The role and mechanism of autophagy in lipopolysaccharide-induced inflammatory response of A549 cells

SHI Jia, TAO Hui-Xian, GUO Yan, ZOU Yun-Su, WANG Mu-Zi, LU Zhi-Tao, DING Yi-Fang, XU Wei-Dong, ZHOU Xiao-Guang

Chinese Journal of Contemporary Pediatrics ›› 2022, Vol. 24 ›› Issue (10) : 1161-1170.

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Chinese Journal of Contemporary Pediatrics ›› 2022, Vol. 24 ›› Issue (10) : 1161-1170. DOI: 10.7499/j.issn.1008-8830.2202135
EXPERIMENTAL RESEARCH

The role and mechanism of autophagy in lipopolysaccharide-induced inflammatory response of A549 cells

  • SHI Jia, TAO Hui-Xian, GUO Yan, ZOU Yun-Su, WANG Mu-Zi, LU Zhi-Tao, DING Yi-Fang, XU Wei-Dong, ZHOU Xiao-Guang
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Abstract

Objective To study the role and mechanism of autophagy in lipopolysaccharide (LPS)-induced inflammatory response of human alveolar epithelial A549 cells. Methods A549 cells were stimulated with LPS to establish a cell model of inflammatory response, and were then grouped (n=3 each) by concentration (0, 1, 5, and 10 μg/mL) and time (0, 4, 8, 12, and 24 hours). The A549 cells were treated with autophagy inhibitor 3-methyladenine (3-MA) to be divided into four groups (n=3 each): control, LPS, 3-MA, and 3-MA+LPS. The A549 cells were treated with autophagy agonist rapamycin (RAPA) to be divided into four groups (n=3 each): control, LPS, RAPA, and RAPA+LPS. The A549 cells were transfected with the Toll-like receptor 4 (TLR4) overexpression plasmid to be divided into four groups (n=3 each): TLR4 overexpression control, TLR4 overexpression, TLR4 overexpression control+LPS, and TLR4 overexpression+LPS. The A549 cells were transfected with TLR4 siRNA to be divided into four groups (n=3 each): TLR4 silencing control,TLR4 silencing, TLR4 silencing control+LPS, and TLR4 silencing+LPS. CCK-8 assay was used to measure cell viability. Western blot was used to measure the protein expression levels of inflammatory indicators (NLRP3, Caspase-1, and ASC), autophagic indicators (LC3B, Beclin-1, and P62), and TLR4. Results After stimulation with 1 μg/mL LPS for 12 hours, the levels of inflammatory indicators (NLRP3, Caspase-1, and ASC), autophagic indicators (LC3B, Beclin-1, and P62), and TLR4 increased and reached the peak (P<0.05). Compared with the LPS group, the 3-MA+LPS group had reduced expression of autophagy-related proteins and increased expression of inflammation-related proteins and TLR4, while the RAPA+LPS group had increased expression of autophagy-related proteins and reduced inflammation-related proteins and TLR4 (P<0.05). The TLR4 overexpression+LPS group had reduced autophagy-related proteins and increased inflammation-related proteins compared with the TLR4 overexpression control+LPS group, and the TLR4 silencing+LPS group had increased autophagy-related proteins and reduced inflammation-related proteins compared with the TLR4 silencing control+LPS group (P<0.05). Conclusions In the LPS-induced inflammatory response of human alveolar epithelial A549 cells, autophagic flux has a certain protective effect on A549 cells. TLR4-mediated autophagic flux negatively regulates the LPS-induced inflammatory response of A549 cells.

Key words

Autophagy / Inflammatory response / Lipopolysaccharide / Human alveolar epithelial A549 cell

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SHI Jia, TAO Hui-Xian, GUO Yan, ZOU Yun-Su, WANG Mu-Zi, LU Zhi-Tao, DING Yi-Fang, XU Wei-Dong, ZHOU Xiao-Guang. The role and mechanism of autophagy in lipopolysaccharide-induced inflammatory response of A549 cells[J]. Chinese Journal of Contemporary Pediatrics. 2022, 24(10): 1161-1170 https://doi.org/10.7499/j.issn.1008-8830.2202135

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