1.Research progress on risk factors of radiation pneumonitis caused by stereotactic body radiotherapy for non-small-cell lung cancer
Shoupeng FU ; Yingjie ZHANG ; Jianbin LI
Chinese Journal of Radiation Oncology 2021;30(12):1330-1334
Stereotactic body radiotherapy (SBRT/SABR) has become an important option in the treatment of early non-small-cell lung cancer (NSCLC). Radiation pneumonitis (RP) is the main side effect of early NSCLC patients after SBRT/SABR. Patient factors, tumor factors and treatment factors are all associated with the occurrence of RP in early NSCLC patients after SBRT/SABR. In recent years, relevant studies have further clarified the relationship between these factors and RP. In addition, the prediction factors related to RP occurrence are further discussed. In this paper, relevant research progresses in recent years were reviewed.
2.Effect of Palrnatine on lipopolysaccharide-induced acute lung injury by inhibiting activation of the Akt/NF-κB pathway
KAN XINGCHI ; CHEN YINGSHENG ; HUANG BINGXU ; FU SHOUPENG ; GUO WENJIN ; RAN XIN ; CAO YU ; XU DIANWEN ; CHENG JI ; YANG ZHANQING ; XU YANLING
Journal of Zhejiang University. Science. B 2021;22(11):929-940
Inflammation plays an important role in the development of acute lung injury (ALI). Severe pulmonary inflammation can cause acute respiratory distress syndrome (ARDS) or even death. Expression of proinflammatory interleukin-1β(IL-1β) and inducible nitric oxide synthase (iNOS) in the process of pulmonary inflammation will further exacerbate the severity of ALI. The purpose of this study was to explore the effect of Palrnatine (Pa) on lipopolysaccharide (LPS)-induced mouse ALI and its underlying mechanism. Pa, a natural product, has a wide range of pharmacological activities with the potential to protect against lung injury. Western blotting and quantitative real-time polymerase chain reaction (qRT-PCR) assays were performed to detect the expression and translation of inflammatory genes and proteins in vitro and in vivo. Immunoprecipitation was used to detect the degree of P65 translocation into the nucleus. We also used molecular modeling to further clarify the mechanism of action. The results showed that Pa pretreatment could significantly inhibit the expression and secretion of the inflammatory cytokine IL-1β, and significantly reduce the protein level of the proinflammatory protease iNOS, in both in vivo and in vitro models induced by LPS. Further mechanism studies showed that Pa could significantly inhibit the activation of the protein kinase B (Akt)/nuclear factor-κB (NF-κB) signaling pathway in the LPS-induced ALI mode and in LPS-induced RAW264.7 cells. Through molecular dynamics simulation, we observed that Pa was bound to the catalytic pocket of Akt and effectively inhibited the biological activity of Akt. These results indicated that Pa significantly relieves LPS-induced ALI by activating the Akt/NF-κB signaling pathway.
3.Integrated metabolism and epigenetic modifications in the macrophages of mice in responses to cold stress.
Jingjing LU ; Shoupeng FU ; Jie DAI ; Jianwen HU ; Shize LI ; Hong JI ; Zhiquan WANG ; Jiahong YU ; Jiming BAO ; Bin XU ; Jingru GUO ; Huanmin YANG
Journal of Zhejiang University. Science. B 2022;23(6):461-480
The negative effects of low temperature can readily induce a variety of diseases. We sought to understand the reasons why cold stress induces disease by studying the mechanisms of fine-tuning in macrophages following cold exposure. We found that cold stress triggers increased macrophage activation accompanied by metabolic reprogramming of aerobic glycolysis. The discovery, by genome-wide RNA sequencing, of defective mitochondria in mice macrophages following cold exposure indicated that mitochondrial defects may contribute to this process. In addition, changes in metabolism drive the differentiation of macrophages by affecting histone modifications. Finally, we showed that histone acetylation and lactylation are modulators of macrophage differentiation following cold exposure. Collectively, metabolism-related epigenetic modifications are essential for the differentiation of macrophages in cold-stressed mice, and the regulation of metabolism may be crucial for alleviating the harm induced by cold stress.
Acetylation
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Animals
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Cold-Shock Response
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Epigenesis, Genetic
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Macrophages/metabolism*
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Mice
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Mitochondria/metabolism*