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Published on: March 5, 2019
PML-II regulates ERK and AKT signal activation and IFNα-induced cell death
Xueqiong Meng1,2, Yixiang Chen1,3,4, Salvador Macip4,5
1School of Basic Medicine, Henan University of Science and Technology, Luoyang, China.
Background:
The requirement of promyelocytic leukaemia protein (PML) in interferon (IFN)-induced cell apoptosis is well-established. However, the exact mechanisms by which the multiple isoforms of PML protein participate in this process remain not well-understood. We previously demonstrated that PML isoform II (PML-II) positively regulates induced gene expression during a type I IFN response and evaluate here how PML-II contributes to IFNα-induced cell death.
Methods:
HeLa cells were transiently depleted of PML-II by siRNA treatment and the response of these cells to treatment with IFNα assessed by molecular assays of mRNA and proteins associated with IFN and apoptosis responses.
Results:
In HeLa cells, death during IFNα stimulation was reduced by prior PML-II depletion. PML-II removal also considerably decreased the induced expression of pro-apoptotic ISGs such as ISG54 (IFIT2), and substantially impaired or prevented expression of PUMA and TRAIL, proteins that are associated with the intrinsic and extrinsic apoptotic pathways respectively. Thirdly, PML-II depletion enhanced ERK and AKT pro-survival signaling activation suggesting that PML-II normally suppresses signaling via these pathways, and that lack of PML-II hence led to greater than normal activation of AKT signaling upon IFNα stimulation and consequently increased resistance to IFNα-induced apoptosis.
Conclusions:
The positive contribution of PML-II to the expression of various IFNα-induced pro-apoptotic proteins and its inhibition of pro-survival signaling together provide a mechanistic explanation for reduced apoptosis under conditions of PML deficiency and may account for at least part of the role of PML as a tumor suppressor gene. Video Abstract.
Insights
Promyelocytic leukaemia protein isoform II (PML-II) promotes interferon-induced apoptosis by upregulating pro-apoptotic proteins and suppressing pro-survival signaling. PML-II deficiency reduces cell death, highlighting its role in tumor suppression.
Area of Science:
- Cell Biology
- Immunology
- Molecular Biology
Background:
- Promyelocytic leukaemia protein (PML) is crucial for interferon (IFN)-induced apoptosis.
- The precise mechanisms of PML isoforms in apoptosis are not fully understood.
- PML isoform II (PML-II) was previously shown to regulate gene expression during type I IFN responses.
Purpose of the Study:
- To investigate the role of PML-II in interferon alpha (IFNα)-induced cell death.
- To elucidate the molecular mechanisms by which PML-II influences IFNα-induced apoptosis.
Main Methods:
- HeLa cells were treated with siRNA to deplete PML-II.
- The response to IFNα stimulation was assessed using molecular assays for mRNA and protein levels.
- Interferon and apoptosis-related pathways were analyzed.
Main Results:
- PML-II depletion reduced IFNα-induced cell death in HeLa cells.
- PML-II deficiency decreased the expression of pro-apoptotic ISGs (e.g., ISG54) and proteins (PUMA, TRAIL).
- PML-II depletion enhanced pro-survival signaling pathways (ERK, AKT), increasing resistance to apoptosis.
Conclusions:
- PML-II promotes IFNα-induced apoptosis by enhancing pro-apoptotic protein expression and inhibiting pro-survival signaling.
- These findings provide a mechanistic explanation for reduced apoptosis in PML-deficient cells.
- PML-II's function may contribute to its role as a tumor suppressor gene.
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