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Published on: July 21, 2017
Abnormal expression of CUX1 influences autophagy activation in paroxysmal nocturnal hemoglobinuria
Junshu Wu1,2, Liyan Li1,2, Zhaoyun Liu1,2
1Department of Hematology, Tianjin Medical University General Hospital, 154 Anshan Street, Tianjin 300052, China.
Insights
Cut-like homeobox 1 (CUX1) loss-of-function mutations enhance autophagy in paroxysmal nocturnal hemoglobinuria (PNH). Lower CUX1 levels in PNH patients correlate with increased autophagy and cell proliferation, suggesting CUX1
Area of Science:
- Cellular Biology
- Hematology
- Molecular Biology
Background:
- Autophagy mechanisms in paroxysmal nocturnal hemoglobinuria (PNH) are not well understood.
- Previous research identified CUX1 (Cut-like homeobox 1) as a potentially relevant gene in PNH.
- CD59- cells from PNH patients were previously sequenced to identify candidate genes.
Purpose of the Study:
- To investigate the role of CUX1 in autophagy within PNH.
- To analyze the correlation between CUX1 expression and PNH clinical indicators.
- To elucidate the impact of CUX1 on cell proliferation and autophagy pathways in PNH.
Main Methods:
- Measurement of CUX1 messenger RNA and protein levels in PNH patients and healthy controls.
- Generation of PNH cell lines with altered CUX1 expression using PIGA knockout and lentiviral transfection.
- Assessment of cell proliferation (CCK-8, EDU assays), autophagy markers (Western blotting, electron microscopy), and signaling pathways (PI3K/AKT/mTOR).
Main Results:
- PNH leukocytes exhibited lower CUX1 messenger RNA and protein levels compared to controls.
- Reduced CUX1 expression in a PNH cell model led to increased cell proliferation and enhanced autophagy.
- Autophagy markers (Beclin-1, LC3A/B, ULK1) and autophagosome formation were elevated with decreased CUX1.
- PI3K/AKT/mTOR pathway phosphorylation was reduced in PNH cells with lower CUX1.
Conclusions:
- Loss-of-function mutations in CUX1 are associated with increased autophagy in PNH.
- CUX1 appears to regulate autophagy, potentially impacting PNH pathogenesis.
- Targeting CUX1 or autophagy pathways may offer therapeutic strategies for PNH.
Abstract:
The mechanism underlying autophagy in paroxysmal nocturnal hemoglobinuria (PNH) remains largely unknown. We previously sequenced the entire genome exon of the CD59- cells from 13 patients with PNH and found genes such as CUX1 encoding Cut-like homeobox 1. Peripheral blood samples from 9 patients with PNH and 7 healthy control subjects were obtained to measure CUX1 expression. The correlation between CUX1 messenger RNA expression and PNH clinical indicators was analyzed. To simulate CUX1 expression in patients with PNH, we generated a panel of PNH cell lines by knocking out PIGA in K562 cell lines and transfected lentivirus with CUX1. CCK-8 and EDU assay assessed cell proliferation. Western blotting was used to detect Beclin-1, LC3A, LC3B, ULK1, PI3K, AKT, p-AKT, mTOR, and p-mTOR protein levels. Autophagosomes were observed with transmission electron microscopy. Chloroquine was used to observe CUX1 expression in PNH after autophagy inhibition. Leukocytes from patients with PNH had lower levels of CUX1 messenger RNA expression and protein content than healthy control subjects. The lactose dehydrogenase level and the percentage of PNH clones were negatively correlated with CUX1 relative expression. We reduced CUX1 expression in a PIGA knockout K562 cell line, leading to increased cell proliferation. Levels of autophagy markers Beclin-1, LC3B, LC3A, and ULK1 increased, and autophagosomes increased. Furthermore, PI3K/AKT/mTOR protein phosphorylation levels were lower. CUX1 expression did not change and cell proliferation decreased in CUX1 knocked down PNH cells after inhibition of autophagy by chloroquine. In brief, CUX1 loss-of-function mutation resulted in stronger autophagy in PNH.
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