MAP kinase ERK5 modulates cancer cell sensitivity to extrinsic apoptosis induced by death-receptor agonists
Sergio Espinosa-Gil1,2, Saska Ivanova3,4, Elisenda Alari-Pahissa5
1Departament de Bioquímica i Biologia Molecular and Institut de Neurociències. Facultat de Medicina, Universitat Autònoma de Barcelona (UAB), Barcelona, Spain.
Abstract:
Death receptor ligand TRAIL is a promising cancer therapy due to its ability to selectively trigger extrinsic apoptosis in cancer cells. However, TRAIL-based therapies in humans have shown limitations, mainly due inherent or acquired resistance of tumor cells. To address this issue, current efforts are focussed on dissecting the intracellular signaling pathways involved in resistance to TRAIL, to identify strategies that sensitize cancer cells to TRAIL-induced cytotoxicity. In this work, we describe the oncogenic MEK5-ERK5 pathway as a critical regulator of cancer cell resistance to the apoptosis induced by death receptor ligands. Using 2D and 3D cell cultures and transcriptomic analyses, we show that ERK5 controls the proteostasis of TP53INP2, a protein necessary for full activation of caspase-8 in response to TNFα, FasL or TRAIL. Mechanistically, ERK5 phosphorylates and induces ubiquitylation and proteasomal degradation of TP53INP2, resulting in cancer cell resistance to TRAIL. Concordantly, ERK5 inhibition or genetic deletion, by stabilizing TP53INP2, sensitizes cancer cells to the apoptosis induced by recombinant TRAIL and TRAIL/FasL expressed by Natural Killer cells. The MEK5-ERK5 pathway regulates cancer cell proliferation and survival, and ERK5 inhibitors have shown anticancer activity in preclinical models of solid tumors. Using endometrial cancer patient-derived xenograft organoids, we propose ERK5 inhibition as an effective strategy to sensitize cancer cells to TRAIL-based therapies.
Insights
The MEK5-ERK5 pathway promotes cancer cell resistance to TRAIL therapy by degrading TP53INP2. Inhibiting ERK5 stabilizes TP53INP2, sensitizing cancer cells to TRAIL-induced apoptosis and enhancing treatment efficacy.
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Signaling
Background:
- Tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) shows promise for cancer therapy by inducing apoptosis in cancer cells.
- TRAIL resistance in cancer cells is a significant limitation, necessitating research into resistance mechanisms and sensitization strategies.
Purpose of the Study:
- To investigate the role of the MEK5-ERK5 pathway in cancer cell resistance to death receptor ligand-induced apoptosis.
- To identify novel strategies for sensitizing cancer cells to TRAIL-based therapies.
Main Methods:
- Utilized 2D and 3D cell cultures and transcriptomic analyses.
- Investigated the interaction between ERK5 and TP53INP2.
- Employed ERK5 inhibition and genetic deletion in cancer models.
- Utilized endometrial cancer patient-derived xenograft organoids.
Main Results:
- The MEK5-ERK5 pathway was identified as a critical regulator of resistance to TRAIL-induced apoptosis.
- ERK5 was found to control TP53INP2 proteostasis, promoting its degradation.
- ERK5 inhibition or deletion stabilized TP53INP2, sensitizing cancer cells to TRAIL and TRAIL/FasL.
- ERK5 inhibition demonstrated efficacy in sensitizing endometrial cancer cells to TRAIL-based therapies in organoid models.
Conclusions:
- The MEK5-ERK5 pathway is a key mediator of cancer cell resistance to TRAIL by regulating TP53INP2 degradation.
- Targeting the MEK5-ERK5 pathway represents a promising strategy to overcome TRAIL resistance and enhance cancer treatment outcomes.
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