An ERK5-NRF2 Axis Mediates Senescence-Associated Stemness and Atherosclerosis
Jun-Ichi Abe1, Masaki Imanishi1, Shengyu Li2
1Departments of Cardiology (J.-i.A., M.I., K.A.K., V.S.K.S., L.-L.L., A.P.B., Y.J.G., A.D., N.L.P., K.F., S. Kotla), The University of Texas MD Anderson Cancer Center, Houston, TX.
Background:
ERK5 (extracellular signal-regulated kinase 5) is a dual kinase transcription factor containing an N-terminal kinase domain and a C-terminal transcriptional activation domain. Many ERK5 kinase inhibitors have been developed and tested to treat cancer and inflammatory diseases. However, recent data have raised questions about the role of the catalytic activity of ERK5 in proliferation and inflammation. We aimed to investigate how ERK5 reprograms myeloid cells to the proinflammatory senescent phenotype, subsequently leading to atherosclerosis.
Methods:
A ERK5 S496A (dephosphorylation mimic) knock in (KI) mouse model was generated using CRISPR/Cas9 (clustered regularly interspaced short palindromic repeats/clustered regularly interspaced short palindromic repeat-associated 9), and atherosclerosis was characterized by hypercholesterolemia induction. The plaque phenotyping in homozygous ERK5 S496A KI and wild type (WT) mice was studied using imaging mass cytometry. Bone marrow-derived macrophages were isolated from hypercholesterolemic mice and characterized using RNA sequencing and functional in vitro approaches, including senescence, mitochondria reactive oxygen species, and inflammation assays, as well as by metabolic extracellular flux analysis.
Results:
We show that atherosclerosis was inhibited in ERK5 S496A KI mice. Furthermore, ERK5 S496 phosphorylation mediates both senescence-associated secretory phenotype and senescence-associated stemness by upregulating AHR (aryl hydrocarbon receptor) in plaque and bone marrow-derived macrophages isolated from hypercholesterolemic mice. We also discovered that ERK5 S496 phosphorylation could induce NRF2 (NFE2-related factor 2) SUMOylation at a novel K518 site to inhibit NRF2 transcriptional activity without altering ERK5 catalytic activity and mediates oxidized LDL (low-density lipoprotein)-induced senescence-associated secretory phenotype. Specific ERK5 kinase inhibitors (AX15836 and XMD8-92) also inhibited ERK5 S496 phosphorylation, suggesting the involvement of ERK5 S496 phosphorylation in the anti-inflammatory effects of these ERK5 kinase inhibitors.
Conclusions:
We discovered a novel mechanism by which the macrophage ERK5-NRF2 axis develops a unique senescence-associated secretory phenotype/stemness phenotype by upregulating AHR to engender atherogenesis. The finding of senescence-associated stemness phenotype provides a molecular explanation to resolve the paradox of senescence in proliferative plaque by permitting myeloid cells to escape the senescence-induced cell cycle arrest during atherosclerosis formation.
Insights
ERK5 phosphorylation reprograms myeloid cells to a senescent phenotype, driving atherosclerosis. Inhibiting ERK5 S496 phosphorylation reduces this process, offering new therapeutic targets for inflammatory diseases.
Area of Science:
- Molecular Biology
- Immunology
- Cardiovascular Research
Background:
- Extracellular signal-regulated kinase 5 (ERK5) is a kinase involved in cancer and inflammation.
- Its role in proliferation and inflammation is under scrutiny, particularly its catalytic activity.
- This study investigates ERK5's role in reprogramming myeloid cells towards a senescent phenotype, contributing to atherosclerosis.
Purpose of the Study:
- To investigate the mechanism by which ERK5 reprograms myeloid cells to a proinflammatory senescent phenotype.
- To understand the role of ERK5 phosphorylation, specifically at serine 496 (S496), in the development of atherosclerosis.
- To explore the interplay between ERK5, aryl hydrocarbon receptor (AHR), and NFE2-related factor 2 (NRF2) in macrophage senescence and inflammation.
Main Methods:
- Generated a knock-in mouse model (ERK5 S496A) using CRISPR/Cas9 to mimic ERK5 dephosphorylation.
- Induced hypercholesterolemia to study atherosclerosis development and plaque characteristics via imaging mass cytometry.
- Isolated bone marrow-derived macrophages for RNA sequencing, senescence assays, reactive oxygen species measurements, inflammation assays, and metabolic flux analysis.
Main Results:
- Atherosclerosis was significantly inhibited in ERK5 S496A knock-in mice.
- ERK5 S496 phosphorylation was found to mediate the senescence-associated secretory and stemness phenotypes by upregulating AHR in macrophages.
- ERK5 S496 phosphorylation induces NRF2 SUMOylation at K518, inhibiting NRF2 activity and promoting oxidized LDL-induced senescence, independent of ERK5 catalytic activity.
Conclusions:
- A novel ERK5-NRF2-AHR axis in macrophages drives a senescence-associated secretory/stemness phenotype, promoting atherogenesis.
- This senescence-associated stemness phenotype explains how myeloid cells can escape senescence-induced cell cycle arrest in proliferative plaques.
- ERK5 S496 phosphorylation is a key mediator in this process, suggesting it as a potential therapeutic target for atherosclerosis and related inflammatory conditions.
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