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Search Results (436)

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Keywords = functional modulation and immunotherapy

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35 pages, 1512 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 72
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)
15 pages, 1523 KB  
Article
Development and In Vitro Evaluation of Near-Infrared Dye-Conjugated Pullulan-Based Nanogels for M2 Macrophage-Targeted pH-Responsive Theranostic Agents
by Risako Miura, Mahiro Kagami, Yu Kimura, Kazunari Akiyoshi and Teruyuki Kondo
J. Nanotheranostics 2026, 7(3), 20; https://doi.org/10.3390/jnt7030020 - 21 Aug 2026
Viewed by 115
Abstract
Immunotherapy can reduce treatment-related side effects but shows limited efficacy in “cold tumors,” whose immunosuppressive tumor immune microenvironment is characterized by abundant M2 macrophages and poor T cell infiltration. Because biopsy-based qualitative assessment of the tumor microenvironment is invasive and conventional imaging lacks [...] Read more.
Immunotherapy can reduce treatment-related side effects but shows limited efficacy in “cold tumors,” whose immunosuppressive tumor immune microenvironment is characterized by abundant M2 macrophages and poor T cell infiltration. Because biopsy-based qualitative assessment of the tumor microenvironment is invasive and conventional imaging lacks functional information, this study aimed to develop an M2 macrophage-targeted theranostic agent enabling non-invasive photoacoustic (PA) imaging and pH-triggered cytotoxicity. A pullulan-based nanogel conjugated with mannose and near-infrared dye (IR-820) was further functionalized with the pH-responsive doxorubicin (DOX) prodrug, Aldoxorubicin, to develop Pullulan-mannose-IR820-Aldoxorubicin (PMID) nanogel. PMID was successfully synthesized, and the resulting self-assembled nanogels (<100 nm) exhibited a highly negative ζ-potential, near-infrared absorption peaks at 780 and 850 nm, and PA contrast comparable to IR-820 at 850 nm excitation. Dialysis studies demonstrated suppressed drug release at neutral pH (~20%) but accelerated release under acidic conditions, reaching ~80% within 48 h at pH 5.5, consistent with hydrazone hydrolysis and supporting tumor/lysosome-activated delivery. In RAW264.7 macrophages, PMID nanogel showed preferential uptake by M2-poralized versus M1-polarized macrophages, outperforming non-mannosylated PID nanogel and IR-820, and produced the strongest PA signal in M2 macrophage pellets. PMID nanogel also induced the highest concentration-dependent cytotoxicity in M2 macrophages, and microscopy indicated lysosomal accumulation of the nanogel with partial nuclear localization of released DOX. These findings support the use of PMID nanogel as M2 macrophage-targeted PA contrast agents and pH-responsive drug carriers with the potential to deplete immunosuppressive macrophages, modulate cold tumor microenvironments, and improve precision cancer theranostics. Full article
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30 pages, 10439 KB  
Review
Gut Microbiome-Driven Strategies to Overcome Immunotherapy Resistance in Microsatellite-Stable Colorectal Cancer
by Lidia Boldeanu, Alice Elena Ghenea, Alina Elena Ciobanu Plasiciuc, Mihail Virgil Boldeanu, Rodica Pădureanu, Mohamed-Zakaria Assani, Vlad Pădureanu, Isabela Siloși, Marius Bogdan Novac and Ancuța-Ramona Boicea Camen
Cancers 2026, 18(16), 2538; https://doi.org/10.3390/cancers18162538 - 7 Aug 2026
Viewed by 433
Abstract
Background/Objectives: Microsatellite-stable colorectal cancer (MSS CRC) accounts for the vast majority of CRC cases and remains largely resistant to immune checkpoint inhibitors. Emerging evidence suggests that the gut microbiome is an important regulator of antitumor immunity and may contribute to immunotherapy resistance through [...] Read more.
Background/Objectives: Microsatellite-stable colorectal cancer (MSS CRC) accounts for the vast majority of CRC cases and remains largely resistant to immune checkpoint inhibitors. Emerging evidence suggests that the gut microbiome is an important regulator of antitumor immunity and may contribute to immunotherapy resistance through multiple mechanisms involving the tumor microenvironment. This review aims to summarize current knowledge of the microbiome–immunity–therapy axis in MSS CRC and to explore microbiome-based strategies to enhance immunotherapy responsiveness. Methods: A narrative review of the recent literature was conducted, focusing on studies published within the last five years that investigated gut microbiota composition, microbial metabolites, tumor immune regulation, immunotherapy response, and microbiome-targeted therapeutic interventions in CRC. Evidence from mechanistic studies, translational research, clinical investigations, and multi-omics analyses was integrated. Results: Current evidence indicates that gut dysbiosis contributes to immune resistance in MSS CRC through immune exclusion, myeloid-driven immunosuppression, T-cell dysfunction, chronic inflammation, and altered microbial metabolite signaling. Specific microorganisms, including Fusobacterium nucleatum, enterotoxigenic Bacteroides fragilis, pks-positive Escherichia coli, and other CRC-associated pathobionts, have been implicated in tumor progression and modulation of antitumor immunity. Microbial metabolites such as short-chain fatty acids, tryptophan-derived compounds, bile acids, succinate, and inosine represent key functional mediators linking microbial communities to host immune responses. Emerging microbiome-targeted interventions, including fecal microbiota transplantation, next-generation probiotics, postbiotics, selective microbial depletion, and engineered bacterial therapeutics, have shown promising results in preclinical models and early translational or clinical studies, although robust clinical evidence remains limited. In parallel, advances in metagenomics, metabolomics, spatial transcriptomics, and artificial intelligence are facilitating the development of precision immuno-microbiome oncology approaches. Conclusions: The gut microbiome functions as a critical regulator of immune resistance in MSS CRC through coordinated effects on microbial composition, metabolite production, and tumor immune remodeling. Microbiome-targeted interventions, combined with multi-omics-based patient stratification, may provide new opportunities to overcome immunotherapy resistance and expand the clinical benefits of immune checkpoint blockade in this traditionally refractory disease. Full article
(This article belongs to the Special Issue Pharmacology, Microbiology and Immunology in Cancers)
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37 pages, 1176 KB  
Review
Decoding the Complexity of Hepatocellular Carcinoma: Clinical Challenges and Targeting HuR as a Novel Therapeutic Strategy
by Elizabeth Jones, Natalie Eppler, Forkan Ahamed and Yuxia Zhang
Livers 2026, 6(4), 74; https://doi.org/10.3390/livers6040074 - 5 Aug 2026
Viewed by 444
Abstract
Background: Hepatocellular carcinoma (HCC) is a leading cause of cancer-related mortality worldwide and remains a major therapeutic challenge due to its marked inter- and intratumoral heterogeneity, diverse etiologies, and high propensity for therapeutic resistance. This review summarizes the biological complexity of HCC [...] Read more.
Background: Hepatocellular carcinoma (HCC) is a leading cause of cancer-related mortality worldwide and remains a major therapeutic challenge due to its marked inter- and intratumoral heterogeneity, diverse etiologies, and high propensity for therapeutic resistance. This review summarizes the biological complexity of HCC and current therapeutic challenges, with a particular focus on the RNA-binding protein human antigen R (HuR) as an emerging therapeutic target. Methods: A comprehensive narrative review of peer-reviewed literature was conducted, focusing on HCC pathogenesis, molecular heterogeneity, tumor microenvironment, mechanisms of therapeutic resistance, and recent advances in treatment. Emphasis was placed on studies investigating the biological functions of HuR and its therapeutic potential in HCC. Results: HCC progression is driven by complex interactions among genetic, epigenetic, metabolic, and environmental factors, resulting in substantial tumor heterogeneity and variable therapeutic responses. Dysregulated oncogenic signaling and immunosuppressive tumor microenvironment collectively contribute to resistance against current therapies, including multikinase inhibitors and immune checkpoint inhibitors. Although emerging strategies, such as combination immunotherapy, metabolic targeting, epigenetic modulation, and precision medicine, have shown encouraging preclinical and clinical results, their efficacy remains limited by tumor complexity and adaptive resistance. HuR functions as a master post-transcriptional regulator that stabilizes and promotes the translation of numerous mRNAs encoding oncogenic, inflammatory, and pro-survival factors. Accumulating preclinical evidence demonstrates that pharmacological inhibition of HuR suppresses multiple tumor-promoting pathways and enhances therapeutic sensitivity, supporting its potential as a novel therapeutic strategy for HCC. Conclusions: The biological complexity of HCC necessitates multifaceted, precision-based therapeutic approaches. Although additional HCC-specific mechanistic and translational studies are needed, targeting HuR represents a promising strategy to overcome tumor heterogeneity, therapeutic resistance, and disease progression. Continued integration of molecular profiling, advanced omics technologies, and rational combination therapies will be essential for translating these advances into improved clinical outcomes for patients with HCC. Full article
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26 pages, 7566 KB  
Article
Trans-Presentation of IL-15 by IL15Rα Attenuates Tumor Immune Surveillance and Is Dispensable for IL-15-Dependent Tumor Growth Control
by Fjolla Rexhepi, Sara Ali Akbari, Mohammad Moradzad, Saeed Khodayari, Akhil Shukla, Elodie Demontier, Jean-François Lucier, Anny Armas Cayarga, Hugues Allard-Chamard, Subburaj Ilangumaran and Sheela Ramanathan
Cancers 2026, 18(15), 2499; https://doi.org/10.3390/cancers18152499 - 4 Aug 2026
Viewed by 275
Abstract
Background: IL-15 is a promising cytokine for cancer immunotherapy. IL-15 promotes differentiation and homeostasis of innate and adaptive immune cells, and their cytolytic effector functions. The IL-15 receptor is composed of IL-15Rα, IL-15Rβ and the common γc chains. IL-15 is also trans-presented [...] Read more.
Background: IL-15 is a promising cytokine for cancer immunotherapy. IL-15 promotes differentiation and homeostasis of innate and adaptive immune cells, and their cytolytic effector functions. The IL-15 receptor is composed of IL-15Rα, IL-15Rβ and the common γc chains. IL-15 is also trans-presented as IL-15Rα:IL-15 complex to IL-15Rβ:γc on neighboring cells. IL-15Rα is dispensable for early immune response to infections and in autoimmune diabetes. The role of IL-15Rα in antitumor immune responses remains unclear. Methods: In WT, Il15−/− and Il15ra−/− mice, we studied the growth of syngeneic tumor cell lines and tumor immune surveillance against endogenous fibrosarcoma induced by methylcholanthrene (MCA). Immune gene signature and total proteome analysis were performed on MCA-induced tumors. Results: Lack of IL-15 or IL-15Rα did not enhance the growth of implanted tumor cell lines, despite reduced immune cell infiltration. MCA-induced tumor incidence was reduced in mice lacking IL-15Rα but not IL-15, although both are required for efficient tumor immunoediting. Il15−/− and Il15ra−/− tumors showed reduced Ifng expression but displayed differential modulation of Ifng-responsive genes. Proteome profiles of Il15−/− tumors, but not tumor-derived cell lines, showed significant reduction in antigen presentation pathways. B16-F10 melanoma cells expressing NLRC5, the IFNγ-induced transcriptional activator of tumor antigen presentation, still required IL-15 but not IL-15Rα for efficient tumor control. Conclusions: Our findings show that IL-15 plays a negligible role in immunosurveillance against spontaneous tumor development, whereas IL-15Rα restrains immunosurveillance. Neither IL-15 nor IL-15Rα have a significant impact on implanted tumor models, although IL-15 facilitates efficient control of highly immunogenic tumors for which IL-15Rα is dispensable. Full article
(This article belongs to the Section Molecular Cancer Biology)
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33 pages, 1474 KB  
Review
Targeting Immune Checkpoint Proteins in Cancer Therapy and the Potential of RNAi-Based Immunotherapy
by Katherine Kaixin Wang and Ai-Ming Yu
Pharmaceuticals 2026, 19(8), 1212; https://doi.org/10.3390/ph19081212 - 1 Aug 2026
Viewed by 430
Abstract
Cancer immunotherapy via targeting immune checkpoint proteins (ICPs) has transformed the treatment of multiple malignancies, offering improved clinical outcomes over conventional therapies. Immune checkpoint inhibitors (ICIs), including FDA-approved monoclonal antibodies against CTLA-4, PD-1, and PD-L1, as well as emerging agents targeting novel ICPs, [...] Read more.
Cancer immunotherapy via targeting immune checkpoint proteins (ICPs) has transformed the treatment of multiple malignancies, offering improved clinical outcomes over conventional therapies. Immune checkpoint inhibitors (ICIs), including FDA-approved monoclonal antibodies against CTLA-4, PD-1, and PD-L1, as well as emerging agents targeting novel ICPs, have demonstrated strong therapeutic efficacy by restoring antitumor immune responses. In parallel, RNA interference (RNAi)-based approaches involving microRNAs (miRNAs) and small interfering RNAs (siRNAs) have emerged as promising alternative strategies for modulating ICP expression at the posttranscriptional level, enabling selective and simultaneous regulation of multiple immune checkpoint pathways. Preclinical and early clinical studies have indicated effective downregulation of target ICP expression and enhanced antitumor immunity across diverse cancer models. Due to the inherent instability of RNA molecules, the development of RNAi therapeutics has been accompanied by advances in delivery platforms. In this review, we discuss the biological functions of established and novel ICPs, along with immunotherapeutics approved by the FDA and under Phase III clinical development. We also provide an overview of the RNAi mechanism of miRNAs and siRNAs, highlight endogenous miRNAs that regulate immune checkpoint pathways, and summarize ICP-targeting RNAi agents and their corresponding delivery systems under preclinical and clinical development. Collectively, these advances underscore the potential of RNAi-based immune checkpoint modulation, complementing existing ICIs and expanding the next generation of cancer immunotherapy. Full article
(This article belongs to the Special Issue Tumor Immunopharmacology, 2nd Edition)
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26 pages, 1465 KB  
Review
Role of m6A RNA Methylation in T Cell Biology and Immunotherapy
by Yumna A. Butt, Nordin D. Zandhuis and Iosifina P. Foskolou
Immuno 2026, 6(3), 50; https://doi.org/10.3390/immuno6030050 - 31 Jul 2026
Viewed by 461
Abstract
RNA modifications act as crucial post-transcriptional regulators that fine-tune gene expression to modulate cell function. Among these, N6-methyladenosine (m6A) is the most prevalent RNA modification in eukaryotic cells, regulating several RNA metabolism pathways including RNA splicing, nuclear export, stability, and translation. [...] Read more.
RNA modifications act as crucial post-transcriptional regulators that fine-tune gene expression to modulate cell function. Among these, N6-methyladenosine (m6A) is the most prevalent RNA modification in eukaryotic cells, regulating several RNA metabolism pathways including RNA splicing, nuclear export, stability, and translation. These processes are particularly important in rapidly responding immune cells such as T cells, which require dynamic changes in gene expression to support differentiation and effector function. This review focuses on the interplay between immunity and epitranscriptomics and explores the direct and indirect effects of m6A modification on T cells. Specifically, we discuss the role of different writers, erasers, and readers in modulating CD4+ and CD8+ T cell homeostasis, differentiation, and function. In addition, we summarize current evidence linking m6A regulators to anti-tumor T cell responses. Finally, we discuss the recent advances in the field of m6A and immunotherapy by highlighting the potential of pharmacological modulation of m6A regulators in augmenting the efficacy of existing immune therapies. Collectively, by integrating emerging mechanistic and translational insights, this review highlights the pivotal role of m6A regulation in T cell biology and underscores its potential to optimize next-generation immunotherapies. Full article
(This article belongs to the Special Issue RNA-Based Immunotherapy)
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16 pages, 8265 KB  
Article
Identification of Promising Candidate Genes and Immune Infiltration Patterns in Chronic Schistosomiasis-Associated Liver Injury by WGCNA and Machine Learning
by Yinlong Li, Qin Li, Suying Guo, Shizhu Li and Jing Xu
Pathogens 2026, 15(8), 806; https://doi.org/10.3390/pathogens15080806 - 31 Jul 2026
Viewed by 292
Abstract
Background: Dysregulated immune cells contribute to Schistosoma japonicum-induced liver injury. However, the underlying mechanisms remain poorly understood. This study aimed to identify feature genes and immune infiltration patterns linked to chronic schistosomiasis-associated liver injury. Methods: Differential gene expression analysis was conducted using [...] Read more.
Background: Dysregulated immune cells contribute to Schistosoma japonicum-induced liver injury. However, the underlying mechanisms remain poorly understood. This study aimed to identify feature genes and immune infiltration patterns linked to chronic schistosomiasis-associated liver injury. Methods: Differential gene expression analysis was conducted using dataset GSE61376 from the Gene Expression Omnibus (GEO) database. Functional enrichment of differentially expressed genes (DEGs) was performed via Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) analysis. Weighted Gene Co-expression Network Analysis (WGCNA) was applied to construct further characterization of molecular networks. LASSO regression and random forest algorithms were combined to screen hub genes, whose diagnostic efficacy was assessed by ROC analysis. CIBERSORT estimated immune cell infiltration, and GSEA explored pathways associated with hub genes. Results: A total of 412 DEGs were identified between chronic schistosomiasis and control groups. The green module from WGCNA exhibited significant correlation with chronic schistosomiasis (r = −0.85, p < 0.05). ANKMY2 and FCER1A were identified as hub genes with AUC values of 0.875 (95% CI, 0.500–1.000) and 0.792 (95% CI, 0.458–1.000). GSEA revealed associations with cytokine–receptor interaction and other signaling pathways. A total of 11 differentially distributed immune cell subsets were observed, and hub genes were correlated with multiple immune cell populations. Conclusions: ANKMY2 and FCER1A participate in liver injury of chronic schistosomiasis by regulating the hepatic immunopathological microenvironment. These two genes may serve as promising targets for immunotherapy against S. japonicum-induced liver injury. Full article
(This article belongs to the Special Issue New Advances in Epidemiology of Neglected Tropical Diseases)
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29 pages, 2758 KB  
Review
ENO1 as an Immunoregulatory Hub in Cancer: Mechanisms and Translational Implications
by Giovanni Perconti, Angela Bonura, Patrizia Rubino and Agata Giallongo
Biomolecules 2026, 16(7), 1050; https://doi.org/10.3390/biom16071050 - 18 Jul 2026
Viewed by 569
Abstract
Alpha-enolase (ENO1) is a multifunctional protein frequently overexpressed in solid tumors, where elevated levels are associated with aggressive behavior and poor prognosis. Beyond its canonical glycolytic role, ENO1 participates in immunoregulatory processes through distinct subcellular pools. Intracellular ENO1 shapes tumor-associated metabolic programs, while [...] Read more.
Alpha-enolase (ENO1) is a multifunctional protein frequently overexpressed in solid tumors, where elevated levels are associated with aggressive behavior and poor prognosis. Beyond its canonical glycolytic role, ENO1 participates in immunoregulatory processes through distinct subcellular pools. Intracellular ENO1 shapes tumor-associated metabolic programs, while surface-exposed ENO1 functions as a plasminogen receptor and can engage innate immune signaling pathways. Post-translational modifications—particularly citrullination and phosphorylation—generate structurally altered epitopes that expand ENO1 antigenicity and enable adaptive immune recognition, including coordinated humoral and T-cell responses in cancer patients. These determinants of ENO1 immunogenicity have downstream consequences within the tumor microenvironment: immune-accessible ENO1 modulates myeloid cell recruitment, dendritic cell maturation, and macrophage polarization, while ENO1-dependent metabolic and signaling programs contribute to immune suppression and escape through multiple interconnected axes. Together, these mechanisms position ENO1 at the interface between tumor metabolism and immune regulation. Preclinical evidence demonstrates that ENO1-directed strategies—including antibody-based targeting, DNA vaccination, and vaccines incorporating post-translationally modified ENO1 peptides—can generate productive antitumor immunity and synergize with checkpoint blockade, supporting the rationale for ENO1 as an immunotherapeutic target. This review synthesizes current evidence within an integrated framework linking ENO1 dysregulation to its immunological consequences in cancer and discusses translational implications for ENO1-centered immunotherapy and immunoprevention. Full article
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16 pages, 2360 KB  
Review
CD86 in Dendritic Cell-Mediated Cancer Immunity: From Maturation Marker to Functional Regulator
by Ting-Wei Wu, Chu-Hsin Chuang and Yi-Hui Wu
Biomedicines 2026, 14(7), 1588; https://doi.org/10.3390/biomedicines14071588 - 16 Jul 2026
Cited by 1 | Viewed by 515
Abstract
Dendritic cell (DC)-based cancer immunotherapy remains limited by heterogeneous immune responses and variable clinical efficacy. CD86, a key co-stimulatory molecule, is traditionally regarded as a marker of dendritic cell maturation; however, accumulating evidence suggests that CD86 expression is regulated by immune checkpoint interactions, [...] Read more.
Dendritic cell (DC)-based cancer immunotherapy remains limited by heterogeneous immune responses and variable clinical efficacy. CD86, a key co-stimulatory molecule, is traditionally regarded as a marker of dendritic cell maturation; however, accumulating evidence suggests that CD86 expression is regulated by immune checkpoint interactions, inflammatory signaling, and tumor microenvironment-associated immune modulation. In this review, we summarize current evidence regarding the molecular mechanisms governing CD86 regulation, including MARCH1-mediated ubiquitination and CTLA-4-mediated trans-endocytosis, and discuss how suppressive cytokines, hypoxia, and metabolic stress influence dendritic cell function within the tumor microenvironment (TME). We further review the heterogeneity of CD86 regulation across dendritic cell subsets and immune contexts, as well as its potential relevance in secondary lymphoid organs and tumor-associated immune responses. In addition, we discuss current evidence regarding soluble CD86 (sCD86) and its reported associations with immune activation and dysregulated immune states in cancer. Current evidence supports that CD86 regulation is shaped by integrated co-stimulatory signaling, immune checkpoint interactions, and tumor microenvironment-associated suppression. Importantly, CD86 may function not only as a dendritic cell maturation marker but also as a dynamic immunoregulatory molecule with context-dependent implications in cancer immunity. However, substantial uncertainties remain regarding its mechanistic role, prognostic value, and therapeutic relevance across different tumor settings. Future mechanistic and translational studies are needed to clarify these unresolved issues. Full article
(This article belongs to the Section Immunology and Immunotherapy)
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35 pages, 2743 KB  
Review
Molecular Mechanisms of Gut Microbiota–Immune System Crosstalk: From Mucosal Architecture to Adaptive Immunity Programming
by Dana Ciaușu-Sliwa, Robert Capotă, Andra-Cristina Bostănaru-Iliescu, Valentin Năstasă and Mihai Mareș
Int. J. Mol. Sci. 2026, 27(14), 6246; https://doi.org/10.3390/ijms27146246 - 14 Jul 2026
Viewed by 862
Abstract
The mammalian gut microbiome functions as a metabolically active immunological organ and has co-evolved with its host to maintain systemic homeostasis. This review integrates current evidence on the molecular mechanisms governing bidirectional microbiota–immune communication, emphasizing evolutionary conservation, receptor-mediated signaling, and translational implications. Microbial [...] Read more.
The mammalian gut microbiome functions as a metabolically active immunological organ and has co-evolved with its host to maintain systemic homeostasis. This review integrates current evidence on the molecular mechanisms governing bidirectional microbiota–immune communication, emphasizing evolutionary conservation, receptor-mediated signaling, and translational implications. Microbial structural ligands and metabolites—including short-chain fatty acids, bile-acid derivatives, and tryptophan catabolites—engage host receptors such as G-protein-coupled receptors, FXR/TGR5, and the aryl hydrocarbon receptor (AhR), thereby regulating epithelial barrier integrity, regulatory T-cell differentiation, Th17 polarization, mucosal IgA production, and systemic immune tone. Riboflavin-derived metabolites presented via major histocompatibility complex class-I-related molecule (MR1) further shape mucosal-associated invariant T-cell development (MAIT), illustrating metabolite-driven immune system programming. Dysbiosis induced by antibiotics, dietary perturbation, or aging disrupts these molecular networks, promoting chronic inflammatory, metabolic, autoimmune, and neuroimmune disorders. Comparative analyses across mammalian systems underscore conserved pathways of host–microbe coadaptation and immune education. Therapeutically, microbiota-modulating strategies—including probiotics, prebiotics, synbiotics, fecal microbiota transplantation (FMT), postbiotics, and IgY-based passive immunotherapy—aim to restore immunometabolic signaling. Emerging in vitro and in silico platforms further provide mechanistic precision while supporting ethically aligned translational research. Collectively, these insights position microbiota-derived molecular signaling as a central determinant of adaptive immune architecture and a targetable axis in precision immunotherapy. Full article
(This article belongs to the Special Issue Molecular Mechanism of Immune Response)
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36 pages, 3329 KB  
Review
Regulatory Networks of Non-Coding RNAs Modulating Natural Killer Cell Antitumor Immunity in the Tumor Microenvironment
by Zida Xu, Can Jin and Xuan Huang
Cells 2026, 15(14), 1260; https://doi.org/10.3390/cells15141260 - 13 Jul 2026
Viewed by 465
Abstract
The intricate intercellular communication within the tumor microenvironment (TME) critically drives cancer progression and therapeutic resistance. Natural killer (NK) cells are potent sentinels of the innate immune system, but their antitumor functions are often severely compromised by the TME’s immunosuppressive networks. Moving beyond [...] Read more.
The intricate intercellular communication within the tumor microenvironment (TME) critically drives cancer progression and therapeutic resistance. Natural killer (NK) cells are potent sentinels of the innate immune system, but their antitumor functions are often severely compromised by the TME’s immunosuppressive networks. Moving beyond protein-coding genes, non-coding RNAs (ncRNAs)—with microRNAs (miRNAs) playing a foundational role alongside long non-coding RNAs (lncRNAs) and circular RNAs (circRNAs)—have emerged as vital components of the regulatory networks influencing immune responses. Rather than dictating immune cell fate, these diverse transcriptomic classes form complex networks that modulate NK cell functional states and TME immunosuppression. This review systematically elucidates the molecular mechanisms by which these ncRNA networks influence NK cell biology in the TME. We dissect three core regulatory axes driven by extracellular vesicle (EV)-mediated communication, competitive endogenous RNA crosstalk, and epigenetic remodeling: the extrinsic suppression of NK cells by EV-derived and secreted ncRNAs from TME-resident cells, the reciprocal modulation of TME components by NK cell-derived ncRNAs, and the intrinsic regulation of NK cell functions by endogenous ncRNAs. Furthermore, we critically assess the clinical translational potential of targeting these networks. We highlight specific ncRNAs as non-invasive prognostic biomarkers and summarize targeted therapeutic interventions using antisense oligonucleotides, small interfering RNAs, and nano-delivery systems. Modulating these core ncRNA nodes to mitigate TME immunosuppression offers a novel paradigm for precision oncology, holding substantial promise for enhancing immune checkpoint blockade and NK cell-directed immunotherapies. Full article
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20 pages, 2514 KB  
Review
Nanosecond Electric Pulses as a Novel In Situ Vaccination Strategy for Cancer Treatment: Mechanisms, Challenges and Prospects
by Siqi Guo
Vaccines 2026, 14(7), 607; https://doi.org/10.3390/vaccines14070607 - 10 Jul 2026
Viewed by 517
Abstract
Nanosecond electric pulses (nsEPs) are an emerging pulsed-power technology with unique bioelectric characteristics distinct from conventional long-pulse electroporation. As a tunable physical modality, nsEPs can modulate intracellular structures, membrane dynamics, and signaling pathways. Increasing evidence supports nsEPs as a promising non-thermal tumor ablation [...] Read more.
Nanosecond electric pulses (nsEPs) are an emerging pulsed-power technology with unique bioelectric characteristics distinct from conventional long-pulse electroporation. As a tunable physical modality, nsEPs can modulate intracellular structures, membrane dynamics, and signaling pathways. Increasing evidence supports nsEPs as a promising non-thermal tumor ablation approach due to their high spatial precision, preservation of critical tissue structures, and minimal adverse effects. One of the most significant discoveries associated with nsEP tumor ablation is the induction of potent systemic antitumor immunity, particularly in situ vaccination (ISV) effects and, in some cases, abscopal effects against distant untreated tumors. Substantial evidence demonstrates that nsEPs can function as authentic immunogenic cell death (ICD) inducers by promoting the release of damage-associated molecular patterns (DAMPs), including calreticulin (CRT), ATP, and HMGB1. These events facilitate dendritic cell activation, antigen presentation, and the generation of long-term antitumor T-cell immunity. In addition to enhancing tumor immunogenicity, nsEPs profoundly remodel the tumor microenvironment (TME), including disruption of tumor vasculature, reduction in immunosuppressive cell populations, and alteration of stromal components. Emerging studies further suggest that nsEPs act as electric metabolic modulators capable of influencing mitochondrial function, calcium signaling, and metabolism-associated signaling pathways. Current evidence indicates that the immunological outcomes induced by nsEPs are highly dependent on pulse parameters, waveform characteristics, and tumor type. Despite its considerable therapeutic promise, the development of nsEP-induced ISV immunotherapy faces several important challenges, including standardization and optimization of pulse protocols, identification of critical molecular and cellular targets, and clarification of tumor- and cell-type-specific responses. Addressing these challenges through multidisciplinary collaboration and advanced technologies, including multi-omics, spatial analysis, and computational modeling, may accelerate the development of next-generation bioelectric immunotherapies for cancer treatment. Full article
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25 pages, 1922 KB  
Review
Rethinking Anti-Inflammatory Therapy in Alzheimer’s Disease: From Broad Suppression to Stage–State–Space Neuroimmune Reprogramming
by Xiaopu Li, Xingyu Wang, Jiaxing Dou, Jiahui Wang and Feng Xue
Cells 2026, 15(13), 1208; https://doi.org/10.3390/cells15131208 - 2 Jul 2026
Cited by 1 | Viewed by 663
Abstract
Alzheimer’s Disease (AD) is now understood as a biologically diverse condition, with amyloid and tau pathology evolving within dynamic neuroimmune networks. This challenges the traditional view that AD-related inflammation can be broadly suppressed therapeutically. We review evidence showing that neuroinflammation in AD is [...] Read more.
Alzheimer’s Disease (AD) is now understood as a biologically diverse condition, with amyloid and tau pathology evolving within dynamic neuroimmune networks. This challenges the traditional view that AD-related inflammation can be broadly suppressed therapeutically. We review evidence showing that neuroinflammation in AD is stage-dependent, cell-state-specific, spatially organized, and functionally complex. Microglia and astrocytes can aid in plaque containment, debris clearance, synaptic balance, metabolic adaptation, and tissue repair, but may also exacerbate injury through type-I interferon, inflammasome, complement, tumor necrosis factor, and lipid pathways. Many failed anti-inflammatory trials likely stem from mismatches in targets, timing, spatial considerations, pathway redundancy, and biomarker selection, rather than invalidating neuroinflammation as a therapeutic target. Recent single-cell and spatial transcriptomic, proteomic, metabolomic, and network-medicine studies offer a framework for precision intervention by identifying inflammatory endotypes, anatomical niches, and pathway modules. We propose the Stage–State–Space Neuroimmune Reprogramming Model (S3-NRM), aligning AD immunotherapy with disease stage, glial/endotype state, and spatial inflammatory niche, guided by fluid, imaging, and omics biomarkers. Future therapies should selectively suppress harmful immune responses while preserving beneficial glial functions. Full article
(This article belongs to the Special Issue Advanced Research in Neurogenesis and Neuroinflammation)
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29 pages, 1531 KB  
Review
Oncogenic EGFR Signaling as a Central Regulator of Chemoresistance in Ovarian Cancer: A Mechanistic Review
by Arulkumar Nagappan, Veeran Sethuraman, Parthiban Pandian, Jothi Nedunchezhian and Arvind Kumar Shukla
Int. J. Mol. Sci. 2026, 27(13), 5937; https://doi.org/10.3390/ijms27135937 - 1 Jul 2026
Viewed by 986
Abstract
Ovarian cancer (OVC) is a leading cause of gynecological cancer mortality due to late-stage diagnosis and chemoresistance. Among the multiple molecular mediators, oncogenic epidermal growth factor receptor (EGFR) signaling has emerged as a key regulator of tumor progression and drug resistance, ultimately governing [...] Read more.
Ovarian cancer (OVC) is a leading cause of gynecological cancer mortality due to late-stage diagnosis and chemoresistance. Among the multiple molecular mediators, oncogenic epidermal growth factor receptor (EGFR) signaling has emerged as a key regulator of tumor progression and drug resistance, ultimately governing cancer survival. Therefore, this review focused on the molecular mechanisms of aberrant EGFR signaling to promote chemoresistance in ovarian cancer through multiple interlinking pathways, including the phosphoinositide 3-kinase (PI3K)/protein kinase B (AKT)/mammalian target of the rapamycin (mTOR), mitogen-activated protein kinase (MAPK)/extracellular signal-regulated kinase (ERK), and Janus kinase (JAK)/signal transducer and activator of transcription (STAT) signaling cascades. These pathways act in concert to confer resistance, including proliferation, antiapoptotic effects, cancer stem cell maintenance, and facilitating epithelial-mesenchymal transition (EMT), which function together to decrease sensitivity towards platinum-based and taxane chemotherapies. Furthermore, we incorporate novel evidence regarding EGFR cross-talk with extracellular matrix (ECM) and metabolic reprogramming, especially their relevance to immune evasion mechanisms, hypoxia, and extracellular vesicles (EVs)-mediated signaling. In addition, we elaborated on the limitation of the current EGFR targeting therapy, which will be beneficial for further designing new combinatorial treatment approaches by using EGFR inhibitors with immunotherapy, nanocarriers, and microbiota modulators. Overall, this review highlights the updated role of EGFR signaling as a key regulator of chemoresistance in ovarian cancer, providing insights for developing targeted therapies to overcome drug resistance and improve patient survival. Full article
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