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Keywords = immune–metabolic interactions

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18 pages, 1896 KB  
Review
The Gut–Ear Axis: From Dysbiosis to Auditory and Vestibular Disorders
by Yutian Li, Xinyu Shi, Xiaozhou Liu and Yu Sun
Int. J. Mol. Sci. 2026, 27(17), 7523; https://doi.org/10.3390/ijms27177523 (registering DOI) - 22 Aug 2026
Abstract
With further research on the relationship between gut microbiota and human health, discussions on various gut-X axis have been increasingly prevalent. Evidence indicates that microbiota dysbiosis is closely linked to the onset and progression of audiovestibular disorders and the gut-ear axis has gradually [...] Read more.
With further research on the relationship between gut microbiota and human health, discussions on various gut-X axis have been increasingly prevalent. Evidence indicates that microbiota dysbiosis is closely linked to the onset and progression of audiovestibular disorders and the gut-ear axis has gradually been recognized as a vital systemic regulatory pathway. This article systematically reviewed the interaction mechanisms between microbiota dysbiosis and audiovestibular diseases, intervention strategies, research limitations and future perspectives. This axis functions mainly through immune-mediated barrier damage, metabolic disorder and neurotransmitter crosstalk. Modulation of the gut microbiota can alleviate symptoms of certain audiovestibular disorders. This review aims to provide novel insights for the pathogenesis, intervention and clinical management of audiovestibular disorders. Full article
(This article belongs to the Special Issue Research in Nutritional Physiology and Gut Microbiome)
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46 pages, 3829 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
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)
17 pages, 2715 KB  
Article
SMAD7-Associated Glycolytic Regulation Promotes Lactate-Dependent Macrophage Phenotype Modulation in Colorectal Cancer
by Marco Colella, Andrea Iannucci, Rachele Frascatani, Claudia Maresca, Viviana Casagrande, Vincenzo Formica, Edoardo Troncone, Andrea Divizia, Massimo Federici and Giovanni Monteleone
Cancers 2026, 18(16), 2719; https://doi.org/10.3390/cancers18162719 - 21 Aug 2026
Abstract
Colorectal cancer (CRC) progression is shaped by dynamic interactions between tumor-intrinsic metabolic adaptations and immune remodeling within the tumor microenvironment. In CRC, the expression of SMAD7, a classical inhibitor of TGF-β1 signaling, is increased and has been associated with tumor-associated inflammatory responses and [...] Read more.
Colorectal cancer (CRC) progression is shaped by dynamic interactions between tumor-intrinsic metabolic adaptations and immune remodeling within the tumor microenvironment. In CRC, the expression of SMAD7, a classical inhibitor of TGF-β1 signaling, is increased and has been associated with tumor-associated inflammatory responses and malignant progression. In this study, we investigated the potential role of SMAD7 in regulating glycolytic metabolism and macrophage phenotype in CRC. Knockdown of SMAD7 in CRC cell lines resulted in reduced glycolytic activity, as demonstrated by decreased extracellular acidification rate, basal glycolysis, and glycolytic capacity. These metabolic changes were associated with reduced expression of the basal and IL-6- and IL-22-induced glycolytic enzyme hexokinase 2 (HK2), while glucose uptake was increased. Similar reductions in HK2 expression were observed in patient-derived CRC organoids following SMAD7 inhibition, supporting the relevance of this pathway in human tumor-derived models. Functionally, SMAD7 knockdown reduced lactate production by CRC cells and diminished the ability of tumor cell-derived conditioned medium to induce the expression of macrophage-associated immunoregulatory markers, including CD163, CD206, and ARG1. The addition of exogenous lactate restored these effects, indicating that tumor-derived lactate contributes to SMAD7-dependent control of the expression of macrophage-associated immunoregulatory markers. Analysis of human CRC transcriptomic datasets revealed positive associations between SMAD7 expression and macrophage-related signatures, including profiles associated with immunoregulatory tumor-associated macrophages. Together, these findings support a potential role for SMAD7 in controlling tumor metabolism and macrophage-associated immunoregulatory markers in CRC. Full article
(This article belongs to the Section Tumor Microenvironment)
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20 pages, 17671 KB  
Article
Lead Is Toxic to Neuronal Cells by Inducing Oxidative Stress and Activating Neuroinflammatory Pathways
by Khulud Badawi, Abdulrahman Mujalli, Wadyan Owaydhah, Basma Elsharazly, Ping Chen, Vic K. T. Sun, Ola Negm, Raheela Khan and Wayne G. Carter
Brain Sci. 2026, 16(8), 889; https://doi.org/10.3390/brainsci16080889 - 20 Aug 2026
Viewed by 65
Abstract
Background/Objectives: Exposure to lead (Pb) is a serious public health concern for which there is no safe level. The aim of this study was to investigate the toxicity of Pb to undifferentiated (uSH-SY5Y) and differentiated (dSH-SY5Y) human neuroblastoma cells and to evaluate gene [...] Read more.
Background/Objectives: Exposure to lead (Pb) is a serious public health concern for which there is no safe level. The aim of this study was to investigate the toxicity of Pb to undifferentiated (uSH-SY5Y) and differentiated (dSH-SY5Y) human neuroblastoma cells and to evaluate gene transcription in response to sub-lethal lead exposure. Methods: Pb was applied to uSH-SY5Y and dSH-SY5Y cells across a concentration range of 0–5 mM for 4, 6, and 24 h, and cell viability was assessed using 3-(4, 5-dimethylthiazol-2-yl)-2, 5-diphenyltetrazolium bromide (MTT) and lactate dehydrogenase assays. Results: Pb induced a significant concentration- and exposure-dependent reduction in cell viability. Pb significantly impacted cellular bioenergetics and reduced ATP production in a concentration- and exposure duration-dependent manner, triggering elevated levels of deleterious reactive oxygen species. Transcriptomic profiling in dSH-SY5Y cells after a sub-lethal 24 h exposure to 1.25 mM Pb revealed 757 upregulated and 2206 downregulated genes. From Gene Ontology and KEGG pathway enrichment analysis, biological processes were predominantly associated with immune and inflammatory processes, including cytokine-mediated signalling. Upregulated differentially expressed genes (DEGs) included those for PI3K/Akt and cytokine signalling, and downregulated DEGs included genes linked to spinocerebellar ataxia, mitophagy, cytokine receptor interaction and cellular metabolism. Protein–protein interaction analysis identified six key hub-upregulated genes with a primarily inflammatory focus (CD44, CXCR4, PTGS2, IL1β, TNF, MMP9) and one downregulated gene (CD4) as potential regulators of Pb-induced cellular responses. Disease association analyses revealed links to chemical carcinogenesis and neurodegenerative diseases. Conclusions: Collectively, these findings provide molecular insights into Pb-induced neurotoxicity and highlight a network of genes that converge on neurological and inflammatory pathways, which are candidates for further mechanistic investigation and possible therapeutic targeting following Pb poisoning. Full article
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24 pages, 10152 KB  
Article
Tumor-Intrinsic DNA Damage Signaling Is Associated with MHC-I Expression and CD8 Cytotoxic T-Cell Engagement in Triple-Negative Breast Cancer
by Zinab O. Doha, Ezzat AbuAzzah and Hakeemah H. Al-Nakhle
Curr. Issues Mol. Biol. 2026, 48(8), 846; https://doi.org/10.3390/cimb48080846 - 20 Aug 2026
Viewed by 79
Abstract
Triple-negative breast cancer (TNBC) is characterized by marked immune microenvironment heterogeneity and variable chemotherapy response, yet the epithelial transcriptional programs governing cytotoxic immune activation remain poorly understood. We performed an exploratory, integrative analysis using single-cell RNA sequencing of 31,962 cells from eight TNBC [...] Read more.
Triple-negative breast cancer (TNBC) is characterized by marked immune microenvironment heterogeneity and variable chemotherapy response, yet the epithelial transcriptional programs governing cytotoxic immune activation remain poorly understood. We performed an exploratory, integrative analysis using single-cell RNA sequencing of 31,962 cells from eight TNBC patients operationally stratified into Good and Bad Prognosis groups based on pathological lymphoid infiltration, a discovery grouping subsequently validated against pathological complete response (pCR) in three independent bulk RNA-seq cohorts. This analysis identified four epithelial transcriptional states. The G5 DNA damage subpopulation—predominantly restricted to Good Prognosis tumors (29.2% vs. 0%)—and the G4 Metabolism subpopulation—2.4-fold enriched in Bad Prognosis—were the primary prognostic signatures. Machine learning validation using nested leave-one-cohort-out (LOCO) cross-validation across 614 samples demonstrated that G4 + G5 raw genes with random forest yielded the largest observed mean AUC of 0.653, though these results are exploratory and do not establish a validated clinical classifier. CellChat ligand–receptor interaction analysis revealed that G5 DNA-damage epithelial cells are the dominant immune activators in Good Prognosis TNBC, predominantly engaging CD8 cytotoxic T cells through MHC-I antigen presentation via HLA-A/B/C/E/F → CD8A/CD8B interactions, the highest-probability signaling pathway identified. Spatial transcriptomics independently validated significantly higher DNA damage and CD8 T-cell scores in Good Prognosis tissue. Together, these exploratory findings suggest a framework in which tumor-intrinsic DNA damage signaling is associated with MHC-I antigen presentation upregulation and CD8 cytotoxic T-cell engagement, supporting further investigation of this axis and its potential implications for combining DNA-damaging chemotherapy with immune checkpoint blockade in TNBC. Full article
(This article belongs to the Section Bioinformatics and Systems Biology)
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26 pages, 1205 KB  
Review
The Liver Tumor Microenvironment in Hepatocellular Carcinoma: Comparisons with Intrahepatic Cholangiocarcinoma and Therapeutic Implications
by Kizuki Yuza, Jun Kawashima, Miho Akabane and Timothy M. Pawlik
Cancers 2026, 18(16), 2696; https://doi.org/10.3390/cancers18162696 - 20 Aug 2026
Viewed by 215
Abstract
The liver is an immunologically distinctive organ. Portal blood continuously delivers gut-derived antigens and microbial products, requiring hepatic immunity to balance surveillance with restraint. In hepatocellular carcinoma (HCC), this physiology is commonly overlaid by chronic injury, inflammation, and fibrosis, so the background liver [...] Read more.
The liver is an immunologically distinctive organ. Portal blood continuously delivers gut-derived antigens and microbial products, requiring hepatic immunity to balance surveillance with restraint. In hepatocellular carcinoma (HCC), this physiology is commonly overlaid by chronic injury, inflammation, and fibrosis, so the background liver forms part of the disease context in which the tumor microenvironment (TME) develops. This review synthesizes how cellular architecture, tumor-intrinsic programs, and structural, metabolic, and microbial conditions interact to shape immune evasion and heterogeneity. HCC provides the principal evidence base, with intrahepatic cholangiocarcinoma (iCCA) used as a structured, biologically distinct comparator. We organize therapies by the microenvironmental barriers they are intended to modify and distinguish established clinical efficacy from evidence that the proposed mechanisms mediate treatment benefit. Single-cell and spatial studies have resolved cellular states and spatial arrangements, including onco-fetal endothelial–myeloid neighborhoods and a macrophage–fibroblast boundary band separating lymphocyte-rich stroma from malignant tissue. These patterns operate within fibrotic and metabolically altered tissue and vary by etiology, spatial context, and tumor type. Vascular endothelial growth factor blockade with immune checkpoint inhibition and dual checkpoint blockade are established first-line options in advanced HCC. Chemo-immunotherapy is established in biliary tract cancer, and IDH1 inhibition has established efficacy in IDH1-mutant cholangiocarcinoma. Myeloid- and stroma-directed strategies, natural-product approaches, and engineered-cell therapies remain preclinical or early clinical. None of the pivotal trials tested whether the proposed microenvironmental mechanism mediated treatment benefit. The liver TME informs treatment selection without yet determining it. Full article
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38 pages, 18784 KB  
Review
Pomegranate (Punica granatum L.) in Veterinary Medicine: A Comprehensive Review of Pharmacological Activities and Species-Specific Therapeutic Applications
by Roberto Bava, Stefano Ruga, Giovanna Liguori, Antonio Giordano, Giancarlo Statti, Mariangela Marrelli, Vincenzo Musella, Ernesto Palma, Domenico Britti, Carmine Lupia and Fabio Castagna
Vet. Sci. 2026, 13(8), 832; https://doi.org/10.3390/vetsci13080832 - 19 Aug 2026
Viewed by 118
Abstract
Punica granatum L. (pomegranate) is one of the oldest medicinal plants known to humankind, valued across ancient civilisations for treating parasitic, microbial, and metabolic diseases. Its exceptionally rich phytochemical composition, dominated by punicalagins, ellagic acid, anthocyanins, flavonoids, piperidine alkaloids, and the unique conjugated [...] Read more.
Punica granatum L. (pomegranate) is one of the oldest medicinal plants known to humankind, valued across ancient civilisations for treating parasitic, microbial, and metabolic diseases. Its exceptionally rich phytochemical composition, dominated by punicalagins, ellagic acid, anthocyanins, flavonoids, piperidine alkaloids, and the unique conjugated fatty acid punicic acid, confers a remarkably broad spectrum of biological activities of direct relevance to contemporary veterinary medicine. While human-health applications have been extensively reviewed, a comprehensive synthesis of veterinary evidence across multiple species remains lacking. This review consolidates current preclinical and field knowledge on the pharmacological effects of pomegranate preparations in poultry, ruminants, swine, fish, companion animals, and laboratory models. In poultry—the most extensively studied taxon—dietary inclusion of pomegranate peel powder or extract consistently enhances growth performance, antioxidant status, and humoral immunity while exerting meaningful anticoccidial activity. The antiparasitic properties are compellingly supported by evidence against gastrointestinal nematodes of ruminants, tapeworms, schistosomes, and protozoa including Giardia, Cryptosporidium, and Leishmania spp., as well as monogenean fish parasites. Broad-spectrum antimicrobial activity extends to major veterinary pathogens such as Salmonella, Escherichia coli, Staphylococcus aureus (including MRSA), and Clostridium perfringens. Rodent models have validated antidiabetic, hepatoprotective, nephroprotective, and reproductive benefits, including improved post-thaw sperm quality and enhanced litter size. The safety profile is generally favourable at conventional doses, although high dietary inclusion elicits anti-nutritional effects from condensed tannins, and potential drug interactions via cytochrome P450 inhibition warrant clinical caution. Despite this substantial evidence, significant translational barriers persist, including extract heterogeneity, absence of pharmacokinetic data in target species, and scarcity of controlled clinical trials. By providing a species- and pathology-driven synthesis, this review identifies critical research priorities and highlights the immense potential of this ancient, accessible, and economically viable phytobiotic as a natural alternative to antibiotic growth promoters and synthetic antiparasitics in veterinary practice. Full article
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32 pages, 47462 KB  
Article
Single-Cell and Machine Learning Analyses Identify a PFKFB3-Centered Regulatory Network and Potential Salidroside Interaction in Coronary Heart Disease
by Haobo Yang, Yonghui Zhang, Yunfeng Yu, Yanan Bai, Jiale Zhu, Ouying Chen, Liping Wang and Weixiong Jian
Int. J. Mol. Sci. 2026, 27(16), 7413; https://doi.org/10.3390/ijms27167413 - 19 Aug 2026
Viewed by 159
Abstract
Coronary heart disease (CHD) is a leading cause of morbidity and mortality, driven by metabolic remodeling, vascular inflammation, and perivascular adipose tissue (PVAT) dysfunction. We integrated bulk transcriptomic datasets to develop a machine learning-based diagnostic model, evaluated 113 algorithms, and identified a seven-gene [...] Read more.
Coronary heart disease (CHD) is a leading cause of morbidity and mortality, driven by metabolic remodeling, vascular inflammation, and perivascular adipose tissue (PVAT) dysfunction. We integrated bulk transcriptomic datasets to develop a machine learning-based diagnostic model, evaluated 113 algorithms, and identified a seven-gene signature (PYGL, PTGS2, PFKFB3, MMP9, CYP1B1, CXCR1, ABCB1) with robust predictive performance. Single-cell RNA sequencing (scRNA-seq) of coronary PVAT revealed substantial cellular heterogeneity and prioritized PFKFB3 as a hub linking glycolytic activity to nuclear factor kappa B (NF-κB) regulon activity. Macrophage-centered communication via secreted phosphoprotein 1 (SPP1), migration inhibitory factor (MIF), and other pathways was enhanced in disease conditions. Virtual knockout of PFKFB3 induced transcriptional changes enriched in immune activation, phagocytosis, and oxidative stress, while molecular dynamics (MD) simulations suggested that salidroside can adopt a stable binding pose within the PFKFB3 pocket, providing structural plausibility for their interaction. Together, these analyses provide a multi-layered framework connecting glycolytic remodeling, inflammatory transcriptional activity, and intercellular signaling in CHD. The findings support PFKFB3 as a potential biomarker and mechanistic hub and suggest that salidroside may modulate its activity. This study offers an integrative computational foundation for future experimental validation and mechanistic exploration of PVAT dysfunction in CHD. Full article
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57 pages, 3719 KB  
Review
Metabolic Outputs of the Gut Microbiome: Implications for Epilepsy
by Allison Gallucci, Xi Guo, Devika Shukla and Susan L. Campbell
Cells 2026, 15(16), 1492; https://doi.org/10.3390/cells15161492 - 19 Aug 2026
Viewed by 356
Abstract
Background: Microbiome-based mechanisms have emerged as a key area of investigation in epilepsy, given the growing recognition that gut microbial communities can modulate central nervous system (CNS) function through the gut–brain axis. Epilepsy is a common chronic neurological disorder affecting more than 65 [...] Read more.
Background: Microbiome-based mechanisms have emerged as a key area of investigation in epilepsy, given the growing recognition that gut microbial communities can modulate central nervous system (CNS) function through the gut–brain axis. Epilepsy is a common chronic neurological disorder affecting more than 65 million people worldwide, and despite the availability of anti-seizure medications (ASMs), approximately 30% of patients develop drug-resistant epilepsy. Current ASMs primarily suppress seizures rather than prevent disease progression, highlighting the need for alternative therapeutic strategies. In this context, increasing evidence supports a role for microbiota-dependent pathways in modulating seizure activity and treatment responsiveness. However, the mechanistic basis of these interactions remains incompletely understood. Methods: This narrative review synthesizes findings from the existing literature to examine the role of microbiota-derived metabolites, including neurotransmitters, vitamins, and the polyphenol metabolite S-equol, in gut–brain communication relevant to epilepsy. Evidence was drawn from both preclinical animal models and clinical studies to provide an integrated, mechanistic perspective on how these pathways may influence central nervous system function and seizure susceptibility. Emphasis was placed on studies describing molecular, metabolic, and signaling mechanisms linking the gut microbiome to epileptogenesis and treatment response. Results: Current evidence indicates that communication between the gut and CNS occurs through neural pathways, such as the vagus nerve, as well as through circulating microbial metabolites. These metabolites can cross the intestinal barrier and, in some cases, the blood–brain barrier (BBB), serving as key mediators of host–microbiota signaling. Emerging studies suggest that while some microbial metabolites may directly influence neuronal hyperexcitability and seizure susceptibility, others likely exert secondary or modulatory effects through broader metabolic and immune pathways. However, the precise mechanisms underlying these interactions remain incompletely understood. Conclusions: Some microbial-derived metabolites may serve as promising biomarkers and mechanistic mediators of epilepsy; however, further investigation is needed to define the molecular and cellular pathways through which these metabolites influence seizure susceptibility and epileptogenesis. Full article
(This article belongs to the Section Cellular Metabolism)
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24 pages, 8605 KB  
Review
Motion as Medicine: Physical Activity, Joint Sensitivity, and Pain Management—A Narrative Review
by Luminita Labusca, Bogdan Puha, Bianca-Ana Dmour, Ilie Onu, Mihaela Camelia Tirnovanu, Ștefan-Dragoș Tîrnovanu and Awad Dmour
Med. Sci. 2026, 14(4), 495; https://doi.org/10.3390/medsci14040495 - 19 Aug 2026
Viewed by 473
Abstract
Background: Physical activity is widely recommended for preserving musculoskeletal health and managing osteoarthritis-related pain, although its benefits are commonly framed in terms of muscle strengthening, weight control, and physical performance. This narrative review aimed to examine movement more broadly as a physiological regulator [...] Read more.
Background: Physical activity is widely recommended for preserving musculoskeletal health and managing osteoarthritis-related pain, although its benefits are commonly framed in terms of muscle strengthening, weight control, and physical performance. This narrative review aimed to examine movement more broadly as a physiological regulator of synovial joint homeostasis, sensory calibration, and functional adaptation. Methods: A structured literature search was performed in PubMed/MEDLINE, Scopus, and Web of Science from database inception to 1 February 2026. Experimental studies, observational studies, clinical trials, systematic reviews, meta-analyses, and selected narrative reviews addressing movement-responsive joint biology or pain regulation were considered. Evidence was synthesized across four interrelated domains: mechanical, fluidic, immune-metabolic, and sensory regulation. Results: The narrative synthesis indicates that the concept of the synovial joint as a dynamic mechano-fluidic organ in which cartilage, synovium, synovial fluid, capsule, subchondral bone, periarticular tissues, and sensory pathways interact continuously. Repeated physiological movement may promote synovial fluid exchange, lubrication, cartilage nutrition, hyaluronic acid and lubricin function, matrix turnover, anti-inflammatory signaling, proprioceptive control, and exercise-induced hypoalgesia. In contrast, inactivity and unloading may impair fluid dynamics, promote muscle inhibition, stiffness, inflammatory persistence, sensory deconditioning, and loss of function. Excessive or poorly distributed loading may also disrupt homeostasis through matrix injury, inflammation, fatigue, and nociceptive sensitization. These findings informed the proposed adaptive loading window, a hypothesis-generating conceptual framework rather than a clinically validated threshold, describing the dynamic range of movement within which joint function and pain regulation may be supported without sustained tissue or symptom aggravation. Conclusions: Movement should be viewed not only as a therapeutic intervention, but also as a continuous regulator of joint biology and perception. Its clinical value may depend on identifying an individualized loading range that supports adaptation, function, and confidence in movement while avoiding both underloading and overload. Full article
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19 pages, 3360 KB  
Review
AMPK-Orchestrated Metabolic Reprogramming in Some Flavivirus Infections: Mechanisms and Therapeutic Opportunities
by Kaci Craft, Imaan Muhammad, Shaokai Pei and Qiyi Tang
Viruses 2026, 18(8), 910; https://doi.org/10.3390/v18080910 - 19 Aug 2026
Viewed by 389
Abstract
5′-Adenosine monophosphate-activated protein kinase (AMPK) is the principal cellular energy sensor that coordinates metabolic adaptation by balancing anabolic and catabolic pathways in response to energic stress. Beyond its canonical role in maintaining energy homeostasis, AMPK has emerged as a central regulator of host–pathogen [...] Read more.
5′-Adenosine monophosphate-activated protein kinase (AMPK) is the principal cellular energy sensor that coordinates metabolic adaptation by balancing anabolic and catabolic pathways in response to energic stress. Beyond its canonical role in maintaining energy homeostasis, AMPK has emerged as a central regulator of host–pathogen interactions by integrating lipid metabolism, autophagy, mitochondrial dynamics, oxidative stress, and innate immune signaling. Flaviviruses, including dengue virus, Zika virus, West Nile virus, Japanese encephalitis virus, and yellow fever virus, extensively remodel host metabolism to establish productive infection. As a master regulator of cellular metabolism, AMPK can either restrict or facilitate flavivirus replication in a context-dependent manner by regulating lipid droplet biogenesis, fatty acid synthesis and beta-oxidation, autophagy, mitochondrial homeostasis, and interferon-mediated antiviral responses. Conversely, flaviviruses actively manipulate AMPK signaling and its downstream metabolic networks to promote endoplasmic reticulum remodeling, replication organelle biogenesis, energy production, and immune evasion. In this review, we summarize recent advances in understanding the multifaceted roles of AMPK during flavivirus infection, with an emphasis on its regulation of metabolic reprogramming, organelle remodeling, and antiviral immunity. We further discuss the therapeutic potential of pharmacologically targeting AMPK and its downstream pathways as a host-directed strategy for broad-spectrum antiviral intervention against flaviviruses. Full article
(This article belongs to the Section Viral Immunology, Vaccines, and Antivirals)
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13 pages, 3496 KB  
Article
Transcriptional Profiling of the Landes Goose Cecum Following Infection with Eimeria stigmosa Isolated from Shanxi Province, North China
by Shuo Li, Ya-Qi Bu, Qian Liu, Zi-Rui Wang, Xing-Quan Zhu and Qing Liu
Microorganisms 2026, 14(8), 1828; https://doi.org/10.3390/microorganisms14081828 - 18 Aug 2026
Viewed by 125
Abstract
Though a number of Eimeria species have been described in geese, the host responses to these parasites at the molecular level have yet to be explored. In the present study, fresh fecal samples were collected for single-oocyst isolation. The recovered oocysts were identified [...] Read more.
Though a number of Eimeria species have been described in geese, the host responses to these parasites at the molecular level have yet to be explored. In the present study, fresh fecal samples were collected for single-oocyst isolation. The recovered oocysts were identified based on molecular analysis using PCR and sequencing. Subsequently, we examined the transcriptional response of the Landes goose cecum following infection with the isolated Eimeria strain. Molecular analysis showed that the isolated Eimeria strain was Eimeria stigmosa, which was named the E. stigmosa SX-01 strain. Transcriptomic profiling identified 3806 differentially expressed genes (DEGs), including 2238 genes with increased expression and 1568 genes with decreased expression. The results obtained from the quantitative reverse transcription PCR (qRT-PCR) analysis confirmed that the RNA sequencing (RNA-seq) data were reliable. According to pathway enrichment analysis for the obtained DEGs, 24 pathways were significantly affected following infection with the E. stigmosa SX-01 strain, such as cytokine–cytokine receptor interaction, intestinal immune network for IgA production, cell adhesion molecules, gap junction, arachidonic acid metabolism, alpha-Linolenic acid metabolism, retinol metabolism, and PPAR signaling pathway. These transcriptional alterations were observed in E. stigmosa-infected geese without obvious clinical signs, indicating that E. stigmosa infection may trigger a strong subclinical host response related to metabolism, immune and inflammatory responses, and intercellular junctional complex-associated processes. Collectively, these findings have implications for better understanding the E. stigmosa–goose interactions at the molecular level and provide a foundation for future functional and comparative studies to dissect the pathogenic mechanisms and molecular markers associated with disease resistance, which are expected to inform the design of effective control strategies. Full article
(This article belongs to the Special Issue Poultry Pathogens and Poultry Diseases, 3rd Edition)
16 pages, 1901 KB  
Review
Bad Blood: Navigating VTE Risk in Breast, Ovarian, and Endometrial Cancer
by Felice Sorrentino, Laura Vona, Luigi Nappi, Maria Rosaria Campitiello, Victoria Bitsadze, Jamilya Khizroeva, Alexander Makatsariya, Concetta Panebianco and Elvira Grandone
Cancers 2026, 18(16), 2668; https://doi.org/10.3390/cancers18162668 - 18 Aug 2026
Viewed by 250
Abstract
Cancer-associated thrombosis (CAT) is defined as venous or arterial thrombotic events occurring in patients with active malignancy or during anticancer treatment, most commonly presenting as venous thromboembolism and representing a leading cause of morbidity and mortality in oncology. Hormone-sensitive malignancies, including breast, ovarian, [...] Read more.
Cancer-associated thrombosis (CAT) is defined as venous or arterial thrombotic events occurring in patients with active malignancy or during anticancer treatment, most commonly presenting as venous thromboembolism and representing a leading cause of morbidity and mortality in oncology. Hormone-sensitive malignancies, including breast, ovarian, and endometrial cancers, are characterized by a complex interaction among tumor biology, endocrine signaling, inflammation, endothelial dysfunction, and coagulation activation. In these malignancies, venous thromboembolism (VTE) risk is influenced not only by intrinsic tumor-related mechanisms but also by patient-specific factors and anticancer therapies, particularly endocrine treatments, chemotherapy, targeted agents, and extensive surgical procedures. Breast cancer is generally associated with an intermediate thrombotic risk, although endocrine therapy—especially tamoxifen—significantly increases VTE incidence. Ovarian cancer represents one of the most thrombogenic solid tumors because of elevated tissue factor expression, inflammatory activation, advanced-stage presentation, and aggressive multimodal treatment strategies. Endometrial cancer exhibits a strong association with obesity, metabolic syndrome, prolonged estrogen exposure, and perioperative thrombotic complications. Emerging evidence highlights the role of immune-thrombosis, extracellular vesicles, inflammatory cytokines, and sex-specific coagulation pathways in cancer-associated hypercoagulability. Current guidelines increasingly support individualized thromboprophylaxis based on tumor biology, patient-specific risk factors, and bleeding risk assessment. This review summarizes the biological mechanisms linking hormones and thrombosis in breast and gynecologic cancers, discusses current evidence regarding VTE risk factors and treatment-related thrombotic complications, and explores modern approaches to biomarkers, risk stratification, and personalized thromboprophylaxis. Full article
(This article belongs to the Section Cancer Epidemiology and Prevention)
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15 pages, 2378 KB  
Review
Molecular Mechanisms Underlying the Claviceps purpureaSecale cereale Interaction: From Floral Biotrophy to Ergot Alkaloid Biosynthesis
by Francisca Sempere-Ferre and Celia Almela-Camañas
Int. J. Mol. Sci. 2026, 27(16), 7369; https://doi.org/10.3390/ijms27167369 - 18 Aug 2026
Viewed by 181
Abstract
Claviceps purpurea is a highly specialized biotrophic ascomycete that colonizes floral tissues of grasses, including economically important cereal crops, causing ergot disease and producing ergot alkaloids with significant agricultural, pharmaceutical, and biotechnological relevance. Despite extensive research on its biology and secondary metabolism, the [...] Read more.
Claviceps purpurea is a highly specialized biotrophic ascomycete that colonizes floral tissues of grasses, including economically important cereal crops, causing ergot disease and producing ergot alkaloids with significant agricultural, pharmaceutical, and biotechnological relevance. Despite extensive research on its biology and secondary metabolism, the molecular mechanisms underlying host recognition, floral specificity, establishment of biotrophy, and developmental differentiation remain incompletely understood. This review integrates current knowledge derived from genomic, transcriptomic, proteomic, metabolomic, and functional genetic studies to provide an overview of the molecular basis of the C. purpurea–host interaction. Particular emphasis is placed on recent advances in fungal development, host immune modulation, hormonal signalling, sclerotial differentiation, and ergot alkaloid biosynthesis. Current evidence indicates that successful colonization depends on coordinated regulation of host recognition, secretion of effector proteins, carbohydrate-active enzymes, and manipulation of host signalling pathways to establish and maintain a biotrophic lifestyle. The transition from the sphacelial stage to sclerotial development represents a major developmental and metabolic reprogramming event associated with fungal differentiation and activation of the ergot alkaloid biosynthetic pathway. Recent multi-omics approaches have further revealed complex regulatory networks connecting fungal development and secondary metabolism. Claviceps purpurea has emerged as a valuable model for studying floral biotrophy and fungal secondary metabolism; however, key questions remain regarding the molecular basis of host specificity, effector function, hormonal crosstalk, and developmental regulation. Future integration of multi-omics approaches with functional genomics will be essential to resolve these processes and to support sustainable disease management strategies and the biotechnological exploitation of ergot alkaloids. Full article
(This article belongs to the Special Issue Advances in Molecular Research on Plant-Fungi Interactions)
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Article
Microbiome–Epigenome Interplay Impacts Microbial Symbiosis and Stress Adaptations in the Brown Planthopper (Nilaparvata lugens)
by Ayushi Gupta and Suresh Nair
Int. J. Mol. Sci. 2026, 27(16), 7357; https://doi.org/10.3390/ijms27167357 - 17 Aug 2026
Viewed by 232
Abstract
The gut microbiota and epigenetic processes both contribute to insect survival and adaptation; however, the relationship between these two systems remains largely unexplored. In this study, we used the brown planthopper (Nilaparvata lugens; BPH) to explore microbiome–epigenome interactions and evaluate its [...] Read more.
The gut microbiota and epigenetic processes both contribute to insect survival and adaptation; however, the relationship between these two systems remains largely unexplored. In this study, we used the brown planthopper (Nilaparvata lugens; BPH) to explore microbiome–epigenome interactions and evaluate its impact on BPH survivability under environmental stress. Disruption of the gut microbiome using antibiotics significantly altered the epigenetic profile of various stress-responsive genes in the BPH. Similarly, perturbations in the epigenome induced by 5-azacytidine resulted in an altered microbiome with diverse metabolic capacities, thus indicating the potential role of epigenetics in maintaining microbial symbiosis in BPH. Further, analysis of gene expression profiles revealed that 5-azacytidine treatment altered the mRNA levels of various genes involved in BPH immunity, suggesting that epigenetic mechanisms regulate and sustain microbial symbionts in insects by modulating their immune system. Altogether, these findings suggest an interplay between the epigenome and microbiome, that influences gene regulation and microbe-mediated regulation of shared metabolic pathways in BPH. Our results highlight new research avenues into the molecular mechanisms of symbiont-enabled herbivory and have implications for future studies on the relationship between gut microbiota and epigenetic mechanisms, the evolution of these processes and their effects on insect–plant interactions in changing environments. Full article
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