A noncanonical Flt3ITD/NF-κB signaling pathway represses DAPK1 in acute myeloid leukemia

Rajasubramaniam Shanmugam1,2, Padmaja Gade3, Annique Wilson-Weekes1,2

  • 1Indiana University Melvin and Bren Simon Cancer Center, Departments of Medicine (Hematology/Oncology Division), Indiana University School of Medicine, Indianapolis, IN 46202.

Abstract

Insights

Flt3ITD mutation in acute myeloid leukemia (AML) epigenetically suppresses the tumor suppressor DAPK1 via a TAK1-NF-κB pathway. This repression, involving p52NF-κB and HDACs, explains the lack of apoptosis in Flt3ITD(+) AML.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cancer Genetics

Background:

  • Death-associated protein kinase 1 (DAPK1) is a tumor suppressor crucial for apoptosis.
  • DAPK1 expression is epigenetically silenced in various cancers, including acute myeloid leukemia (AML).
  • Loss of DAPK1 function is linked to poor prognosis and resistance to apoptosis in certain AML subtypes.

Purpose of the Study:

  • To investigate the mechanistic basis of DAPK1 epigenetic repression in Flt3ITD-mutated AML.
  • To understand why these AMLs exhibit a lack of endoplasmic reticulum (ER) stress-induced apoptosis.
  • To identify the specific molecular players involved in DAPK1 transcriptional silencing.

Main Methods:

  • Screening of primary AML samples to identify Flt3ITD subgroup.
  • RNA interference (RNAi) knockdown studies in MV-4-11 cell line.
  • Chromatin immunoprecipitation (ChIP) assays to identify protein-DNA interactions at the DAPK1 locus.
  • Analysis of NF-κB and c-Jun responsive gene expression.

Main Results:

  • Flt3ITD(+) AMLs showed significantly lower DAPK1 transcripts compared to other AMLs.
  • Overexpression of relB, a transcriptional repressor, was observed in Flt3ITD(+) AMLs.
  • p52NF-κB, HDAC2, and HDAC6 were found to bind the DAPK1 promoter in Flt3ITD(+) AML cells.
  • Knockdown of p52NF-κB or NIK led to DAPK1 de-repression.

Conclusions:

  • Flt3ITD mutation activates a noncanonical pathway involving TAK1 and p52NF-κB.
  • This pathway, in conjunction with HDACs, leads to the suppression of DAPK1 in Flt3ITD(+) AML.
  • The identified mechanism explains the impaired apoptotic response in this AML subtype.

Related Concept Videos

NF-κB-dependent Signaling Pathway02:26

NF-κB-dependent Signaling Pathway

The transcription factor NF-κB was discovered in 1986 in the lab of Nobel laureate Professor David Baltimore, for its interaction with the immunoglobulin light chain enhancer in B-cells. After more than three decades of study, it is now evident that NF-κB regulates the expression of over 100 genes. Most of these genes play an essential role in the innate and adaptive immune responses as well as the inflammatory responses of animals.
NF-κB-dependent Signaling Mechanism
The heterodimer of NF-κB...
The Extrinsic Apoptotic Pathway01:17

The Extrinsic Apoptotic Pathway

The extrinsic apoptotic pathway is initiated when extracellular death-inducing signals, such as specific cytokines, activate the death receptors expressed on the cell surface. The immune cells involved in this pathway are natural killer cells (NK cells) and cytotoxic T-lymphocytes. NK cells are critical in innate immune response, while cytotoxic T-lymphocytes are associated with adaptive immune response. These cells recognize specific receptors expressed on the altered cells and activate...
The Intrinsic Apoptotic Pathway01:31

The Intrinsic Apoptotic Pathway

Internal cellular stress, such as cellular injury or hypoxia, triggers intrinsic apoptosis. The B-cell lymphoma 2 (Bcl-2) family of proteins are the primary regulators of the intrinsic apoptotic pathway. For example, during DNA damage, checkpoint proteins, such as Ataxia Telangiectasia Mutated (ATM protein) and Checkpoints Factor-2 (Chk2) proteins, are activated. These proteins phosphorylate p53 which further activates pro-apoptotic proteins, such as Bax, Bak, PUMA, and Noxa, and inhibits...
The JAK-STAT Signaling Pathway01:20

The JAK-STAT Signaling Pathway

Several cytokine receptors have tightly bound Janus kinase or JAK proteins attached at their cytosolic tail. Small signaling molecules such as cytokines, growth hormones, or prolactins bind to the cytokine receptors and initiate their dimerization. The dimerization brings the cytosolic JAKs together that trans-phosphorylate and activates each other. The activated JAKs now phosphorylate cytosolic tails of the cytokine receptors, which serve as binding sites for adaptor proteins such as  SH2...
MAPK Signaling Cascades01:07

MAPK Signaling Cascades

Mitogen-activated protein kinase, or MAPK pathway, activates three sequential kinases to regulate cellular responses such as proliferation, differentiation, survival, and apoptosis. The canonical MAPK pathway starts with a mitogen or growth factor binding to an RTK. The activated RTKs stimulate Ras, which recruits Raf or MAP3 Kinase (MAPKKK), the first kinase of the MAPK signaling cascade. Raf further phosphorylates and activates MEK or MAP2 Kinases (MAPKK), which in turn phosphorylates MAP...
TGF - β Signaling Pathway01:16

TGF - β Signaling Pathway

The TGF-β signaling pathway regulates cell growth, differentiation, adhesion, motility, and development. TGF-β ligands that induce TGF-β signaling are synthesized in their latent form. Several proteases or cell surface receptors such as integrins act upon the latent form, releasing the active ligand. There are three types of mammalian TGF-βs: (TGF-β1, TGF-β2, and TGF-β3) that bind as homodimers or heterodimers to TGF-β receptors. The TGF-β receptors are of three kinds RI, RII, and RIII. The RI...