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Class IIa HDAC4 and HDAC7 cooperatively regulate gene transcription in Th17 cell differentiation.

Class II histone deacetylases (HDACs) are important in regulation of gene transcription during T cell development. However, our understanding of their cell-specific functions is limited. In this study, we reveal that class IIa Hdac4 and Hdac7 (Hdac4/7) are selectively induced in transcription, guiding the lineage-specific differentiation of mouse T-helper 17 (Th17) cells from naive CD4+ T cells. Importantly, Hdac4/7 are functionally dispensable in other Th subtypes. Mechanistically, Hdac4 interacts with the transcription factor (TF) JunB, facilitating the transcriptional activation of Th17 signature genes such as Il17a/f. Conversely, Hdac7 collaborates with the TF Aiolos and Smrt/Ncor1-Hdac3 corepressors to repress transcription of Th17 negative regulators, including Il2, in Th17 cell differentiation. Inhibiting Hdac4/7 through pharmacological or genetic methods effectively mitigates Th17 cell-mediated intestinal inflammation in a colitis mouse model. Our study uncovers molecular mechanisms where HDAC4 and HDAC7 function distinctively yet cooperatively in regulating ordered gene transcription during Th17 cell differentiation. These findings suggest a potential therapeutic strategy of targeting HDAC4/7 for treating Th17-related inflammatory diseases, such as ulcerative colitis.

Animals

PDLIM4 promotes dephosphorylation of STAT transcription factors by recruiting PTP-BL and inhibits Th1, Th2, and Th17 cell differentiation.

STAT (signal transducers and activators of transcription) transcription factors are activated by tyrosine phosphorylation after cytokine stimulation and are critical for the differentiation of T-helper (Th) cells into particular Th lineage subsets. How STAT-mediated Th cell differentiation is negatively regulated, however, is not fully understood. Here, we report that PDLIM4 binds to STAT3, 4, and 6 and suppresses gene activation mediated by these STATs. PDLIM4 acts as an adaptor that recruits PTP-BL, a protein tyrosine phosphatase, through its LIM (abnormal cell lineage 11-islet 1-mechanosensory abnormal 3) domain, facilitating dephosphorylation of STAT proteins. PDLIM4-deficiency in CD4+ T cells resulted in augmented tyrosine phosphorylation of these STAT proteins and consequently enhanced Th1, Th2, and Th17 cell differentiation, suggesting that PDLIM4 regulates the differentiation of multiple lineages of Th cells by suppressing STAT signaling. We further found that a non-synonymous single-nucleotide polymorphism in PDLIM4, which causes the substitution of a glycine residue with a cysteine in the LIM domain, is associated with susceptibility to rheumatoid arthritis and Graves' disease, both of which are known to be Th17 cell-driven autoimmune diseases. Notably, PDLIM4 containing this amino acid substitution in the LIM domain showed reduced binding to PTP-BL and was therefore partially impaired in its ability to dephosphorylate STAT3 and suppress STAT3 signaling. Our findings define an essential role of PDLIM4 in negatively regulating STAT-mediated Th-cell differentiation and preventing the onset of human autoimmune diseases.

Animals

Altered ruminal microbiome tryptophan metabolism and their derived 3-indoleacetic acid inhibit ruminal inflammation in subacute ruminal acidosis goats.

BACKGROUND: Subacute ruminal acidosis (SARA) is a digestive disorder that often severely jeopardizes the health and lactation performance of ruminants fed a high-energy diet. Different dairy ruminants exhibit varying degrees of inflammation accompanied by variations in the rumen microbiota when SARA occurs. Our understanding of the occurrence of SARA and varying degrees of rumen epithelial inflammation is lacking. Hence, we performed rumen metagenomic, metagenome-assembled genome and metabolomic analyses, with transcriptome and single-nucleus RNA sequence analyses, to explore the microbial mechanism of SARA occurrence and different degrees of inflammation. RESULTS: A total of 36 goats fed two diets with gradually increasing levels of rumen-degradable starch (RDS) were included in this study, and SARA goats fed 70% concentrate diets supplemented with whole corn (HGW-SARA) and SARA goats fed 70% concentrate diets supplemented with crushed corn (HGC-SARA) were identified. Moreover, 11 goats fed a control basal diet, named LGW-CON, were also included. Compared with those in the LGW-CON group, the rumen fermentation capacity was enhanced, accompanied by ruminal epithelial and systemic inflammation, in goats from HGW-SARA and HGC-SARA. Between them, HGC-SARA goats presented less inflammation. Notably, the ruminal inflammation-related pathways were increased only in the HGW-SARA group but not in the HGC-SARA group. Metagenomic analysis revealed that the β diversity of SARA goats was significantly different from that of LGW-CON goats. Ruminococcus significantly increased in both SARA groups, whereas Prevotella and Bacteroidales significantly decreased, which was accompanied by a decrease in cellulose and hemicellulose enzymes and an increase in lysozymes and lipopolysaccharide synthesis enzymes. Multi-omics analysis of the ruminal contents and tissues suggested that epithelial inflammation was caused by disturbed ruminal microbiome-induced Th17 cell differentiation and IL-17 signalling pathway activation. Comparative analyses between the HGW-SARA and HGC-SARA groups highlighted the importance of Selenomonas and Bifidobacterium, as well as bacterial tryptophan metabolism, in the production of 3-indoleacetic acid, which mitigated ruminal epithelial inflammation by modulating Th17 cells and inhibiting IL-17 signalling. Ruminal microbiota transplantation from HGW-SARA goats to healthy dairy goats and mice revealed the role of microbes in epithelial inflammation. Additionally, 3-indoleacetic acid supplementation reduced rumen inflammation and the IL-17 concentration in the serum, improved VFAs absorption, and enhanced milk production. CONCLUSIONS: This study unveiled that after SARA was induced by high-concentrate feeding, the rumen homeostasis was disrupted, and rumen fiber degradation capacity of dairy goats decreased, but the LPS synthesis capacity increased, and inflammation of the rumen epithelium was observed. However, the ruminal microbial species from the Bifidobacterium and Selenomonas genera and bacterial 3-indole acetic acid are pivotal in mitigating ruminal epithelial inflammation during SARA in dairy goats. This could potentially be attributed to the modulation of ruminal Th17 cell proportions and the inhibition of IL-17 signalling pathways. Video Abstract.

Rumen

Integrated dual transcriptome sequencing and experimental validation reveal potential mechanisms of baicalin against pneumocystis pneumonia in immunosuppressed rats.

BACKGROUND: Pneumocystis pneumonia (PCP) remains a major cause of morbidity and mortality in immunocompromised individuals. Although baicalin (Ba), a natural bioactive flavonoid, has demonstrated protective and therapeutic effects against PCP, its molecular mechanisms remain undefined. We employed dual RNA sequencing (dual RNA-seq) to characterize host and pathogen transcriptional responses to Ba treatment in an immunosuppressed rat model of PCP. METHODS: Comparative transcriptomic analyses identified differentially expressed genes in both the host and Pneumocystis, followed by Gene Ontology, Kyoto Encyclopedia of Genes and Genomes, and gene set enrichment analyses. Candidate targets were further investigated using network pharmacology, protein-protein interaction analysis, molecular docking, and molecular dynamics simulations. Key findings were validated by immunohistochemistry, enzyme-linked immunosorbent assay, and quantitative PCR. RESULTS: Ba markedly remodeled host and pathogen transcriptomes. Host transcriptomic analyses showed that Ba attenuated inflammatory and oxidative stress responses by modulating immune-related pathways, including Toll-like receptor, NF-κB, cytokine-cytokine receptor interaction, chemokine signaling, Th17 cell differentiation, and antigen processing and presentation. Experimental validation demonstrated that Ba reduced pulmonary expression of indoleamine 2,3-dioxygenase 1 (IDO1), Toll-like receptor 2 (TLR2), and TLR4 while increasing nuclear factor erythroid 2-related factor 2 (Nrf2) and its downstream antioxidant enzyme heme oxygenase-1 (HO-1). Pathogen transcriptomic analysis identified Pneumocystis Rtt109 (PcRtt109), a fungal histone acetyltransferase, as a potential pathogen-specific target that was significantly downregulated after Ba treatment. Molecular docking and molecular dynamics simulations supported stable interactions between Ba and IDO1, Nrf2, TLR2, TLR4, and PcRtt109, with the strongest predicted binding observed for PcRtt109. CONCLUSION: Dual RNA-seq revealed that Ba exerts anti-PCP activity through coordinated modulation of host and pathogen molecular networks. Its therapeutic effects are associated with suppression of inflammatory signaling, enhancement of antioxidant defenses, and inhibition of a fungal virulence-associated target. These findings provide mechanistic insights into host-pathogen interactions during PCP and support Ba as a potential therapeutic candidate for PCP.

Nrf2

Integrative computational analysis combining network pharmacology, regulatory network modeling, and molecular dynamics reveals the mechanisms of Quanshen compound in ITP.

UNLABELLED: Immune thrombocytopenia (ITP) is a hemorrhagic disorder caused by immune dysfunction. Quanshen Compound (QSC) is an in-house preparation developed by the Uyghur Hospital in Hotan Prefecture. This study primarily investigates and validates the potential pharmacological basis and mechanism of action of QSC in modulating immune thrombopoiesis. Based on the multi-database screening of the QSC and the related targets of ITP, the intersection was obtained to construct a protein-protein interaction (PPI) network and screen the core targets; the intersection targets were analyzed for gene ontology (GO) functional enrichment and Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway analysis using R packages; a component-target-pathway network was constructed to screen the key active components and their mechanisms of action. At the same time, the TF-mRNA-miRNA regulatory network of the core targets was constructed, and chromosome localization and subcellular localization analysis were performed; further, the binding stability of key components and core targets was verified through molecular docking and molecular dynamics simulation. A total of 227 potential target sites were screened out, among which TNF, IL6, AKT1, TP53 and IL1B were the core targets. The enrichment results indicated that these intersecting target sites mainly participated in inflammatory responses, immune regulation and hemostasis-related biological processes, and were significantly enriched in the PI3K-Akt signaling pathway, Toll-like receptor signaling pathway, Th17 cell differentiation and PD-1/PD-L1 signaling pathway. The core target TF-mRNA-miRNA regulatory network contained 184 nodes and 200 edges, suggesting that the core targets were subject to multi-level regulation. Molecular docking results showed that the main active components had good binding activity with the core targets, and molecular dynamics simulation further verified the stability of the complex. QSC may improve ITP through a multi-component, multi-target, and multi-pathway synergistic mechanism involving key targets such as TNF, IL6, AKT1, TP53, and IL1B, as well as the PI3K-Akt signaling pathway. These findings provide new insights into the potential therapeutic mechanisms of QSC against ITP and warrant further experimental validation. SUPPLEMENTARY INFORMATION: The online version contains supplementary material available at https://doi.org/10.1007/s40203-026-00718-0.

Immune thrombocytopenia

Jarid2 is induced by TCR signalling and controls iNKT cell maturation.

Jarid2 is a reported component of three lysine methyltransferase complexes, polycomb repressive complex 2 (PRC2) that methylates histone 3 lysine 27 (H3K27), and GLP-G9a and SETDB1 complexes that methylate H3K9. Here we show that Jarid2 is upregulated upon TCR stimulation and during positive selection in the thymus. Mice lacking Jarid2 in T cells display an increase in the frequency of IL-4-producing promyelocytic leukemia zinc finger (PLZF)(hi) immature invariant natural killer T (iNKT) cells and innate-like CD8(+) cells; Itk-deficient mice, which have a similar increase of innate-like CD8(+) cells, show blunted upregulation of Jarid2 during positive selection. Jarid2 binds to the Zbtb16 locus, which encodes PLZF, and thymocytes lacking Jarid2 show increased PLZF and decreased H3K9me3 levels. Jarid2-deficient iNKT cells perturb Th17 differentiation, leading to reduced Th17-driven autoimmune pathology. Our results establish Jarid2 as a novel player in iNKT cell maturation that regulates PLZF expression by modulating H3K9 methylation.

Animals

The RORγt ligand-binding domain controls the pathogenicity of IL-17A+ T cells differently in autoimmune diseases of the skin and CNS.

The transcription factor RORγt orchestrates Th17 lineage differentiation, thymic T cell development, and the pathogenesis of several autoimmune disorders. Lipid ligands are required for appropriate regulation of RORγt activity, but it is unclear to what extent lipid recognition controls RORγt function in vivo. Here, we show that the mutation of RORγt alanine-304 in the ligand-binding domain (LBD) to isoleucine (A304I) abrogates lipid-dependent Th17 differentiation and selectively ameliorates γδT17 cell-mediated psoriatic skin inflammation. In contrast, there is no improvement in experimental autoimmune encephalomyelitis in RORγtA304I mice. Consistent with this, the expression of genes characteristic of Th17 cells decreases in RORγtA304I mice, along with a compensatory increase of genes characteristic of Th1-like Th17 cells with pathogenic signatures. Thus, RORγt alanine-304 in the LBD is indispensable for generating γδT17 and conventional Th17 cells and for the suppression of the Th1-like Th17 pathogenic population, which decouples the pathogenicity of skin and CNS autoimmune diseases.

Animals

Hyper-IgE syndromes in pediatrics: clinical spectrum, differential diagnosis, and management.

Hyper-IgE syndromes (HIES) are rare inborn errors of immunity (≈1 per million) caused by pathogenic variants in STAT3, DOCK8 or IL6ST. They present with very high serum immunoglobulin E (IgE), recurrent bacterial or fungal infections, eczema and characteristic organ involvement. The autosomal dominant STAT3-deficient form features early-onset eczema, “cold” abscesses, recurrent pneumonias with pneumatoceles and skeletal or dental anomalies. Autosomal recessive forms such as DOCK8 or PGM3 deficiency show a more severe phenotype with viral skin infections, allergy, asthma and increased malignancy risk. HIES should be suspected in children with IgE >2000 IU/mL plus recurrent sinopulmonary or skin infections, severe eczema, atypical viral infections or a National Institutes of Health Hyper-IgE Syndrome (NIH HIES) score >40. Differentiation from severe atopic dermatitis, asthma, eosinophilic disorders and parasitic infections is essential. Evaluation includes eosinophils, lymphocyte subsets, T-helper 17 (Th17) cell analysis and targeted genetic testing. Management involves antimicrobial prophylaxis, treatment of complications, dermatologic care and genotype-based hematopoietic stem cell transplantation (HSCT), which is curative in DOCK8 but less effective in STAT3 deficiency. Early genomic confirmation enables timely recognition, identification of red flags, and genotype-specific therapy to improve long-term outcomes.

Humans

[Effects and mechanisms of Jiawei Yigong San on the Th17/Treg balance in food allergy].

Objective To explore the effects and mechanisms of Jiawei Yigong San (JWYGS) on the T helper type 17 (Th17)/regulatory T (Treg) cell balance in food allergy (FA). Methods Active components, action targets of JWYGS, and FA-related targets, were screened via network pharmacology. Overlapping targets between JWYGS and FA were used to construct a protein-protein interaction (PPI) network. Gene ontology (GO) and Kyoto encyclopedia of genes and genomes (KEGG) enrichment analyses were performed to predict key signaling pathways. Molecular docking was conducted to validate the binding affinity between the main active components and the predicted targets. Mice were randomly divided into control group, model group, JWYGS low-dose, medium-dose, and high-dose groups, and dexamethasone (DXM) group. An ovalbumin (OVA)-induced FA model was established. During the OVA challenge period, mice received daily intragastric administration, after which allergy and diarrhea scores were assessed. Small intestinal pathology was evaluated by HE staining. Serum ovalbumin-specific immunoglobulin E (OVA-sIgE), interleukin 6 (IL-6), IL-17, IL-2, and IL-10 were measured by ELISA. Small intestinal IL-6, IL-17, and IL-10 protein expression was detected by immunohistochemistry. Splenic Th17 and Treg cells were quantified by flow cytometry, and the Th17/Treg ratio was calculated. The mRNA expression of IL-6, retinoic acid receptor-related orphan receptor γt (RORγt), and forkhead box protein P3 (FOXP3) in the small intestine was detected by qPCR. Results Network pharmacology identified 235 active components of JWYGS and 136 common targets. GO and KEGG enrichment analyses highlighted cytokine response and Th17 differentiation. Molecular docking confirmed stable binding between core components and targets. Compared with the control group, the model group exhibited aggravated allergy and diarrhea scores, marked small intestinal inflammation and mucosal damage, elevated serum levels of OVA-sIgE, IL-6, IL-17 and IL-2, along with increased splenic Th17 cell frequency and Th17/Treg ratio. Intestinal IL-6 and IL-17 protein levels as well as IL-6 and RORγt mRNA expression were upregulated, whereas serum IL-10 levels were decreased, and intestinal expression of IL-10 protein and FOXP3 mRNA was downregulated. After JWYGS treatment, allergy and diarrhea scores were significantly reduced. Small intestinal inflammation and mucosal damage were alleviated. Serum levels of OVA-sIgE, IL-17, IL-6 and IL-2, Th17 cell frequency and the Th17/Treg ratio, intestinal IL-6 and IL-17 protein levels were decreased. IL-6 and RORγt mRNA expression was downregulated. Serum IL-10 levels were increased and intestinal expression of IL-10 protein and FOXP3 mRNA was upregulated. Moreover, the JWYGS high-dose group demonstrated comparable efficacy to the DXM group. Conclusion JWYGS can ameliorate symptoms and reverse the Th17/Treg imbalance in FA mice, potentially by inhibiting IL-6 transcription and regulating RORγt/FOXP3 expression.

Animals