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12 pages, 1115 KB  
Article
Label-Free Urinary Proteomics Uncovers Immune-Related Non-Invasive Biomarkers for Primary Biliary Cholangitis
by Xiong Pei, Ting Lei, Wei Jiang, Qingmin Zeng, Hong Tang, Taoyou Zhou and Dongbo Wu
Int. J. Mol. Sci. 2026, 27(17), 7584; https://doi.org/10.3390/ijms27177584 - 24 Aug 2026
Abstract
Diagnosis of primary biliary cholangitis (PBC) currently depends on invasive liver biopsy or serum markers with inadequate diagnostic performance. This study aimed to identify non-invasive urinary protein biomarkers for PBC detection. Urine specimens from biopsy-verified PBC patients and healthy controls were processed through [...] Read more.
Diagnosis of primary biliary cholangitis (PBC) currently depends on invasive liver biopsy or serum markers with inadequate diagnostic performance. This study aimed to identify non-invasive urinary protein biomarkers for PBC detection. Urine specimens from biopsy-verified PBC patients and healthy controls were processed through ultracentrifugation-based protein extraction, enzymatic digestion, and HPLC-ESI-IT/MS proteomic profiling; protein quantification was completed using Spectronaut v14.8. We identified 194 differentially expressed urinary proteins (109 upregulated, 85 downregulated) and screened 10 immune-related candidates through GO and KEGG enrichment. Pearson correlation further filtered three core proteins, osteopontin (SPP1/OPN), RAMP3 and S100A8, that correlated significantly with key PBC biochemical indices (ALP, GGT, AST, ALT, IgM, p < 0.05). Elevated urinary concentrations of OPN, RAMP3 and S100A8 were validated by ELISA in an independent cohort containing 30 PBC patients and 20 healthy volunteers. In summary, urinary OPN, RAMP3 and S100A8 are markedly increased in PBC patients and hold promise as non-invasive diagnostic biomarkers for PBC; however, their diagnostic specificity against other cholestatic and autoimmune liver diseases remains to be evaluated, and further confirmation in larger multicenter cohorts with disease control groups is warranted. Full article
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17 pages, 1819 KB  
Article
Ontogeny of Endocannabinoid Modulation of Neuromuscular Transmission: Contribution of Postsynaptic Nicotinic Receptors and Butyrylcholinesterase-Sensitive Mechanisms
by Egor Nevsky, Oksana Lenina, Irina Zueva, Dmitry Samigullin, Artem Malomouzh, Vladimir Parpura and Konstantin Petrov
Cells 2026, 15(17), 1524; https://doi.org/10.3390/cells15171524 - 24 Aug 2026
Abstract
Endocannabinoid receptors of the CB1 subtype are the most abundant G-protein-coupled receptors in the central nervous system, where they strongly regulate neurotransmitter release. The effects of the activation of these receptors by exogenously applied agonists have also been described in the peripheral nervous [...] Read more.
Endocannabinoid receptors of the CB1 subtype are the most abundant G-protein-coupled receptors in the central nervous system, where they strongly regulate neurotransmitter release. The effects of the activation of these receptors by exogenously applied agonists have also been described in the peripheral nervous system, particularly at neuromuscular junctions (NMJs). However, the physiological role of these receptors at NMJs has not been demonstrated. We have shown that blockade of CB1 receptors at the NMJs of newborn or young mice increases the quantal content of end-plate potentials, as well as their decay time constant. Neither effect of CB1 receptor blockade is observed if postsynaptic muscle acetylcholine receptors are partially blocked. Thus, CB1 receptors may be involved in maintaining synaptic homeostasis. Importantly, the effect of CB1 receptor blockade on quantal content is potentiated by blockade of the enzyme butyrylcholinesterase. Therefore, butyrylcholinesterase may be considered a component of the extracellular degradation system for endocannabinoids. Full article
32 pages, 8168 KB  
Review
Particulate Matter-Induced Skin Injury: A Dual-Pathway AhR–Nrf2 Framework for Epidermal Homeostasis and Therapeutic Targeting
by Chia-Hsuan Lin, Chia-Hung Yen, Yu-Tse Wu, Hsun-Shuo Chang, Horng-Huey Ko and Yih-Fung Chen
Int. J. Mol. Sci. 2026, 27(17), 7573; https://doi.org/10.3390/ijms27177573 - 24 Aug 2026
Abstract
The aryl hydrocarbon receptor (AhR) is highly expressed in keratinocytes and functions as an environmental sensor regulating xenobiotic metabolism, epidermal differentiation, and inflammatory responses. Particulate matter (PM), a major environmental pollutant containing reactive oxygen species (ROS), transition metals, and polycyclic aromatic hydrocarbons (PAHs), [...] Read more.
The aryl hydrocarbon receptor (AhR) is highly expressed in keratinocytes and functions as an environmental sensor regulating xenobiotic metabolism, epidermal differentiation, and inflammatory responses. Particulate matter (PM), a major environmental pollutant containing reactive oxygen species (ROS), transition metals, and polycyclic aromatic hydrocarbons (PAHs), induces oxidative stress and inflammation, leading to skin barrier dysfunction. Transition metals generate ROS via Fenton-type reactions, whereas PAHs undergo AhR-mediated metabolism that further amplifies oxidative stress. Excessive ROS promotes inflammatory cytokine expression and disrupts barrier-related protein expression. In response, activation of the nuclear factor erythroid 2-related factor 2 (Nrf2) pathway induces antioxidant enzymes, including heme oxygenase-1 (HO-1), to counteract oxidative damage. However, sustained PM exposure may overwhelm these defense mechanisms, resulting in impaired cellular homeostasis. Although the roles of AhR and Nrf2 have been extensively investigated individually, their coordinated regulation in PM-induced skin injury remains underexplored. This review summarizes current evidence on the functional interplay between AhR and Nrf2 and discusses how coordinated activation of these pathways integrates xenobiotic metabolism, antioxidant defense, and barrier-associated functions. Overall, the available evidence supports a dual-pathway framework for maintaining epidermal homeostasis under PM-induced environmental stress. Full article
(This article belongs to the Section Biochemistry)
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17 pages, 1996 KB  
Article
Natural Killer Cells Dominate the Hyperacute Lymphocyte Response to Major Trauma and Are Associated with Organ Dysfunction
by Joanna M. Shepherd, Lucy R. Gibb, Hew D. T. Torrance, Joanna Manson, Daniel J. Pennington, Paul Vulliamy and Karim Brohi
Biomolecules 2026, 16(9), 1228; https://doi.org/10.3390/biom16091228 - 24 Aug 2026
Abstract
The cellular immune response underlying post-injury multiple organ dysfunction syndrome (MODS) remains incompletely described. We hypothesized that early perturbations in innate lymphocyte behavior are critical to the development of MODS in trauma patients. To address this, we examined lymphocyte subsets in a prospective [...] Read more.
The cellular immune response underlying post-injury multiple organ dysfunction syndrome (MODS) remains incompletely described. We hypothesized that early perturbations in innate lymphocyte behavior are critical to the development of MODS in trauma patients. To address this, we examined lymphocyte subsets in a prospective cohort of major trauma patients recruited at a single major trauma hospital. Circulating lymphocytes were profiled with flow cytometry in serial samples drawn within the hyperacute (≤2 h) and acute (24 h, 72 h) post-injury periods. Plasma levels of specific mediators derived from innate lymphocytes were also measured in a larger cohort. We observed a marked hyperacute increase in circulating NK (particularly the CD56dim subset) and Vδ1 cells that were associated with MODS or early mortality. Absolute counts of NK activation markers CD69 and NKG2D were also higher in patients with adverse outcomes, although the proportion of NK cells expressing NKG2D was reduced. Exploratory cluster analyses of NK activating and inhibiting receptors identified patient groups with differing injury characteristics and outcomes. In plasma, patients who developed MODS had significantly higher levels of NK-associated cytotoxic mediators and cytokines. Collectively, these data indicate a specific pattern of hyperacute NK cell activation after major trauma that is characterized by a pattern consistent with cytotoxic lymphocyte activation and is associated with clinical outcome. Full article
(This article belongs to the Special Issue The Immune Response to Severe Trauma)
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19 pages, 6620 KB  
Article
Altered Excitation–Inhibition Balance and mGluR1/5-Driven Plasticity in the Motor Cortical Surface in a Rat Model of Parkinson’s Disease
by Hongseong Shin, Yoon Ji Kwon, Hyunjung Hwang, Taewoo Ko, Eun Bi Choi, Yang Tae Kim, Yu Mi Han, Jae Geun Kim, Qiang Zhou, Sungchil Yang and Sunggu Yang
Int. J. Mol. Sci. 2026, 27(17), 7564; https://doi.org/10.3390/ijms27177564 - 24 Aug 2026
Abstract
Parkinson’s disease (PD) is characterized by progressive dopaminergic degeneration and maladaptive motor cortical plasticity. However, the cellular pathways underlying cortical surface activity in the primary motor cortex (M1) remain unclear, despite serving as a potential target for electrotherapy. We investigated the excitatory–inhibitory (E-I) [...] Read more.
Parkinson’s disease (PD) is characterized by progressive dopaminergic degeneration and maladaptive motor cortical plasticity. However, the cellular pathways underlying cortical surface activity in the primary motor cortex (M1) remain unclear, despite serving as a potential target for electrotherapy. We investigated the excitatory–inhibitory (E-I) balance and synaptic plasticity of superficial M1 circuits in a unilateral 6-hydroxydopamine (6-OHDA)-induced rat model of PD. Using extracellular local field potential and whole-cell patch recordings from the contralateral and ipsilateral M1 hemispheres of hemi-parkinsonian rats, we observed a significantly elevated field excitatory postsynaptic potential (fEPSP) input–output function but unchanged intrinsic neuronal excitability in the M1 superficial layer. An altered relative contribution between alpha-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid receptor (AMPAR)- and N-methyl-D-aspartate receptor (NMDAR)-mediated transmission was reflected by a significantly increased AMPA/NMDA ratio. Markedly reduced inhibitory synaptic tone was also evidenced by the decreased amplitude and frequency of spontaneous inhibitory postsynaptic currents (sIPSCs), supporting an E-I imbalance favoring excitation in PD. Furthermore, group I metabotropic glutamate receptor (mGluR1/5)-dependent long-term depression (LTD) was abolished in the ipsilateral PD hemisphere, whereas NMDAR-dependent LTD remained intact. In summary, dopamine depletion appears to enhance network excitation and disrupt mGluR1/5-mediated control of M1 surface circuitry. Our findings identify altered cortical surface mGluR-dependent plasticity in the hemi-parkinsonian model; however, the relationship between these electrophysiological alterations and individual motor outcomes remains to be determined. Full article
(This article belongs to the Section Molecular Neurobiology)
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24 pages, 20236 KB  
Article
GPR81 Regulates MCT1 Membrane Translocation Through a PKA-Dependent Signaling Pathway in Rat Podocytes
by Klaudia Grochowalska, Maria Szrejder, Irena Audzeyenka and Agnieszka Piwkowska
Int. J. Mol. Sci. 2026, 27(17), 7563; https://doi.org/10.3390/ijms27177563 - 24 Aug 2026
Abstract
Podocytes and their foot processes form a functional layer of the glomerular filtration barrier. Due to their unique morphology and function, podocytes employ distinct nutrient pathways to maintain the bioenergetic balance, with lactate being one of several available energy substrates. Enhanced lactate intake [...] Read more.
Podocytes and their foot processes form a functional layer of the glomerular filtration barrier. Due to their unique morphology and function, podocytes employ distinct nutrient pathways to maintain the bioenergetic balance, with lactate being one of several available energy substrates. Enhanced lactate intake modulates the redox state of the cell by increasing mitochondrial respiration and reactive oxygen species production. Monocarboxylate transporter 1 (MCT1) is the primary lactate transporter, and alterations in its surface expression may contribute to the regulation of lactate uptake in podocytes. Beyond its metabolic role, lactate also acts as a crucial signaling molecule by binding to G-protein-coupled receptor 81 (GPR81), mediating a wide range of physiological effects through the inhibition of protein kinase A (PKA). The present study investigated novel regulatory mechanisms of MCT1 internalization, which depend on GPR81 signaling and PKA activity in primary rat podocytes, through the biotinylation assay. Surprisingly, both PKA inhibition (with H89 and PKI 14–22) and activation (with 8-bromo-cAMP and H2O2) increased MCT1 internalization. GPR81 was also found to regulate MCT1 membrane trafficking, likely through the modulation of PKA activity but also potentially through PKA-independent mechanism. Additionally, general dynamic changes in endocytic activity were detected under the present conditions with pHrodo-dextran fluorescence analysis. These results suggest that the modulation of PKA activity and GPR81 signaling may regulate lactate transport via MCT1, thereby ensuring its proper metabolic function in podocytes. Full article
(This article belongs to the Section Biochemistry)
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10 pages, 1627 KB  
Case Report
Severe Upper Gastrointestinal Bleeding in a 12-Year-Old Boy with Acute SARS-CoV-2 Infection Complicating Perforated Appendicitis: A Case Report and Differential Considerations
by Kristina Yotova, Nikolay Balgaranov, Venetsiya Bozhanova and Stanimira Elkina
Gastroenterol. Insights 2026, 17(3), 47; https://doi.org/10.3390/gastroent17030047 - 24 Aug 2026
Abstract
Background: Gastrointestinal (GI) involvement is increasingly recognised in paediatric SARS-CoV-2 infection and multisystem inflammatory syndrome in children (MIS-C), but severe GI bleeding remains rare. Its pathogenesis in this setting is multifactorial: direct viral injury, hyperinflammatory microvascular damage, treatment-related mucosal injury, and coagulopathy may [...] Read more.
Background: Gastrointestinal (GI) involvement is increasingly recognised in paediatric SARS-CoV-2 infection and multisystem inflammatory syndrome in children (MIS-C), but severe GI bleeding remains rare. Its pathogenesis in this setting is multifactorial: direct viral injury, hyperinflammatory microvascular damage, treatment-related mucosal injury, and coagulopathy may all contribute, and the relative role of each is often difficult to disentangle. Case Presentation: A previously healthy 12-year-old boy underwent appendectomy for perforated appendicitis with peritonitis. On postoperative Day 1, he developed high fever and was found to be SARS-CoV-2 PCR-positive; SARS-CoV-2 IgM and IgG were also positive. He met the positive clinical elements of the CDC 2023 case definition for MIS-C (persistent fever, multisystem involvement—gastrointestinal, hepatic, haematological, and markedly elevated inflammatory markers), although perforated appendicitis with peritonitis is a sufficient alternative explanation and the diagnosis cannot be regarded as secure (see Discussion). Treatment included broad-spectrum antibiotics (meropenem, amikacin, metronidazole), methylprednisolone 2 mg/kg/day, and intravenous immunoglobulin (IVIG) 2 g/kg. On Day 4 in the paediatric intensive care unit (PICU), the patient developed sudden haematemesis with fresh blood through the nasogastric tube and haemodynamic collapse. Coagulation studies revealed prolonged INR (1.6) and reduced prothrombin activity (42%). The patient was stabilised with packed red blood cells, fresh frozen plasma, and intravenous vitamin K. Fibrogastroscopy demonstrated diffuse mucosal bleeding without ulcers or anatomical defects; histology showed mucosal hyperaemia, mixed basal inflammation with intraepithelial lymphocytes, and small erosions. Melena persisted for several days. The child recovered fully and was discharged after 20 days with substantially improved but not fully normalised laboratory values (residual mild anaemia, Hb 110 g/L, and elevated CRP 32.7 mg/L and D-dimer 5.88 mg/L). Conclusions: Severe upper GI bleeding is a rare but life-threatening event in children with severe SARS-CoV-2 infection and MIS-C. In our case, several mechanisms may have acted in combination, although none could be confirmed individually: possible direct viral enterocyte injury via ACE-2 receptors, hyperinflammatory microangiopathy, high-dose corticosteroid-related mucosal injury, possible broad-spectrum antibiotic-associated vitamin K deficiency, and postoperative critical-illness stress. Their relative contributions cannot be determined from a single retrospective case. Bleeding occurred despite continuous PPI prophylaxis, suggesting that PPI cover alone is insufficient when multiple risk factors coexist; the clinical implication is that risk-factor-based (rather than universal) PPI prophylaxis, together with monitoring of vitamin K-dependent coagulation, should be considered in critically ill children receiving high-dose corticosteroids and prolonged broad-spectrum antibiotics. Full article
(This article belongs to the Section Alimentary Tract)
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23 pages, 4280 KB  
Review
Receptor Tyrosine Kinases (RTKs) and Receptor Protein Tyrosine Phosphatases (RPTPs) in Mammalian Signal Transduction: When Opposites Attract
by Sofia F. Forti and Fabio L. Forti
Kinases Phosphatases 2026, 4(3), 21; https://doi.org/10.3390/kinasesphosphatases4030021 - 24 Aug 2026
Abstract
Protein tyrosine kinases (PTKs) and protein tyrosine phosphatases (PTPs) constitute two major superfamilies of signaling enzymes in mammals, displaying comparable genomic representation (~100 genes each) and numbers of catalytically active proteins (~80 enzymes each). Both families include receptor and non-receptor forms; however, their [...] Read more.
Protein tyrosine kinases (PTKs) and protein tyrosine phosphatases (PTPs) constitute two major superfamilies of signaling enzymes in mammals, displaying comparable genomic representation (~100 genes each) and numbers of catalytically active proteins (~80 enzymes each). Both families include receptor and non-receptor forms; however, their distributions differ substantially. PTKs comprise approximately 58 receptor tyrosine kinases (RTKs), whereas PTPs include only circa 21 receptor protein tyrosine phosphatases (RPTPs). Despite these differences, RTKs and RPTPs share a common structural organization consisting of (i) an extracellular domain responsible for ligand recognition; (ii) a single-pass transmembrane domain anchoring the receptor to the plasma membrane; and (iii) an intracellular catalytic domain containing either kinase or phosphatase activity. Signal transduction mediated by RTKs and RPTPs generally depends on ligand binding and receptor dimerization. Remarkably, although these receptor families regulate signaling through fundamentally opposite molecular mechanisms, both are essential for controlling cell proliferation, adhesion, migration, differentiation, development, and survival. RTKs have been more extensively characterized than RPTPs; nevertheless, both receptor classes function as critical regulators of intercellular and intracellular communication pathways. Moreover, their membrane-associated localization makes them attractive targets for therapy in multiple human diseases, particularly cancer and neurological disorders. Full article
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19 pages, 3601 KB  
Article
Transcriptomic Profiling Reveals Candidate lncRNA-S100-GPCR Co-Expression Networks in Lungs of Piglets Infected with Glaesserella parasuis
by Jiayi Zeng, Xinqi Zeng, Xiangwei Deng, Shijia Duan, Ke Xu, Huanhuan Zhou and Hongbo Chen
Animals 2026, 16(17), 2645; https://doi.org/10.3390/ani16172645 - 24 Aug 2026
Abstract
Glaesserella parasuis (G. parasuis) is a major respiratory pathogen in piglets, but the regulatory mechanisms underlying its induced pulmonary inflammation remain poorly understood. In this study, whole-transcriptome sequencing was carried out on lung tissues from colostrum-deprived piglets with mild and severe [...] Read more.
Glaesserella parasuis (G. parasuis) is a major respiratory pathogen in piglets, but the regulatory mechanisms underlying its induced pulmonary inflammation remain poorly understood. In this study, whole-transcriptome sequencing was carried out on lung tissues from colostrum-deprived piglets with mild and severe serotype 5 G. parasuis infection and healthy controls. Differential expression (DE) analysis revealed 299 nominally DE mRNAs and 408 nominally DE lncRNAs in the mild group, increasing to 625 and 1193, respectively, in the severe group. Ingenuity Pathway Analysis identified the S100 family signaling pathway as a core inflammatory module predicted to be activated across both infection grades, with its transcriptional involvement expanding from 8 genes in mild infection to 42 genes in severe infection. Notably, G-protein-coupled receptors (GPCRs) accounted for nearly half (19/42) of the S100-associated DE genes in severe infection, covering multiple functional categories including chemokine receptors, lipid mediator receptors, and metabotropic receptors, suggesting systemic activation of the GPCR family in severe inflammation. Weighted gene co-expression network analysis identified multiple lncRNA candidates, among which two—LOC110256217 and LOC110259349—showed severity-associated connectivity patterns and were selected for further validation. Following G. parasuis infection, time-series RT-qPCR in 3D4/21 cells confirmed their co-expression with corresponding mRNAs and revealed distinct temporal patterns, suggesting their potential differential involvement at early and late stages of the inflammatory response. Collectively, these findings identify a putative lncRNA-S100-GPCR-associated inflammatory module linked to pulmonary inflammation in G. parasuis infection, providing a transcriptomic resource and candidate lncRNA-mRNA pairs for further functional studies and investigation into host resilience. Given the limited sample size (n = 3 per group), these findings should be considered exploratory and warrant validation in larger cohorts. Full article
(This article belongs to the Special Issue Animal Diseases, Inflammatory Responses, and Rational Antibiotic Use)
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13 pages, 757 KB  
Review
Cannabis and Wound Healing: A Narrative Review of Current Evidence and Applications to Facial Plastic Surgery
by Bita Rashed Naimi and David B. Hom
J. Pers. Med. 2026, 16(9), 442; https://doi.org/10.3390/jpm16090442 - 24 Aug 2026
Abstract
Cannabis use has increased substantially in the United States, driven by broader legalization, decriminalization, and expanding medical and recreational availability. For facial plastic surgeons, the clinical implications remain difficult to define because “cannabis use” encompasses heterogeneous products and routes, including smoked flower, vaping, [...] Read more.
Cannabis use has increased substantially in the United States, driven by broader legalization, decriminalization, and expanding medical and recreational availability. For facial plastic surgeons, the clinical implications remain difficult to define because “cannabis use” encompasses heterogeneous products and routes, including smoked flower, vaping, concentrates, edibles, pharmaceutical cannabinoids, topical cannabidiol (CBD), and frequent co-use with tobacco or nicotine. Current evidence suggests that systemic cannabis use, particularly inhaled or heavy perioperative use, may be associated with increased surgical complications in selected populations; however, existing studies are limited by retrospective design, inconsistent exposure definitions, inadequate dose and route characterization, and confounding by tobacco use and comorbidities. Cannabinoids exert biologic effects through the endocannabinoid system, particularly CB1 and CB2 receptors, which are expressed in the central nervous system, immune cells, vasculature, and skin. These pathways influence inflammation, keratinocyte proliferation, fibroblast activity, angiogenesis, immune surveillance, pain signaling, and tissue remodeling. The net effect of cannabinoid exposure on wound healing is likely context dependent, varying based on receptor expression, wound-healing phase, route of administration, cannabinoid composition, local tissue environment, and patient-specific risk factors. Preclinical and early dermatologic literature suggests potential therapeutic roles for topical cannabinoids, especially CBD, in modulating inflammation and epithelial repair. In contrast, systemic perioperative cannabis use has been associated in several surgical cohorts with infection, delayed healing, hematoma, nonunion, and reoperation. Evidence specific to facial plastic surgery remains sparse. The most directly relevant study evaluated cannabis and tobacco use in patients undergoing operative mandibular fracture repair. Cannabis-only use was not associated with increased complications, although the cohort was small; concurrent cannabis and tobacco use was associated with higher rates of surgical site infection, facial nonunion, abscess, debridement, and malocclusion. To date, no published studies address cannabis-associated outcomes in rhinoplasty, rhytidectomy, blepharoplasty, browlift, or facial rejuvenation. This review summarizes the biologic rationale, available surgical evidence, and clinical considerations for incorporating cannabis use into individualized perioperative risk assessment in facial plastic surgery. Full article
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20 pages, 11132 KB  
Article
Enhanced Immunogenicity and Distinct Local Tissue Responses of Porcine Circovirus Type 2 Vaccination in Pigs Using a Needle-Free Jet Injection System
by Zihui Jiao, Haiyan Wang, Xiangfei Meng, Mingfa Yang, Chunyuan Dai, Zhaoxuan Zhu, Xinzi Guo, Ping Yang and Yu Lu
Vet. Sci. 2026, 13(9), 854; https://doi.org/10.3390/vetsci13090854 - 23 Aug 2026
Abstract
Conventional needle-based vaccination may cause tissue injury and increase the risk of cross-contamination between animals. This study evaluated the immunological effects of delivering an inactivated porcine circovirus type 2 (PCV2) vaccine using a needle-free jet injection system compared with needle injection in pigs. [...] Read more.
Conventional needle-based vaccination may cause tissue injury and increase the risk of cross-contamination between animals. This study evaluated the immunological effects of delivering an inactivated porcine circovirus type 2 (PCV2) vaccine using a needle-free jet injection system compared with needle injection in pigs. Immune responses were assessed using enzyme-linked immunosorbent assay (ELISA) for PCV2-specific antibody levels on days 7, 14, and 28 post-vaccination. Cellular architecture at injection sites and differential gene expression were analyzed using immunohistochemistry and transcriptome sequencing. Results showed that pigs receiving needle-free vaccination at 0.50 mL and 0.75 mL injection volumes exhibited higher PCV2-specific antibody responses than pigs receiving 1.0 mL needle injection. Needle-free vaccination also preserved dermal collagen fiber architecture, altered antigen-presenting cell distribution, and was associated with distinct activation of immune-related pathways, particularly those involved in leukocyte migration and cytokine-cytokine receptor interactions. These findings indicate that needle-free vaccination was associated with distinct PCV2-specific antibody responses and local immune microenvironment changes, supporting its potential as an alternative vaccine delivery strategy for swine PCV2 vaccination. Full article
(This article belongs to the Section Veterinary Microbiology, Parasitology and Immunology)
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21 pages, 10096 KB  
Article
Comparison of the Utility of Amplitude–Spectral and Coherence Features of Psychotropic Drugs’ Action on ECoG Signal for Pharmaco-EEG Based Drug Screening in Rats
by Yuriy I. Sysoev, Nikita S. Kurmazov, Darya D. Shitc and Sergey V. Okovityi
Methods Protoc. 2026, 9(5), 123; https://doi.org/10.3390/mps9050123 - 23 Aug 2026
Abstract
A naive Bayesian classifier (NBC) combined with principal component analysis (PCA) effectively differentiates the dose-dependent effects of certain groups of psychoactive drugs based on their impact on the amplitude–spectral characteristics of electrocorticograms (ECoG) in rats. This approach has been shown to be useful [...] Read more.
A naive Bayesian classifier (NBC) combined with principal component analysis (PCA) effectively differentiates the dose-dependent effects of certain groups of psychoactive drugs based on their impact on the amplitude–spectral characteristics of electrocorticograms (ECoG) in rats. This approach has been shown to be useful for pharmacological screening of agents with unknown or poorly understood activity. Despite previously obtained optimistic results, classification determination for some drugs was inaccurate, necessitating the search for possible ways to improve the predictive effectiveness of the proposed algorithm. One possible approach would be to use as input quantitative data not only the impact of the psychoactive drugs studied on the amplitude–spectral characteristics of ECoG but also connectivity changes, including the average coherence power of different pairs of leads. The aim of this study was to compare the accuracy of NBC in classifying the pharmacological mechanism of action of agents with well-known mechanisms (test set) using pharmaco-EEG data on changes in the amplitude–spectral characteristics of ECoG, coherence, and the combined use of two data sets. Materials and methods. Experiments were performed on Wistar rats with chronically implanted ECoG electrodes. The training set, relative to which the effects of the pharmacological agents from the test set were classified, were the matrices of effects of 12 pharmacological agents: the NMDA antagonist dizocilpine, the D2/D3 antagonists haloperidol and sulpiride, the M-anticholinergic tropicamide, the H1/5HT2A receptor blocker hydroxyzine, the acetylcholinesterase inhibitor galantamine, the alpha-2 adrenergic agonist dexmedetomidine, the alpha-2 adrenergic antagonist atipamezole, the adenosine receptor blocker caffeine and the GABA-mimetics aminophenylbutyric acid (phenibut), bromdihydrochlorophenylbenzodiazepine (phenazepam) and 5-ethyl-5-phenyl-2,4,6(1H,3H,5H)-pyrimidinetrione. The test set included various drugs with tropism for the targets of the training set drugs: dopamine receptor antagonists chlorpromazine, droperidol, tiapride and raclopride, H1-histamine blockers diphenhydramine and promethazine, 5-HT2-receptor blockers ritanserin and glemenserin, acetylcholinesterase inhibitor ipidacrine, alpha2-adrenergic receptor antagonist yohimbine, alpha2-adrenergic agonists medetomidine and xylazine, GABA-mimetics 5-ethyl-5-(1-methylbutyl)-2,4,6(1H,3H,5H)-pyrimidinetrione and chloral hydrate. The analysis of the ECoG signal included the calculation of 132 amplitude–spectral characteristics and 75 coherence indicators, which, using the PCA, led to new integrative indicators used for further classification of the NBC. Results and discussion. For each drug in the test set, the median similarity probability with a particular group from the training set was calculated, which was used to assess the classification quality. It was found that, when using the amplitude–spectral characteristics of ECoG, the proposed methodological approach allows for the identification of the ECoG effects of several groups of psychoactive drugs, including D2/D3-dopamine, M-cholinergic, H1-histamine, and 5-HT2-serotonin receptor blockers, AChE inhibitors, GABA-mimetics, and alpha-2-adrenergic receptor agonists and antagonists. This approach enabled the correct classification of 18 of 24 groups in the test set. When using changes in coherence indices as the initial data, the classification accuracy also amounted to 18 of 24 groups. When combining the two data sets, the number of correctly identified NBC groups was 20 of 24 groups. When comparing the classification during training (confusion matrix), it was found that coherence data or adding coherence data to the data based on changes in amplitude–spectral characteristics leads to a statistically significant (p < 0.01 in both cases) increase in accuracy. Conclusions. The obtained data demonstrated high accuracy in classifying the pharmacological activity of the test sample drugs using any of the three compared approaches. Despite the lack of statistically significant differences between them, classification based on the combined dataset demonstrated a higher number of “correct” similarities. This allows us to recommend the approach based on combined data of drug effects on amplitude–spectral characteristics and coherence as the most promising for further studies using pharmaco-EEG screening. Full article
(This article belongs to the Special Issue Advanced Methods and Technologies in Drug Discovery)
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23 pages, 2615 KB  
Review
Heme Oxygenase-1 in Bone Remodeling: Molecular Mechanisms and Therapeutic Implications
by Thanawat Pattananandecha, Sutasinee Apichai, Chalermpong Saenjum and Young-Joon Surh
Biomolecules 2026, 16(9), 1224; https://doi.org/10.3390/biom16091224 - 23 Aug 2026
Abstract
Bone remodeling is a dynamic and tightly regulated process that maintains skeletal homeostasis through a balance between bone formation by osteoblasts and bone resorption by osteoclasts. Disruption of this balance contributes to the development of bone-related disorders, particularly osteopenia, osteoporosis and osteogenesis imperfecta, [...] Read more.
Bone remodeling is a dynamic and tightly regulated process that maintains skeletal homeostasis through a balance between bone formation by osteoblasts and bone resorption by osteoclasts. Disruption of this balance contributes to the development of bone-related disorders, particularly osteopenia, osteoporosis and osteogenesis imperfecta, which weaken, deform, or cause fractures. Increasing evidence indicates that oxidative stress and chronic inflammation impair osteoblast functions while promoting osteoclast differentiation and activity. Heme oxygenase-1 (HO-1) is a stress-inducible enzyme with cytoprotective, antioxidant, and anti-inflammatory properties. Besides its primary role in cellular defense against oxidative stress and inflammatory damage, HO-1 has been shown to be involved in both osteoblast differentiation and osteoclastogenesis. Through its interaction with key regulatory systems, including the receptor activator of nuclear factor κB (RANK)–receptor activator of nuclear factor κB ligand (RANKL)–osteoprotegerin axis and redox-sensitive signaling pathways, HO-1 contributes to maintenance of optimal bone remodeling. The enzyme also plays a role in modulating metabolic processes in the bone. This review highlights the role of HO-1 in bone formation, bone resorption, and related pathophysiologic conditions. Furthermore, the therapeutic potential of HO-1 as a target for bone disorders is discussed. Full article
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16 pages, 2748 KB  
Article
LEAP2 Regulates Insulin Secretion from INS-1E Beta Cells and Rat Pancreatic Islets: An In Vitro Study
by Oskar Sosiński, Ewa Pruszyńska-Oszmałek, Maciej Sassek, Natalia Leciejewska, Piotr Pawlak and Paweł Antoni Kołodziejski
Int. J. Mol. Sci. 2026, 27(17), 7536; https://doi.org/10.3390/ijms27177536 - 23 Aug 2026
Abstract
LEAP2 is an endogenous antagonist and inverse agonist of GHSR-1a, the receptor for acyl-ghrelin. Although LEAP2 is increasingly recognized as a regulator of appetite and glucose homeostasis, its direct effects on pancreatic endocrine cells remain incompletely understood. The present in vitro study evaluated [...] Read more.
LEAP2 is an endogenous antagonist and inverse agonist of GHSR-1a, the receptor for acyl-ghrelin. Although LEAP2 is increasingly recognized as a regulator of appetite and glucose homeostasis, its direct effects on pancreatic endocrine cells remain incompletely understood. The present in vitro study evaluated whether LEAP2 modulates insulin secretion and the expression of insulin-related genes in INS-1E beta cells and isolated rat pancreatic islets. LEAP2 treatment altered selected components of the insulin-related expression profile in a model- and time-dependent manner. In INS-1E cells, LEAP2 increased insulin protein expression after 6 h and IRSII protein expression after 24 h, whereas effects on mRNA expression were variable. In isolated rat islets, LEAP2 increased INS2 mRNA expression and decreased GHSR-1a and preproghrelin mRNA expression under the tested conditions. Acute exposure to 100 nM LEAP2 increased basal insulin release from both INS-1E cells and isolated islets. Immunofluorescence and Western blot analyses detected LEAP2- and GHSR-1a-related immunoreactivity in pancreatic models. LEAP2 did not adversely affect INS-1E cell metabolic activity, proliferation, or apoptosis. Overall, these data suggest that LEAP2 can modulate pancreatic endocrine cell function under in vitro conditions, but further studies using standard glucose-stimulated insulin secretion protocols and in vivo models are required to define its physiological relevance. Full article
(This article belongs to the Section Molecular Biology)
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18 pages, 12547 KB  
Article
Integrating Network Pharmacology and Metabolomics to Decipher the Mechanisms Underlying the Therapeutic Effects of Wuzhi Dripping Pills Against MASLD
by Huijun Wang, Miaoyuan Zhang, Kangkang Gao, Yaping Zhou, Aoxing Xiao, Jinyi Liu and Xiangjun Qiu
Metabolites 2026, 16(9), 601; https://doi.org/10.3390/metabo16090601 - 22 Aug 2026
Abstract
Background: Metabolic Dysfunction-Associated Steatotic Liver Disease (MASLD) is a progressive condition predisposing to cirrhosis and hepatocellular carcinoma, with prevalence rising globally. Yet effective therapies remain limited. Wuzhi Dripping Pills (WZDP), derived from Schisandra sphenanthera, possess hepatoprotective and anti-inflammatory properties, though their [...] Read more.
Background: Metabolic Dysfunction-Associated Steatotic Liver Disease (MASLD) is a progressive condition predisposing to cirrhosis and hepatocellular carcinoma, with prevalence rising globally. Yet effective therapies remain limited. Wuzhi Dripping Pills (WZDP), derived from Schisandra sphenanthera, possess hepatoprotective and anti-inflammatory properties, though their efficacy against MASLD remains unexplored. Methods: Network pharmacology predicted active ingredients and targets, followed by KEGG enrichment analysis. A high-fat diet MASLD rat model was established to evaluate WZDP effects on weight, liver index, and serum markers. Serum metabolomic profiling via UPLC-MS/MS, combined with multivariate statistics and KEGG annotation, identified perturbed pathways. Results: Twelve bioactive compounds and 434 WZDP targets were retrieved, of which 74 intersected with 838 MASLD-associated genes. Enrichment implicated AGE-RAGE, insulin resistance, and HIF-1 signaling. In vivo, WZDP significantly improved anthropometric and biochemical parameters. Metabolomic analysis distinctly separated WZDP-treated from model groups, highlighting phospholipase D signaling as a key differential pathway. Conclusions: This integrative approach confirms that WZDP confers therapeutic benefits in MASLD through coordinated regulation of neuroactive ligand–receptor interaction, bile acid biosynthesis, phospholipase D signaling, and arginine–proline metabolism. Our findings furnish a molecular and metabolic rationale for further mechanistic studies and drug discovery efforts. Full article
(This article belongs to the Special Issue Metabolomics and MASLD: Pathways, Biomarkers, and Clinical Insights)
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