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Activation of the impaired NAMPT/SIRT7/SOD2 axis restores alveolar progenitor cell renewal in idiopathic pulmonary fibrosis
Xuexi Zhang, Xue Liu, Yujie Qiao, Anas Rabata, Ningshan Liu, Changfu Yao, Tanyalak Parimon, Danica Chen, Cory Hogaboam, Peter Chen, Barry Stripp, Stephen J. Gardell, Dianhua Jiang, Paul W. Noble, Jiurong Liang
Xuexi Zhang, Xue Liu, Yujie Qiao, Anas Rabata, Ningshan Liu, Changfu Yao, Tanyalak Parimon, Danica Chen, Cory Hogaboam, Peter Chen, Barry Stripp, Stephen J. Gardell, Dianhua Jiang, Paul W. Noble, Jiurong Liang
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Research Article Cell biology Metabolism Pulmonology

Activation of the impaired NAMPT/SIRT7/SOD2 axis restores alveolar progenitor cell renewal in idiopathic pulmonary fibrosis

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Abstract

Alveolar type 2 (AT2) progenitor cell exhaustion and impaired regenerative capacity are key pathogenic hallmarks in idiopathic pulmonary fibrosis (IPF). Nicotinamide adenine dinucleotide (NAD+) functions as a central regulator of cellular energy metabolism. We have previously reported that downregulation of NAD+-dependent sirtuin signaling contributes to the impaired progenitor cell function of IPF AT2 cells. In this study, we found that a key NAD+ biosynthesis enzyme, nicotinamide phosphoribosyltransferase (NAMPT), was significantly downregulated in IPF AT2 cells. NAMPT deficiency impaired AT2 renewal and enhanced lung fibrosis through downregulation of SIRT7 and SOD2, which resulted in increased oxidative stress, mitochondrial dysfunction, accumulated aberrant transitional cells, and impaired differentiation from AT2 to alveolar type 1 (AT1) cells. A mouse model with AT2-specific deletion of Nampt showed severely impaired AT2 renewal capacity and increased susceptibility to bleomycin lung injury. Activation of NAMPT by small-molecule activators promoted IPF AT2 renewal and reversed lung fibrosis in WT mice. NAMPT activation is a potentially promising therapeutic strategy for restoring AT2 progenitor cell function and halting or reversing progressive pulmonary fibrosis.

Authors

Xuexi Zhang, Xue Liu, Yujie Qiao, Anas Rabata, Ningshan Liu, Changfu Yao, Tanyalak Parimon, Danica Chen, Cory Hogaboam, Peter Chen, Barry Stripp, Stephen J. Gardell, Dianhua Jiang, Paul W. Noble, Jiurong Liang

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Figure 5

NAMPT regulates mitochondrial function and AT2 cell differentiation.

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NAMPT regulates mitochondrial function and AT2 cell differentiation.
(A)...
(A) Violin plots showing comparison of the mitochondria-related gene scores for NAMPThi and NAMPTlo human AT2 cells in the scRNA-seq dataset. (B and C) The OCR of (B) immortalized healthy and IPF AT2 cells and (C) immortalized healthy AT2 cells treated with FK866 or vehicle control was measured by Seahorse analysis (n = 6/group). (D) Fold change in the expression of mitochondrial genes in AT2 cells from patients with IPF treated with NAT (10 μM) or DMSO control, analyzed by bulk RNA-seq. (E) Enrichment plot for Biocarta mitochondria pathway by gene set enrichment analysis (GSEA) of NAMPTACT versus control immortalized AT2 cells. Green curves indicate enrichment scores. The normalized enrichment score (NES) and family-wise error rate (FWER) P value are indicated in the graph. A NES of greater than 1.1 and a P value of less than 0.05 were considered statistically significant. (F) Mitochondrial membrane potential of immortalized healthy and IPF AT2 cells treated or not with NAT, evaluated by JC-1 staining followed by flow cytometry (n = 3/group; ****P < 0.0001, by 2-way ANOVA). (G) Mitochondrial ATP production of immortalized IPF AT2 cells with NAMPT activation by CRISPR/Cas9 and the control was measured by the Seahorse XF Real-Time ATP Rate Assay kit. Data are shown as the mean ± SEM from 6 replicates. **P < 0.01, by unpaired, 2-tailed Student’s t test. (H) Violin plots of transitional cell marker genes in NAMPThi versus NAMPTlo human AT2 cells. (I–M) Fold change in the expression of (I) AT2, (J) transitional genes, (K) AT1 cell marker genes, (L) proliferation genes, and (M) caspase genes in AT2 cells from patients with IPF treated with NAT or DMSO, analyzed by bulk RNA-seq. Data are shown as the mean ± SEM. All experiments were repeated at least 3 times. Rot/AA, rotenone/Antimycin A.

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ISSN: 0021-9738 (print), 1558-8238 (online)

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