation, yet key senescence-associated regulators in RA remain unclear. This study aimed to identify RA senescence-related signatures and their roles. Using GSE89408 as the training cohort, we screened hub genes by intersecting differentially expressed and senescence-related genes via WGCNA and three machine learning algorithms, with GSE55457 for external validation. Immune infiltration, regulatory network, subtyping and drug prediction were analyzed. Clinical and in vitro assays validated RIPK2 expression and function in the macrophage senescence-like phenotype, with preliminary signaling exploration. Three senescence-related hub genes (TNFAIP6, SLC2A3, RIPK2) were identified. The derived nomogram showed robust diagnostic performance (AUC = 0.988). Hub genes correlated strongly with myeloid cells, especially macrophages. Two immunologically distinct RA subtypes were identified. RIPK2 was upregulated in clinical samples; its inhibition attenuated LPS-induced macrophage senescence-like changes and inflammation. Preliminary data suggested RIPK2 may act via the NF-κB pathway. This study identifies RA senescence-associated signatures, revealing RIPK2 linking innate immunity to macrophage senescence-like changes, offering novel insights into pathogenesis and supporting it as a candidate biomarker and therapeutic target. Full article
(This article belongs to the Section Molecular Informatics)
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21 pages, 2400 KB  
Article
Amino Oxidase Hard Protein Corona with Metabolic-Triggered Intracellular Biocatalysis
by Federica Tonolo, Mary Bortoluzzi, Graziano Rilievo, Alessandro Cecconello, Aura Cencini, Lavinia Rutigliano, Maria Pia Rigobello, Maria Luisa Di Paolo, Alberto Macone, Pasquale Fino, Enzo Agostinelli, Massimiliano Magro and Fabio Vianello
Int. J. Mol. Sci. 2026, 27(16), 7492; https://doi.org/10.3390/ijms27167492 - 21 Aug 2026
Viewed by 325
Abstract
A hard protein corona was engineered onto tannic acid-modified magnetic nanoparticles (SAMN@TA), a magnetic and luminescent core–shell nano-carrier, using bovine serum amine oxidase (BSAO), an enzyme catalyzing the oxidation of polyamines and producing the corresponding aldehydes and hydrogen peroxide. The absorption and intracellular [...] Read more.
A hard protein corona was engineered onto tannic acid-modified magnetic nanoparticles (SAMN@TA), a magnetic and luminescent core–shell nano-carrier, using bovine serum amine oxidase (BSAO), an enzyme catalyzing the oxidation of polyamines and producing the corresponding aldehydes and hydrogen peroxide. The absorption and intracellular bioactivity of the self-assembled multimodal SAMN@TA@BSAO were investigated on an intestinal barrier model built with human colorectal adenocarcinoma (Caco-2) cells. The tailored BSAO corona possessed fouling resistance and, at the same time, was able to activate the clathrin-mediated endocytosis (CME) mechanism. Despite its size and intrinsic complexity, the nano-vehicle was effectively transported across the cell layer, safely transiting across the cell cytoplasm and reaching the lumen. As a function of intracellular polyamine concentration, the system’s biological activity induced intracellular oxidative stress, leading to the activation of the Keap1/Nrf2 oxidative protection pathway. The SAMN@TA@BSAO effect was well described by a dose–response curve with an EC50 of around 30 µg mL−1 and a programmable killing efficiency (>50.0%), recalling the feasibility of a low molecular weight drug administration. The present study contributes to the nascent knowledge on engineering protein corona as a key to rationally design nanomaterials for biomedical applications. Full article
(This article belongs to the Collection Feature Papers in Molecular Biophysics)
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36 pages, 1474 KB  
Review
Interactions Between Antioxidants: How Useful Are In Vitro Studies for Understanding the Action of Antioxidants in Complex Systems?
by Izabela Sadowska-Bartosz and Grzegorz Bartosz
Int. J. Mol. Sci. 2026, 27(16), 7491; https://doi.org/10.3390/ijms27167491 - 21 Aug 2026
Viewed by 367
Abstract
Interactions between antioxidants are believed to be fundamental for proper nutrition and health benefits. This review discusses various types of antioxidant interactions in vitro, their mechanisms, and their dependence on assay conditions and evaluates the validity of extrapolations of results obtained from cell-free [...] Read more.
Interactions between antioxidants are believed to be fundamental for proper nutrition and health benefits. This review discusses various types of antioxidant interactions in vitro, their mechanisms, and their dependence on assay conditions and evaluates the validity of extrapolations of results obtained from cell-free assays and assays of cellular antioxidant activity to in vivo and food systems. In vitro studies revealed that the type of interaction (additive, antagonistic, or synergistic) depends not only on the identity of compounds but also on their absolute concentrations, concentration ratio, type of assay, reaction medium, and the method of analysis of results. Moreover, reactions of antioxidants in simple model systems, employing synthetic indicators, do not fully reflect their reactivity in food systems and organisms. Although in vitro studies may be a useful and necessary step for explaining the mechanisms of interactions between antioxidants, their importance for explaining the phenomena observed in vivo seems limited, as the organismal effects of compounds referred to as antioxidants depend rather on their actions on specific signaling pathways than on their direct antioxidant action. Nevertheless, they may provide useful information for food preservation, allowing for the reduction of the amounts of antioxidant additives. Full article
(This article belongs to the Special Issue Advanced Research in Antioxidant Activity: Second Edition)
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30 pages, 8172 KB  
Article
17β-Estradiol Modulates Cancer Cell–Fibroblast Communication via Autophagy-Mediated Extracellular Vesicle Secretion and Promotes Poor Prognosis in Non-Small Cell Lung Cancer
by Rosa Vona, Camilla Cittadini, Barbara Ascione, Lucrezia Gambardella, Katia Fecchi, Lucia Bertuccini, Annalisa Tocci, Lorenzo D’Ambrosio, Maria Cristina Gagliardi, Federica Felicetti, Elena Ortona, Paola Nisticò, Anna Maria Mileo and Paola Matarrese
Int. J. Mol. Sci. 2026, 27(16), 7490; https://doi.org/10.3390/ijms27167490 - 21 Aug 2026
Viewed by 388
Abstract
Non-small cell lung cancer (NSCLC) remains a leading cause of cancer-related mortality. Smoking is the primary etiological factor, but growing evidence suggests the involvement of estrogen in its development and progression, although its role remains unclear. This study explores: (i) the effects induced [...] Read more.
Non-small cell lung cancer (NSCLC) remains a leading cause of cancer-related mortality. Smoking is the primary etiological factor, but growing evidence suggests the involvement of estrogen in its development and progression, although its role remains unclear. This study explores: (i) the effects induced by estrogen, namely, 17β-estradiol (E2), alone or in combination with a mixture of inflammatory cytokines (Mix), in two human NSCLC cell lines, A549 and Calu1, and (ii) whether and how tumor cells can modulate the activation of normal lung fibroblasts. We found that E2 significantly enhances migration, invasion, and epithelial–mesenchymal transition in NSCLC cells, as well as their resistance to cisplatin, particularly in combination with Mix. Pharmacological inhibition of ERβ reversed the E2-induced effects, implicating ERβ in E2-mediated signaling. Furthermore, E2 increased autophagic flux and induced a shift toward secretory autophagy and the release of extracellular vesicles, which activated normal lung fibroblasts, as demonstrated by the increased expression of α-SMA, FAP, PDGFR-β, and PDPN. The clinical relevance of these data was supported by computational analyses revealing an elevated expression of the Mix gene signature, including TGF-β, IL-6, IL-8, CCXL-16, and ERβ, which was associated with shorter overall survival in NSCLC patients. This molecular profile was linked to the elevated expression of secretory autophagy genes and cancer-associated fibroblast markers. Validation in three large clinical cohorts (TCGA-LUNG, OAK and POPLAR) strengthens the clinical relevance of this E2-related pro-tumor axis while suggesting a promising therapeutic avenue for NSCLC patients. Full article
(This article belongs to the Special Issue Sex and Gender Medicine: New Horizons in Human Health and Disease)
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27 pages, 5523 KB  
Article
Structure-Guided Discovery Reveals Recurrent Bioactive Peptide Architectures Across Coleoptera
by Thaís Caroline Gonçalves, João Alfredo Teodoro and Danilo T. Amaral
Int. J. Mol. Sci. 2026, 27(16), 7489; https://doi.org/10.3390/ijms27167489 - 21 Aug 2026
Viewed by 254
Abstract
Bioactive peptides are an important source of therapeutic molecules and molecular scaffolds involved in defense, signaling, and immune regulation. Despite the extraordinary diversity of Coleoptera, the structural landscape of beetle-derived bioactive peptides remains largely unexplored, limiting our understanding of their evolutionary diversity and [...] Read more.
Bioactive peptides are an important source of therapeutic molecules and molecular scaffolds involved in defense, signaling, and immune regulation. Despite the extraordinary diversity of Coleoptera, the structural landscape of beetle-derived bioactive peptides remains largely unexplored, limiting our understanding of their evolutionary diversity and biotechnological potential. Here, we performed a large-scale structural survey of predicted toxin-like peptide scaffolds across publicly available Coleoptera transcriptomes by integrating transcriptome mining, peptide maturation prediction, physicochemical characterization, AlphaFold 3 structural modeling, structural similarity analyses, and interpretable machine learning. We identified 291 candidate peptides, of which 155 contained canonical signal peptides and 273 produced mature peptides within the expected size range of known bioactive peptides. Structural analyses revealed that, despite extensive sequence diversity, many candidates were organized into a comparatively restricted repertoire of compact cysteine-rich architectures, indicating that structural similarity is retained across peptides exhibiting substantial primary-sequence variation. Comparative structural analyses further identified recurrent protein architectures shared across multiple beetle lineages, while machine learning prioritization integrated structural and biochemical descriptors to identify high-confidence candidates for future functional characterization. These analyses establish the first structural atlas of predicted toxin-like peptides across Coleoptera and demonstrate that structure-guided transcriptome mining provides a powerful framework for uncovering recurrent bioactive peptide scaffolds that would remain largely undetected using sequence-based approaches alone. Beyond expanding our understanding of peptide evolution in beetles, this resource is a foundation for future structural, functional, and biotechnological exploration of bioactive peptides in underexplored animal groups. Full article
(This article belongs to the Section Biochemistry)
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25 pages, 2259 KB  
Review
The M1/M2 Test System for Determining Macrophage Phenotypes
by Daria Surkova, Polina Vishnyakova, Viktoriia Kiseleva, Andrey Elchaninov and Timur Fatkhudinov
Int. J. Mol. Sci. 2026, 27(16), 7488; https://doi.org/10.3390/ijms27167488 - 21 Aug 2026
Viewed by 326
Abstract
Macrophages are highly plastic innate immune cells that integrate diverse microenvironmental cues to adopt pro-inflammatory (M1) or anti-inflammatory (M2) functional states, which critically influence the pathogenesis of infectious, autoimmune, inflammatory, and malignant diseases. This review provides an overview of current concepts of macrophage [...] Read more.
Macrophages are highly plastic innate immune cells that integrate diverse microenvironmental cues to adopt pro-inflammatory (M1) or anti-inflammatory (M2) functional states, which critically influence the pathogenesis of infectious, autoimmune, inflammatory, and malignant diseases. This review provides an overview of current concepts of macrophage ontogeny, functional heterogeneity, and disease-associated phenotypes, with a specific focus on experimental approaches used as M1/M2 test systems for macrophage phenotyping. The scope of the review encompasses commonly used experimental models, induction protocols for M1- and M2-like polarization, and key readouts, including gene-expression signatures and metabolic parameters. Particular emphasis is placed on reporter-based platforms (luciferase, BRET, fluorescent nanoparticle probes), label-free biophysical methods such as electrical impedance monitoring and metabolic profiling, and their application to dynamic, real-time assessment of macrophage phenotype in the context of tumor microenvironments and chemotherapeutic exposure. The potential of integrating reporter systems with single-cell omics, spatial transcriptomics, and patient-derived ex vivo platforms is considered, with a view to transforming M1/M2 test systems into clinically oriented assays capable of tracking macrophage programs during therapy and supporting the development of macrophage-targeted diagnostics and treatments. Full article
(This article belongs to the Special Issue Macrophage Metabolic Reprogramming in Inflammation)
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24 pages, 4547 KB  
Article
Photocatalytic Activity of Y-Doped ZrO2 Thin Films
by Carmen Mita, Mariana Frenti, Nicoleta Cornei, Georgiana Bulai, Daniela Pricop, Vasile Tiron, Marius Dobromir, Aleksandr S. Doroshkevich and Diana Mardare
Int. J. Mol. Sci. 2026, 27(16), 7487; https://doi.org/10.3390/ijms27167487 - 21 Aug 2026
Viewed by 194
Abstract
In this paper, we have investigated the photocatalytic performances of some yttrium-doped ZrO2 films for decomposing Rhodamine B and Methylene Blue. The as-deposited thin films (obtained by RF magnetron sputtering) were heat-treated to stabilize their structure. To assess the films’ characteristics, a [...] Read more.
In this paper, we have investigated the photocatalytic performances of some yttrium-doped ZrO2 films for decomposing Rhodamine B and Methylene Blue. The as-deposited thin films (obtained by RF magnetron sputtering) were heat-treated to stabilize their structure. To assess the films’ characteristics, a group of analytical methods (XRD, XPS, AFM and DRS) allowed for the determination of their structural, surface, and optical properties. These characteristics were correlated with the observed photocatalytic activity and wetting behaviour. The Y-doped ZrO2 film with medium nanoparticle size and a high contribution of the oxygen vacancy is found to be more efficient in Rhodamine B and Methylene Blue photodegradation; the 100% degradation efficiency was reached in 70 min and 40 min, respectively, for the 3 mg/L solution dye. The photodegradation mechanism is driven by photogenerated holes, and a possible reaction mechanism was proposed. By investigating the charge carrier separation at the film–ITO interfaces, made through a comparative analysis of their determined band edge potentials, we conclude that the transfer is not possible in either of the semiconductor pairs, so ITO does not “help” the photocatalytic process. Full article
(This article belongs to the Special Issue Latest Research in Photocatalysis)
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21 pages, 17392 KB  
Article
Roles of Eleven Key Enzymes in Sweet Value and Soluble Sugar Component Content During Mango Development
by Li Li, Zisong Wang, Weiming Li, Xiang Li, Kaiyi Zou, Xiaofen Xie, Chenxing Liu, Yanke Wu, Jiehuan Chen, Guodi Huang and Caihua Liu
Int. J. Mol. Sci. 2026, 27(16), 7486; https://doi.org/10.3390/ijms27167486 - 21 Aug 2026
Viewed by 226
Abstract
Mango fruits are popular for their flavor. Sugar, a key component of fruit nutrition and flavor, determines fruit quality via its composition and content. While many studies explore molecular regulatory pathways of sugar metabolism in various fruits, large-scale physiological screening of related enzymes [...] Read more.
Mango fruits are popular for their flavor. Sugar, a key component of fruit nutrition and flavor, determines fruit quality via its composition and content. While many studies explore molecular regulatory pathways of sugar metabolism in various fruits, large-scale physiological screening of related enzymes via advanced mathematical methods is largely neglected, and the physiological mechanism of sugar accumulation in mango remains unclear. This study analyzed glucose, fructose, sucrose and starch contents, and the activities of 11 sugar metabolism-related enzymes (adenosine diphosphate glucose pyrophosphorylase (AGP); sucrose synthase (SS); sucrose phosphate synthase (SPS); protein kinase (PK); starch debranching enzyme (DBE); phosphoglucomutase (PGM); α-amylase; β-amylase; isoamylase (ISA); sucrose invertase (INV); acid invertase (AI)) from fruit growth to post-ripening stages of mango cultivar ‘Renong No.1’, determined the correlations among soluble sugar, starch and enzyme activities, and constructed mathematical models of inter-group relationships using R language. The results showed that glucose, fructose and starch accumulated during fruit growth, while sucrose accumulated during post-ripening. Fructose content was significantly positively correlated with AGP, α-amylase, AI, β-amylase and SPS activities; so was glucose content and AGP activity; sucrose content and AGP, AI, PK, α-amylase, ISA, INV and SPS activities; and sweetness value and AGP, α-amylase, AI, SPS, SS and β-amylase activities. AI, AGP and α-amylase were identified as the key enzymes influencing sweetness value. Ultimately, a new visualizing and digitizing statistical approach for roles of eleven key enzymes in sweet value and soluble sugar component content during mango development was shown. Full article
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23 pages, 13646 KB  
Article
Repetitive Compressive Loading Downregulates the Expression of Autophagy-Related Factors, Autophagy Capacity and Cellular Activity in Human Osteoarthritic Chondrocytes
by Satomi Sato, Hideaki Iwata, Takeaki Yamamoto, Shu Somemura, Masahiro Takemoto, Yuki Takahashi-Suzuki, Yodo Sugishita, Hiroto Fujiya, Naoki Haraguchi and Kazuo Yudoh
Int. J. Mol. Sci. 2026, 27(16), 7485; https://doi.org/10.3390/ijms27167485 - 21 Aug 2026
Viewed by 229
Abstract
Mechanical stress is thought to be involved in the pathogenesis and pathophysiology of osteoarthritis (OA). However, much remains to be elucidated regarding how chondrocytes sense and respond to mechanical stress (stress sensing and response factors). Additionally, it still remains unclear whether there are [...] Read more.
Mechanical stress is thought to be involved in the pathogenesis and pathophysiology of osteoarthritis (OA). However, much remains to be elucidated regarding how chondrocytes sense and respond to mechanical stress (stress sensing and response factors). Additionally, it still remains unclear whether there are defensive responses and mechanisms to protect against pathological agents and mechanical stress in articular cartilage tissue. This study was designed to determine whether repetitive mechanical force, at physiologic levels, affects the expression of factors regulating autophagy such as the autophagy-related proteins ATG5, Beclin-1, and Parkin, and the autophagy process as well as cellular activity in cultured chondrocytes. Three-dimensional cultured tissue was generated from human chondrocytes using a collagen sponge scaffold. After physiological mechanical loading of the 3D cell–collagen sponge construct, comparative analyses of expression levels of ATG5, Beclin-1, and Parkin were performed in human chondrocytes. Chondrocyte activity and Transmission Electron Microscopy (TEM) analysis for detecting autophagy process were also analyzed with or without repetitive compressive loading. In chondrocytes, 60 min or 180 min repetitive compressive loading significantly decreased the expression of ATG5, Beclin-1 and Parkin in comparison with the non-loading group. TEM analysis indicated that, in normal chondrocytes of the non-loading group, the autophagy process was shown to be progressing. In contrast, repetitive loading decreased the number of autophagosomes and autolysosomes in chondrocytes. In addition, numerous degenerated organelles that had not undergone autophagy were observed within the chondrocytes under repetitive loading. The ATG5 and Beclin-1 proteins are known to play crucial roles in regulating cellular autophagy. Furthermore, repetitive mechanical loading caused a decreased expression of Parkin, a mitophagy regulator in chondrocytes. Our results indicate for the first time that a decrease in mitophagy, as well as cellular autophagy, in response to mechanical stress, even at the physiologic level, leads to the accumulation of defective mitochondria and abnormal cellular proteins, resulting in reduced chondrocyte activity and affecting the maintenance of cartilage tissue homeostasis, ultimately contributing to the progression of OA. Full article
(This article belongs to the Section Molecular Biology)
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18 pages, 17376 KB  
Article
Spatial Metabolomics Reveals the Common and Compound-Specific Pharmacological Mechanisms of Two Alkaloids Against Infarcted Myocardium
by Zixuan Zhang, Yixuan Lin, Feng Gao, Na Zhang, Jingyi Jiao, Huoli Yin, Tianzhen Liang, Herong Cui, Dong Bai and Haimin Lei
Int. J. Mol. Sci. 2026, 27(16), 7484; https://doi.org/10.3390/ijms27167484 - 21 Aug 2026
Viewed by 219
Abstract
Acute myocardial infarction (AMI) is a leading cause of death worldwide, characterised by systemic inflammation and metabolic disorders. Tetrahydropalmatine (THP) and berberine (BBR) are major alkaloids derived from Corydalis yanhusuo and Coptis chinensis, respectively, both of which have been shown to be [...] Read more.
Acute myocardial infarction (AMI) is a leading cause of death worldwide, characterised by systemic inflammation and metabolic disorders. Tetrahydropalmatine (THP) and berberine (BBR) are major alkaloids derived from Corydalis yanhusuo and Coptis chinensis, respectively, both of which have been shown to be cardioprotective; however, whether their mechanisms differ remains unclear. In this study, we systematically compared THP and BBR in treating AMI using integrated spatial metabolomics (AFADESI-MSI), untargeted metabolomics, lipidomics, and molecular biology. The results showed that both compounds improved cardiac function, reduced fibrosis, and suppressed inflammation. Multi-omics revealed that although both regulate glycerophospholipid metabolism, their pathway preferences and functional roles diverge: THP primarily affects linoleic acid and acetylcholine metabolism with a greater propensity to restore membrane structural integrity, whereas BBR targets ether phospholipids and sphingolipids with preferential anti-inflammatory lipid modulation. At the enzymatic level, both downregulated CHKα, PEMT, ChAT, and PDHA1. A key difference is that THP uniquely upregulated acetylcholinesterase (AChE) mRNA expression, an effect absent with BBR. Spatial metabolomics directly visualised that both compounds reverse the accumulation of pro-inflammatory lysophosphatidylcholines (LPCs) and restore structural phosphatidylcholines (PCs) in the infarct region, thereby re-establishing regional lipid homeostasis. To our knowledge, this is the first integrated multi-omics comparison to suggest shared and distinct mechanisms of THP and BBR in AMI. Notably, the differential regulation of AChE, as visualised by spatial omics, may serve as a molecular basis for understanding their distinct therapeutic features, although further validation at the protein and enzymatic activity levels is warranted. Full article
(This article belongs to the Section Molecular Endocrinology and Metabolism)
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2 pages, 150 KB  
Correction
Correction: Almeida et al. Diterpenes: Nature’s Hidden Gems of Immunomodulation. Int. J. Mol. Sci. 2025, 26, 2250
by Josiane Elizabeth Almeida, André Correa de Oliveira, Carlos Eduardo de Castro Alves, Selino Monteiro Costa Filho, Elaine Cristina Pacheco de Oliveira, Juliana Pavan Zuliani and Gemilson Soares Pontes
Int. J. Mol. Sci. 2026, 27(16), 7483; https://doi.org/10.3390/ijms27167483 - 21 Aug 2026
Viewed by 167
Abstract
The following references, [11] and [13], have been retracted and should be removed from the original publication [...] Full article
(This article belongs to the Special Issue The Impact of Natural Bioactive Compounds on Human Health and Disease)
25 pages, 9696 KB  
Article
Distinct Inflammation-Associated Microbiome Signatures in Pediatric Non-IgE-Mediated Food Allergy
by Maria-Teodora Coșoreanu, Gratiela Gradisteanu Pircalabioru, Irina-Oana Lixandru-Petre, Mara-Ioana Ionescu, Andreea Ioan, Eliza-Elena Cinteză and Felicia Galoș
Int. J. Mol. Sci. 2026, 27(16), 7482; https://doi.org/10.3390/ijms27167482 - 21 Aug 2026
Viewed by 231
Abstract
Non-IgE-mediated food allergy is characterized by delayed gastrointestinal manifestations and the absence of reliable non-invasive biomarkers. Increasing evidence suggests that gut microbiota may contribute to this disease pathogenesis. The aim of this study was to characterize the gut microbiome composition in thirty pediatric [...] Read more.
Non-IgE-mediated food allergy is characterized by delayed gastrointestinal manifestations and the absence of reliable non-invasive biomarkers. Increasing evidence suggests that gut microbiota may contribute to this disease pathogenesis. The aim of this study was to characterize the gut microbiome composition in thirty pediatric patients diagnosed with non-IgE-mediated food allergy, in comparison to fifteen healthy controls children, and to investigate its association with fecal calprotectin, eosinophil-derived neurotoxin (EDN) and IgA. Gut microbiota profiling was performed by 16S rRNA gene sequencing targeting the V3–V4 region. Compared with healthy controls, higher mean relative abundances of Bacteroides, Faecalibacterium, Alistipes, Parabacteroides, and Sutterella were observed in patients. Conversely, healthy children showed higher mean relative abundances of Pseudobutyrivibrio, Roseburia, Bifidobacterium, Collinsella, Clostridium, Eubacterium, Streptococcus, and Barnesiella. Several genera (Escherichia–Shigella, Agathobacter, and Enterococcus/Streptococcus) were detected only in the allergy cohort. Shannon diversity was higher in patients compared to controls and in the subgroups of patients with elevated fecal calprotectin (p = 0.028), previous antibiotic exposure (p = 0.015), and atopic dermatitis (p = 0.021). Stratification according to inflammatory biomarkers identified a distinct inflammatory microbiome endotype characterized by increased fecal calprotectin and EDN together with enrichment of Veillonellaceae and depletion of Bifidobacteriaceae and Lachnospiraceae. Correlation analyses further revealed positive associations between Veillonella abundance and both fecal calprotectin and EDN. These findings suggest that pediatric non-IgE-mediated food allergy is characterized by distinct microbiome–inflammation relationships rather than a single dysbiotic signature. Full article
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24 pages, 11627 KB  
Article
Tyrosine Supplementation Rescues a Growth Defect in a Humanized S. cerevisiae Model of YARS1 Associated with CMT-DI
by Nancy Sun, Tristan N. Samuels, Kyle Hoffman, Ridhwan Busari, Zain Nasir, Nicole Girard, Noah M. Reynolds and Ilka U. Heinemann
Int. J. Mol. Sci. 2026, 27(16), 7481; https://doi.org/10.3390/ijms27167481 - 21 Aug 2026
Viewed by 283
Abstract
Dominant pathogenic mutations in tyrosyl-tRNA synthetase (YARS1) are associated with Charcot–Marie–Tooth disease (CMT), a progressive peripheral neuropathy for which no disease-modifying therapies currently exist. While recent advances in amino acid supplementation therapies suggest potential benefit for recessive aminoacyl-tRNA synthetase disorders, their applicability to [...] Read more.
Dominant pathogenic mutations in tyrosyl-tRNA synthetase (YARS1) are associated with Charcot–Marie–Tooth disease (CMT), a progressive peripheral neuropathy for which no disease-modifying therapies currently exist. While recent advances in amino acid supplementation therapies suggest potential benefit for recessive aminoacyl-tRNA synthetase disorders, their applicability to dominant YARS1-associated neuropathies remains unclear. Here, we investigated the pathogenic mechanisms underlying the dominant YARS1 variants G41R, D81I, and E196Q. Using biochemical and functional analyses, we identified increased structural rigidity for G41R and E196Q proteins, while D81I is more susceptible to tryptic digestion. Furthermore, expression of the YARS1 variants in a humanized yeast model produced a dominant negative growth defect that is exacerbated at elevated temperatures, supporting disruption of canonical YARS1 function as a contributor to disease pathogenesis. Notably, tyrosine supplementation significantly rescued the observed growth defects across variants. These findings demonstrate that impaired tyrosine utilization contributes to the pathogenic effects of dominant YARS1 variants and provide proof-of-concept evidence that tyrosine supplementation may represent a potential therapeutic strategy for patients with YARS1-associated CMT. Full article
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23 pages, 1653 KB  
Review
The Clinical Value of NT-proBNP, sST2, and Galectin-3 in the Management of Heart Failure: From Diagnosis to Dynamic Monitoring: A Narrative Review
by Diana Andreea Fărcaș, Monica Tarcea, Maria Cristina Tătar, Anda Cerghizan, Călin Crăciun, Hajnal Finta, Florina Gliga and Claudia Bănescu
Int. J. Mol. Sci. 2026, 27(16), 7480; https://doi.org/10.3390/ijms27167480 - 21 Aug 2026
Viewed by 256
Abstract
Heart failure management remains a critical clinical challenge. While modern neurohormonal therapies have significantly improved survival, standard clinical assessments often fail to capture the full complexity of underlying structural disease progression. To comprehensively synthesize the established literature regarding the biological and prognostic roles [...] Read more.
Heart failure management remains a critical clinical challenge. While modern neurohormonal therapies have significantly improved survival, standard clinical assessments often fail to capture the full complexity of underlying structural disease progression. To comprehensively synthesize the established literature regarding the biological and prognostic roles of NT-proBNP, soluble ST2 (sST2), and Galectin-3 (Gal-3) and, subsequently, to propose a hypothesis-generating multimarker framework for HF risk stratification. A narrative review of the literature (2006–2026) was conducted across PubMed, Scopus, and Google Scholar. The synthesis focused on the clinical utility, phenotypic specificities, and methodological limitations of evaluating NT-proBNP, sST2, and Gal-3 concentrations. Evidence from the literature confirms that while NT-proBNP remains the gold standard for acute hemodynamic assessment. sST2 and Gal-3 provide complementary insights into active biomechanical strain and interstitial fibrotic remodeling; however, prospective randomized clinical trials demonstrating that sST2- or Gal-3-guided management improves clinical outcomes remain lacking. Based on these established findings, we propose an investigational four-step multimarker framework spanning from acute diagnosis to dynamic outpatient monitoring. This framework hypothesizes that integrating these pathways can better identify high-risk phenotypes that remain undetected by natriuretic peptides alone. The synergistic application of NT-proBNP, sST2, and Gal-3 offers a deeper pathophysiological evaluation of HF. However, our proposed biomarker-guided framework represents a set of testable research hypotheses. It requires prospective randomized validation before integration into routine clinical protocols for therapeutic titration. Full article
(This article belongs to the Special Issue Neurohormones in Cardiac Fibrosis and Heart Failure)
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Article
Effects of Maternal Zinc Deficiency and Post-Weaning Zinc Status on Neuroendocrine Markers Associated with Pubertal Regulation in Female Rat Offspring
by Meltem Gumus, Buse Gunaydın-Turker, Nilufer Akgun-Unal, Elif Gulbahce-Mutlu, Saltuk Bugra Baltaci, Omer Unal, Rasim Mogulkoc and Abdulkerim Kasim Baltaci
Int. J. Mol. Sci. 2026, 27(16), 7479; https://doi.org/10.3390/ijms27167479 - 21 Aug 2026
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Abstract
This study investigated the effects of maternal zinc deficiency and post-weaning zinc status on neuroendocrine markers associated with pubertal regulation in female rat offspring. A total of 40 female rats were divided into four groups: zinc deficiency (G1; MZD + ZD), standard diet [...] Read more.
This study investigated the effects of maternal zinc deficiency and post-weaning zinc status on neuroendocrine markers associated with pubertal regulation in female rat offspring. A total of 40 female rats were divided into four groups: zinc deficiency (G1; MZD + ZD), standard diet (G2; MZD + SD), zinc supplementation (G3; MZD + ZnS), and control (G4; CON). Groups G1–G3 were obtained from mothers with zinc deficiency, while G4 was obtained from mothers fed a standard diet. The procedures lasted 45 days. GATAD1, kisspeptin, GnRH, and NPY gene expressions in hypothalamic tissues were analyzed by RT-PCR; serum kisspeptin, GnRH, FSH, LH, leptin, and NPY levels were analyzed by ELISA. The lowest GATAD1, kisspeptin, and NPY gene expressions were found in groups G1 and G2 (p < 0.05), while the lowest GnRH expression was found in group G1 (p < 0.05). Serum zinc, kisspeptin, GnRH, LH, and leptin levels were lowest in G1 (p < 0.05) and highest in G3 and G4 (p < 0.05). Similarly, FSH and NPY levels were low in G1 and G2 (p < 0.05), and high in G3 and G4 (p < 0.05). The findings suggest that maternal zinc deficiency negatively impacts puberty-related neuroendocrine markers, and that zinc supplementation may correct these markers. Full article
(This article belongs to the Special Issue Research Advances in Circuit Mechanisms of Neurodegenerative Diseases)
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