1.Protective mechanism of modulating cyclic guanosine monophosphate-adenosine monophosphate synthase/stimulator of interferon gene pathway in oleic acid-induced acute lung injury in mice.
Liangyu MI ; Wenyan DING ; Yingying YANG ; Qianlin WANG ; Xiangyu CHEN ; Ziqi TAN ; Xiaoyu ZHANG ; Min ZHENG ; Longxiang SU ; Yun LONG
Chinese Critical Care Medicine 2025;37(7):651-656
OBJECTIVE:
To investigate the role and mechanism of the cyclic guanosine monophosphate-adenosine monophosphate synthase/stimulator of interferon gene (cGAS/STING) pathway in oleic acid-induced acute lung injury (ALI) in mice.
METHODS:
Male wild-type C57BL/6J mice were randomly divided into five groups (each n = 10): normal control group, ALI model group, and 5, 50, 500 μg/kg inhibitor pretreatment groups. The ALI model was established by tail vein injection of oleic acid (7 mL/kg), while the normal control group received no intervention. The inhibitor pretreatment groups were intraperitoneally injected with the corresponding doses of cGAS inhibitor RU.521 respectively 1 hour before modeling. At 24 hours post-modeling, blood was collected, and mice were sacrificed. Lung tissue pathological changes were observed under light microscopy after hematoxylin-eosin (HE) staining, and pathological scores were assessed. Western blotting was used to detect the protein expressions of cGAS, STING, phosphorylated TANK-binding kinase 1 (p-TBK1), phosphorylated interferon regulatory factor 3 (p-IRF3), and phosphorylated nuclear factor-κB p65 (p-NF-κB p65) in lung tissue. Immunohistochemistry was performed to observe STING and p-NF-κB positive expressions in lung tissue. Serum interferon-β (IFN-β) levels were measured by enzyme-linked immunosorbent assay (ELISA).
RESULTS:
Compared with the normal control group, the ALI model group exhibited significant focal alveolar thickening, intra-alveolar hemorrhage, pulmonary capillary congestion, and neutrophil infiltration in the pulmonary interstitium and alveoli, along with markedly increased pathological scores (10.33±0.58 vs. 1.33±0.58, P < 0.05). Protein expressions of cGAS, STING, p-TBK1, p-IRF3, and p-NF-κB p65 in lung tissue significantly increased [cGAS protein (cGAS/β-actin): 1.24±0.02 vs. 0.56±0.02, STING protein (STING/β-actin): 1.27±0.01 vs. 0.55±0.01, p-TBK1 protin (p-TBK1/β-actin): 1.34±0.03 vs. 0.22±0.01, p-IRF3 protein (p-IRF3/β-actin): 1.23±0.02 vs. 0.36±0.01, p-NF-κB p65 protein (p-NF-κB p65/β-actin): 1.30±0.02 vs. 0.53±0.02, all P < 0.05], positive expressions of STING and p-NF-κB in lung tissue were significantly elevated [STING (A value): 0.51±0.03 vs. 0.30±0.07, p-NF-κB (A value): 0.57±0.05 vs. 0.31±0.03, both P < 0.05], and serum IFN-β levels were also significantly higher (ng/L: 256.02±3.84 vs. 64.15±1.17, P < 0.05). The cGAS inhibitor pretreatment groups showed restored alveolar structural integrity, reduced inflammatory cell infiltration, and decreased hemorrhage area, along with dose-dependent lower pathological scores as well as the protein expressions of cGAS, STING, p-TBK1, p-IRF3 and p-NF-κB p65 in lung tissue, with significant differences between the 500 μg/kg inhibitor group and ALI model group [pathological score: 2.67±0.58 vs. 10.33±0.58, cGAS protein (cGAS/β-actin): 0.56±0.03 vs. 1.24±0.02, STING protein (STING/β-actin): 0.67±0.03 vs. 1.27±0.01, p-TBK1 protein (p-TBK1/β-actin): 0.28±0.01 vs. 1.34±0.03, p-IRF3 protein (p-IRF3/β-actin): 0.32±0.01 vs. 1.23±0.02, p-NF-κB p65 protein (p-NF-κB p65/β-actin): 0.63±0.01 vs. 1.30±0.02, all P < 0.05]. Compared with the ALI model group, positive expressions of STING and p-NF-κB in lung tissue were significantly reduced in the 500 μg/kg inhibitor group [STING (A value): 0.40±0.01 vs. 0.51±0.03, p-NF-κB (A value): 0.43±0.02 vs. 0.57±0.05, both P < 0.05], and serum IFN-β levels were also markedly reduced (ng/L: 150.03±6.19 vs. 256.02±3.84, P < 0.05).
CONCLUSIONS
The cGAS/STING pathway is activated in oleic acid-induced ALI, leading to exacerbated inflammatory responses and increased lung damage. RU.521 can inhibit cGAS, thereby down-regulating the expression of pathway proteins and cytokines, and providing protection to lung tissue.
Animals
;
Acute Lung Injury/chemically induced*
;
Male
;
Nucleotidyltransferases/metabolism*
;
Mice
;
Signal Transduction
;
Mice, Inbred C57BL
;
Membrane Proteins/metabolism*
;
Oleic Acid/adverse effects*
;
Transcription Factor RelA/metabolism*
;
Lung/pathology*
;
Interferon Regulatory Factor-3/metabolism*
;
Disease Models, Animal
2.Research progress of vaccine hesitancy in China in recent years
Liqin LU ; Xiaohua WANG ; Wenyan LONG ; Zhengang WEI ; Qiuxiang LI
Shanghai Journal of Preventive Medicine 2023;35(9):928-934
The 2030 Immunization Agenda of the World Health Organization (WHO) states that everyone in the world should fully benefit from vaccines to achieve good health and well-being. With the ever-changing disease spectrum and the improvement of residents' health literacy, relying solely on vaccines included in the National Immunization Program (NIP) is insufficient to meet the current requirements for disease prevention and control. Non-NIP vaccines play an important role in meeting people's diverse needs. Vaccine hesitancy is a global issue and an important factor affecting vaccine uptake. By reviewing relevant studies on vaccine hesitancy in recent years, this paper summarized different vaccination situations, current situation of vaccine hesitancy, measuring tools of vaccine hesitancy, and major influencing factors. It aims to provide references for the development of scientific and effective vaccine education strategies, which can increase public knowledge and understanding of vaccines, enhance healthcare professional's willingness and behavior in recommending vaccines, improve public vaccine literacy, and reduce vaccine hesitancy. At the same time, the supervision and guidance of media discourse should be strengthened to enhance the protective role of non-NIP vaccines in immunization barriers.
3.Epidemiological characteristics of local outbreak of COVID-19 caused by SARS-CoV-2 Delta variant in Liwan district, Guangzhou.
WenYan LI ; ZhiCheng DU ; Ying WANG ; Xiao LIN ; Long LU ; Qiang FANG ; WanFang ZHANG ; MingWei CAI ; Lin XU ; YuanTao HAO
Chinese Journal of Epidemiology 2021;42(10):1763-1768
4.S100A7:Biological properties and implications in diseases
Ye LIU ; Wenyan SUN ; Jiangang LONG ; Jiankang LIU
Journal of Medical Postgraduates 2014;(7):767-771
S100 A7 is a small calcium-binding protein that has an important role to play in the differentiation of human kerati -nocytes.It also helps build the chemical defense system of the skin and responds to oxidative stress and inflammation .The expression of S100 A7 can be induced by physical , chemical and biological stimulations .S100 A7 has many ligands and is related to the reactive oxygen species (ROS) via specific signaling pathways.As an important antimicrobial peptide, S100A7 helps the skin fight against main pathogens .S100 A7 is also a key indicator for the state of inflammation and cell differentiation;and its up-regulation has been cor-roborated in various skin diseases .In the brain of patients with Alzheimer′s disease, the up-regulation of S100A7 in primary cortico-hippocampal neurons can inhibit the generation of β-amyloid peptides .Moreover , S100 A7 is also up-regulated in different types of cancer and closely related to tumor malignancy and progression .In this review, we introduce biological properties of S 100A7 and high-light its expression characteristic in related diseases .This should have implication for the discovery of potential biomarkers and targets for the treatment of S100A7-related diseases.

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