Glutamine Metabolism Is Required for Alveolar Regeneration during Lung Injury

谷氨酰胺 谷氨酰胺酶 生物 肺纤维化 转录组 纤维化 新陈代谢 特发性肺纤维化 癌症研究 细胞生物学 生物化学 内科学 病理 医学 基因表达 氨基酸 基因
作者
Sisi Wang,Xue Li,Qingwen Ma,Qi Wang,Junping Wu,Hongzhi Yu,Kuan Li,Yu Li,Jianhai Wang,Qiuyang Zhang,Youwei Wang,Qi Wu,Huaiyong Chen
出处
期刊:Biomolecules [Multidisciplinary Digital Publishing Institute]
卷期号:12 (5): 728-728 被引量:30
标识
DOI:10.3390/biom12050728
摘要

(1) Background: Abnormal repair after alveolar epithelial injury drives the progression of idiopathic pulmonary fibrosis (IPF). The maintenance of epithelial integrity is based on the self-renewal and differentiation of alveolar type 2 (AT2) cells, which require sufficient energy. However, the role of glutamine metabolism in the maintenance of the alveolar epithelium remains unclear. In this study, we investigated the role of glutamine metabolism in AT2 cells of patients with IPF and in mice with bleomycin-induced fibrosis. (2) Methods: Single-cell RNA sequencing (scRNA-seq), transcriptome, and metabolomics analyses were conducted to investigate the changes in the glutamine metabolic pathway during pulmonary fibrosis. Metabolic inhibitors were used to stimulate AT2 cells to block glutamine metabolism. Regeneration of AT2 cells was detected using bleomycin-induced mouse lung fibrosis and organoid models. (3) Results: Single-cell analysis showed that the expression levels of catalytic enzymes responsible for glutamine catabolism were downregulated (p < 0.001) in AT2 cells of patients with IPF, suggesting the accumulation of unusable glutamine. Combined analysis of the transcriptome (p < 0.05) and metabolome (p < 0.001) revealed similar changes in glutamine metabolism in bleomycin-induced pulmonary fibrosis in mice. Mechanistically, inhibition of the key enzymes involved in glucose metabolism, glutaminase-1 (GLS1) and glutamic-pyruvate transaminase-2 (GPT2) leads to reduced proliferation (p < 0.01) and differentiation (p < 0.01) of AT2 cells. (4) Conclusions: Glutamine metabolism is required for alveolar epithelial regeneration during lung injury.
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