1.Research progress in immunology of DNA-dependent activator of IFN-regulatory factors (DAI) as a pattern recognition receptor.
Chinese Journal of Cellular and Molecular Immunology 2023;39(12):1141-1145
DNA sensor, a kind of pattern recognition receptor (PRR), is widely expressed in innate immune cells. It activates the inflammatory signaling pathways and triggers an innate immune response by recognizing the pathogens or DNA in abnormal host cells. DNA-dependent activator of IFN-regulatory factors (DAI) is the first cytoplasmic DNA receptor discovered, which plays an important role in regulating the innate immune responses characterized by induction of interferon and programmed cell death. The article summarizes the molecular characteristics of DAI, its downstream signaling pathways, and its role and mechanism in anti-infective immunity, tumor immunity and inflammatory diseases. It also makes a preliminary exploration of the correlation between DAI and transplantation immunology, and provides a new target for the therapy of various immune diseases.
DNA/metabolism*
;
Receptors, Pattern Recognition
;
Immunity, Innate
;
Signal Transduction/genetics*
;
DNA-Binding Proteins/genetics*
2.The I226R protein of African swine fever virus inhibits the cGAS-STING-mediated innate immune response.
Yabo LI ; Huicong LOU ; Yuna ZHAO ; Wenhui FAN ; Pengtao JIAO ; Lei SUN ; Tingrong LUO ; Wenjun LIU
Chinese Journal of Biotechnology 2023;39(12):4796-4808
This study aimed to explore the mechanism of how African swine fever virus (ASFV) I226R protein inhibits the cGAS-STING signaling pathway. We observed that I226R protein (pI226R) significantly inhibited the cGAS-STING-mediated type Ⅰ interferons and the interferon-stimulated genes production by dual-luciferase reporter assay system and real-time quantitative PCR. The results of co-immunoprecipitation assay and confocal microscopy showed that pI226R interacted with cGAS. Furthermore, pI226R promoted cGAS degradation through autophagy-lysosome pathway. Moreover, we found that pI226R decreased the binding of cGAS to E3 ligase tripartite motif protein 56 (TRIM56), resulting in the weakened monoubiquitination of cGAS, thus inhibiting the activation of cGAS and cGAS-STING signaling. In conclusion, ASFV pI226R suppresses the antiviral innate immune response by antagonizing cGAS, which contributes to an in-depth understanding of the immune escape mechanism of ASFV and provides a theoretical basis for the development of vaccines.
Animals
;
Swine
;
African Swine Fever Virus/metabolism*
;
Membrane Proteins/metabolism*
;
Immunity, Innate
;
Nucleotidyltransferases/metabolism*
;
Signal Transduction/genetics*
3.The E248R protein of African swine fever virus inhibits the cGAS-STING-mediated innate immunity.
Yinguang LIU ; Wenping YANG ; Yuan WEN ; Qingli NIU ; Jifei YANG ; Guiquan GUAN ; Hong YIN ; Haixue ZHENG ; Dan LI ; Zhijie LIU
Chinese Journal of Biotechnology 2022;38(5):1837-1846
We researched the mechanism of African swine fever virus (ASFV) protein E248R in regulating the cGAS-STING pathway. First, we verified via the dual-luciferase reporter assay system that E248R protein inhibited the secretion of IFN-β induced by cGAS-STING or HT-DNA in a dose-dependent manner. The relative quantitative PCR analysis indicated that the overexpression of E248R inhibited HT-DNA-induced transcription of IFN-b1, RANTES, IL-6, and TNF-α in PK-15 cells. Next, we found that E248R interacted with STING by co-immunoprecipitation assay and laser confocal microscopy. Finally, we demonstrated that E248R inhibited the expression of STING protein by using Western blotting. We demonstrated for the first time that the E248R protein of ASFV suppressed the host innate immune response via inhibiting STING expression. The results are pivotal in extending the understanding of the ASFV immune escape and can guide the design of vaccines against ASFV.
African Swine Fever Virus/genetics*
;
Animals
;
DNA
;
Immunity, Innate
;
Nucleotidyltransferases/metabolism*
;
Signal Transduction
;
Swine
4.Biological functions and ubiquitin modification of TBK1 in innate immunity.
Henan XU ; Xinyu LI ; Min FANG ; Wei JIANG
Chinese Journal of Biotechnology 2021;37(4):1189-1204
The innate immune system initiates innate immune responses by recognizing pathogen-related molecular patterns on the surface of pathogenic microorganisms through pattern recognition receptors. Through cascade signal transduction, it activates downstream transcription factors NF-κB and interferon regulatory factors (IRFs), and then leads to the production of inflammatory cytokines and type Ⅰ interferon, which resists the infection of pathogenic microorganism. TBK1 is a central adapter protein of innate immune signaling pathway and can activate both NF-κB and IRFs. It is a key protein kinase in the process of anti-infection. The finetuning regulation of TBK1 is essential to maintain immune homeostasis and resist pathogen invasion. This paper reviews the biological functions and ubiquitin modification of TBK1 in innate immunity, to provide theoretical basis for clinical treatment of pathogenic infections and autoimmune diseases.
Immunity, Innate
;
Interferon Regulatory Factor-3/metabolism*
;
Protein-Serine-Threonine Kinases/genetics*
;
Signal Transduction
;
Ubiquitin
5.Pathways and mechanisms of RNA interference mediated by viral siRNA.
Chinese Journal of Biotechnology 2021;37(4):1237-1248
RNA interference (RNAi) is one of the important mechanisms to regulate gene expression in eukaryotes. One of the original functions of RNAi is to facilitate the antiviral strategy of host. Early studies reveal that invertebrates can use RNAi to resist viruses. However, if this mechanism exists in mammals is still controversial. The latest studies confirm that mammals do have the RNAi-based immunity, and researchers believe that RNAi-based antiviral immunity is a brand-new immunological mechanism that was neglected in the past. It is worthy to note that virus can also use RNAi to enhance its infectivity and immune escape in host cells. This review introduces the research history of RNAi-based antiviral immunity in animals and summarizes the main findings in this field. Last but not least, we indicate a series of unresolved questions about RNAi-based antiviral immunity, and explore the relationship between RNAi-based antiviral immunity and other innate immunological pathways. The virus-mediated RNAi pathway in animal is not only an interesting basic biology question, but also has important guiding roles in the development of antiviral drugs.
Animals
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Antiviral Agents
;
Immunity, Innate/genetics*
;
Mammals
;
RNA Interference
;
RNA, Small Interfering/genetics*
;
RNA, Viral
6.Oral administration of Lactobacillus rhamnosus GG to newborn piglets augments gut barrier function in pre-weaning piglets.
Yang WANG ; Li GONG ; Yan-Ping WU ; Zhi-Wen CUI ; Yong-Qiang WANG ; Yi HUANG ; Xiao-Ping ZHANG ; Wei-Fen LI
Journal of Zhejiang University. Science. B 2019;20(2):180-192
To understand the effects of Lactobacillus rhamnosus GG (ATCC 53103) on intestinal barrier function in pre-weaning piglets under normal conditions, twenty-four newborn littermate piglets were randomly divided into two groups. Piglets in the control group were orally administered with 2 mL 0.1 g/mL sterilized skim milk while the treatment group was administered the same volume of sterilized skim milk with the addition of viable L. rhamnosus at the 1st, 3rd, and 5th days after birth. The feeding trial was conducted for 25 d. Results showed that piglets in the L. rhamnosus group exhibited increased weaning weight and average daily weight gain, whereas diarrhea incidence was decreased. The bacterial abundance and composition of cecal contents, especially Firmicutes, Bacteroidetes, and Fusobacteria, were altered by probiotic treatment. In addition, L. rhamnosus increased the jejunal permeability and promoted the immunologic barrier through regulating antimicrobial peptides, cytokines, and chemokines via Toll-like receptors. Our findings indicate that oral administration of L. rhamnosus GG to newborn piglets is beneficial for intestinal health of pre-weaning piglets by improving the biological, physical, and immunologic barriers of intestinal mucosa.
Administration, Oral
;
Animals
;
Animals, Newborn
;
Cytokines/genetics*
;
Female
;
Gastrointestinal Microbiome
;
Immunity, Innate
;
Intestinal Mucosa/immunology*
;
Lacticaseibacillus rhamnosus
;
Male
;
Probiotics/administration & dosage*
;
Signal Transduction
;
Swine
;
Weaning
7.MicroRNAs and immunity in periodontal health and disease.
Xianghong LUAN ; Xiaofeng ZHOU ; Afsar NAQVI ; Marybeth FRANCIS ; Deborah FOYLE ; Salvador NARES ; Thomas G H DIEKWISCH
International Journal of Oral Science 2018;10(3):24-24
MicroRNAs (miRNAs) are critical regulators of the host immune and inflammatory response against bacterial pathogens. In the present review, we discuss target genes, target gene functions, the potential regulatory role of miRNAs in periodontal tissues, and the potential role of miRNAs as biomarkers and therapeutics. In periodontal disease, miRNAs exert control over all aspects of innate and adaptive immunity, including the functions of neutrophils, macrophages, dendritic cells and T and B cells. Previous human studies have highlighted some key miRNAs that are dysregulated in periodontitis patients. In the present study, we mapped the major miRNAs that were altered in our reproducible periodontitis mouse model relative to control animals. The miRNAs that were upregulated as a result of periodontal disease in both human and mouse studies included miR-15a, miR-29b, miR-125a, miR-146a, miR-148/148a and miR-223, whereas miR-92 was downregulated. The association of individual miRNAs with unique aspects of periodontal disease and their stability in gingival crevicular fluid underscores their potential as markers for periodontal disease progression or healthy restitution. Moreover, miRNA therapeutics hold great promise for the future of periodontal therapy because of their ability to modulate the immune response to infection when applied in conjunction with synthetic antagomirs and/or relatively straightforward delivery strategies.
Adaptive Immunity
;
Animals
;
Biomarkers
;
Disease Progression
;
Humans
;
Immunity, Innate
;
MicroRNAs
;
genetics
;
immunology
;
Periodontal Diseases
;
genetics
;
immunology
8.Effects of Gardenia jasminoides extracts on cognition and innate immune response in an adult Drosophila model of Alzheimer's disease.
Wei-Wei MA ; Ye TAO ; Yan-Ying WANG ; I-Feng PENG
Chinese Journal of Natural Medicines (English Ed.) 2017;15(12):899-904
Herbal extracts have been extensively used worldwide for their application on memory improvement, especially among aged and memory-deficit populations. In the present study, the memory loss induced by human Abeta protein over-expression in fruitfly Alzheimer's disease (AD) model was rescued by multiple extracts from Gardenia jasminoides. Three extracts that rich with gardenia yellow, geniposide, and gardenoside components showed distinct rescue effect on memory loss. Further investigation on adding gardenoside into a formula of Ganoderma lucidum, Panax notoginseng and Panax ginseng (GPP) also support its therapeutic effects on memory improvement. Interestingly, the application of GPP and gardenoside did not alter the accumulation of Abeta proteins but suppressed the expression of immune-related genes in the brain. These results revealed the importance and relevancy of anti-inflammation process and the underlying mechanisms on rescuing memory deficits, suggesting the potential therapeutic use of the improved GPP formulation in improving cognition in defined population in the future.
Alzheimer Disease
;
drug therapy
;
Animals
;
Antimicrobial Cationic Peptides
;
genetics
;
Brain
;
drug effects
;
immunology
;
Cognition
;
drug effects
;
Disease Models, Animal
;
Drosophila
;
Drosophila Proteins
;
genetics
;
Gardenia
;
chemistry
;
Gene Expression Regulation
;
drug effects
;
Immunity, Innate
;
drug effects
;
Iridoids
;
chemistry
;
isolation & purification
;
pharmacology
;
Plant Extracts
;
chemistry
;
isolation & purification
;
pharmacology
;
Polymerase Chain Reaction
9.LRRK2 enhances Nod1/2-mediated inflammatory cytokine production by promoting Rip2 phosphorylation.
Protein & Cell 2017;8(1):55-66
The innate immune system is critical for clearing infection, and is tightly regulated to avert excessive tissue damage. Nod1/2-Rip2 signaling, which is essential for initiating the innate immune response to bacterial infection and ER stress, is subject to many regulatory mechanisms. In this study, we found that LRRK2, encoded by a gene implicated in Crohn's disease, leprosy and familial Parkinson's disease, modulates the strength of Nod1/2-Rip2 signaling by enhancing Rip2 phosphorylation. LRRK2 deficiency markedly reduces cytokine production in macrophages upon Nod2 activation by muramyl dipeptide (MDP), Nod1 activation by D-gamma-Glu-meso-diaminopimelic acid (iE-DAP) or ER stress. Our biochemical study shows that the presence of LRRK2 is necessary for optimal phosphorylation of Rip2 upon Nod2 activation. Therefore, this study reveals that LRRK2 is a new positive regulator of Rip2 and promotes inflammatory cytokine induction through the Nod1/2-Rip2 pathway.
Animals
;
Cytokines
;
genetics
;
immunology
;
HEK293 Cells
;
Humans
;
Immunity, Innate
;
genetics
;
Inflammation
;
genetics
;
immunology
;
Leucine-Rich Repeat Serine-Threonine Protein Kinase-2
;
genetics
;
immunology
;
Mice
;
Mice, Knockout
;
Nod1 Signaling Adaptor Protein
;
genetics
;
immunology
;
Nod2 Signaling Adaptor Protein
;
genetics
;
immunology
;
Phosphorylation
;
genetics
;
immunology
;
Receptor-Interacting Protein Serine-Threonine Kinase 2
;
genetics
;
immunology
;
Receptor-Interacting Protein Serine-Threonine Kinases
;
genetics
;
immunology
;
Signal Transduction
;
genetics
;
immunology
10.RIG-I-like receptor-induced IRF3 mediated pathway of apoptosis (RIPA): a new antiviral pathway.
Saurabh CHATTOPADHYAY ; Ganes C SEN
Protein & Cell 2017;8(3):165-168
The innate immune response is the first line of host defense to eliminate viral infection. Pattern recognition receptors in the cytosol, such as RIG-I-like receptors (RLR) and Nod-like receptors (NLR), and membrane bound Toll like receptors (TLR) detect viral infection and initiate transcription of a cohort of antiviral genes, including interferon (IFN) and interferon stimulated genes (ISGs), which ultimately block viral replication. Another mechanism to reduce viral spread is through RIPA, the RLR-induced IRF3-mediated pathway of apoptosis, which causes infected cells to undergo premature death. The transcription factor IRF3 can mediate cellular antiviral responses by both inducing antiviral genes and triggering apoptosis through the activation of RIPA. The mechanism of IRF3 activation in RIPA is distinct from that of transcriptional activation; it requires linear polyubiquitination of specific lysine residues of IRF3. Using RIPA-active, but transcriptionally inactive, IRF3 mutants, it was shown that RIPA can prevent viral replication and pathogenesis in mice.
Animals
;
Apoptosis
;
DEAD Box Protein 58
;
genetics
;
immunology
;
metabolism
;
Humans
;
Immunity, Innate
;
Interferon Regulatory Factor-3
;
genetics
;
immunology
;
metabolism
;
Mice
;
Virus Diseases
;
genetics
;
immunology
;
metabolism

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