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Published on: October 21, 2022
NARFL deficiency caused mitochondrial dysfunction in lung cancer cells by HIF-1α-DNMT1 axis
Hongzhou Liu1,2,3, Xueqin Wu1, Tianrong Yang1
1School of Clinical Medicine, The First Affiliated Hospital of Chengdu Medical College, 783# Xindu Avenue, Chengdu, 610500, Sichuan Province, People's Republic of China.
Abstract:
NARFL was reported to be a component of cytosolic iron-sulfur cluster assembly pathway and a causative gene of the diffused pulmonary arteriovenous malformations (dPAVMs). NARFL knockout dramatically impaired mitochondrial integrity in mice, which might promote mitochondrial dysfunction and lead to worse survival rate of lung cancer. However, the underlying molecular mechanism of NARFL deficiency in non-small cell lung cancer (NSCLC) is unknown. Knockdown assay was performed in A549 and H1299 cells. The protein levels of HIF-1α and DNMT1 were measured, and then Complex I activity, mtDNA copy numbers and mRNA levels of mtND genes were determined. Cisplatin resistance and cell proliferation were conducted using CCK8 assay. Cell migration and invasion were detected using wound heal assay and transwell assay. Survival analysis of lung cancer patients and KM plotter database were used for evaluating the potential value of NARFL deficiency. NARFL protein was expressed in two cell lines and knockdown assay significantly reduced its levels. Knockdown NARFL increased the protein levels of HIF-1α and DNMT1, and downregulated the mRNA levels of ND genes, mitochondrial Complex I activity, mtDNA copy number, and ATP levels. The mitochondrial dysfunction caused by NARFL deficiency were ameliorated by siHIF-1α and DNMT1 inhibitor. Knockdown NARFL increased the drug resistance and cell migration, and siHIF-1α reversed this effect. Moreover, NSCLC patients with NARFL deficiency had a poor survival rate using a tissue array and KM plotter database, and it would be a target for cancer prognosis and treatment. NARFL deficiency caused dysregulation of energy metabolism in lung cancer cells via HIF-1α-DNMT1 axis, which promoted drug resistance and cell migration. It provided a potential target for treatment and prognosis of lung cancer.
Insights
Narfil deficiency impairs mitochondrial function in non-small cell lung cancer (NSCLC) cells, promoting drug resistance and migration via the HIF-1α-DNMT1 pathway. This suggests Narfil as a potential therapeutic target for NSCLC prognosis and treatment.
Area of Science:
- Mitochondrial biology
- Cancer research
- Molecular oncology
Background:
- Narfil is linked to cytosolic iron-sulfur cluster assembly and pulmonary arteriovenous malformations.
- Narfil deficiency impairs mitochondrial integrity and may worsen lung cancer survival.
- The molecular mechanisms of Narfil deficiency in non-small cell lung cancer (NSCLC) remain unclear.
Purpose of the Study:
- To investigate the molecular mechanisms underlying Narfil deficiency in NSCLC.
- To explore the role of Narfil in mitochondrial dysfunction, drug resistance, and cell migration in NSCLC.
- To evaluate Narfil as a potential prognostic and therapeutic target for NSCLC.
Main Methods:
- Narfil knockdown was performed in A549 and H1299 NSCLC cell lines.
- Protein levels of HIF-1α and DNMT1, mitochondrial Complex I activity, mtDNA copy numbers, and mtND gene expression were assessed.
- Cell proliferation, drug resistance, migration, and invasion assays were conducted.
- Survival analysis utilized patient tissue arrays and the KM plotter database.
Main Results:
- Narfil knockdown increased HIF-1α and DNMT1 protein levels, while decreasing mitochondrial Complex I activity, mtDNA copy number, and ATP levels.
- Mitochondrial dysfunction induced by Narfil deficiency was reversed by siHIF-1α and a DNMT1 inhibitor.
- Narfil knockdown enhanced cisplatin resistance and cell migration, effects partially reversed by siHIF-1α.
- NSCLC patients with Narfil deficiency exhibited poorer survival rates.
Conclusions:
- Narfil deficiency dysregulates energy metabolism in NSCLC cells through the HIF-1α-DNMT1 axis.
- This dysregulation promotes chemoresistance and enhances cell migration, contributing to poor prognosis.
- Narfil represents a potential therapeutic target for improving NSCLC treatment and patient outcomes.
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