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Preparation of Cytoplasmic and Nuclear Long RNAs from Primary and Cultured Cells
Published on: April 7, 2023
An ATM/TRIM37/NEMO Axis Counteracts Genotoxicity by Activating Nuclear-to-Cytoplasmic NF-κB Signaling
Geyan Wu1,2, Libing Song3, Jinrong Zhu1,2
1Key Laboratory of Liver Disease of Guangdong Province, The Third Affiliated Hospital, Sun Yat-sen University, Guangzhou, P.R. China.
Abstract:
Blocking genotoxic stress-induced NF-κB activation would substantially enhance the anticancer efficiency of genotoxic chemotherapy. Unlike the well-established classical NF-κB pathway, the genotoxic agents-induced "nuclear-to-cytoplasmic" NF-κB pathway is initiated from the nucleus and transferred to the cytoplasm. However, the mechanism linking nuclear DNA damage signaling to cytoplasmic IKK activation remains unclear. Here, we report that TRIM37, a novel E3 ligase, plays a vital role in genotoxic activation of NF-κB via monoubiquitination of NEMO at K309 in the nucleus, consequently resulting in nuclear export of NEMO and IKK/NF-κB activation. Clinically, TRIM37 levels correlated positively with levels of activated NF-κB and expression of Bcl-xl and XIAP in esophageal cancer specimens, which also associated positively with clinical stage and tumor-node-metastasis classification and associated inversely with overall and relapse-free survival in patients with esophageal cancer. Overexpression of TRIM37 conferred resistance to the DNA-damaging anticancer drug cisplatin in vitro and in vivo through activation of the NF-κB pathway. Genotoxic stress-activated ATM kinase directly interacted with and phosphorylated TRIM37 in the cytoplasm, which induced translocation of TRIM37 into the nucleus, where it formed a complex with NEMO and TRAF6 via a TRAF6-binding motif (TBM). Importantly, blocking the ATM/TRIM37/NEMO axis via cell-penetrating TAT-TBM peptide abrogated genotoxic agent-induced NEMO monoubiquitination and NF-κB activity, resulting in hypersensitivity of cancer cells to genotoxic drugs. Collectively, our results unveil a pivotal role for TRIM37 in genotoxic stress and shed light on mechanisms of inducible chemotherapy resistance in cancer.Significance: In response to genotoxic stress, TRIM37 activates NF-κB signaling via monoubiquitination of NEMO, which subsequently promotes cisplatin chemoresistance and tumor relapse in cancer. Cancer Res; 78(22); 6399-412. ©2018 AACR.
Insights
The E3 ligase TRIM37 activates NF-κB signaling during genotoxic stress by modifying NEMO, leading to chemotherapy resistance. Blocking this ATM/TRIM37/NEMO pathway enhances cancer cell sensitivity to genotoxic drugs.
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Signaling
Background:
- Genotoxic chemotherapy efficacy is limited by NF-κB activation.
- The mechanism linking nuclear DNA damage to cytoplasmic NF-κB activation is not fully understood.
- A novel nuclear-to-cytoplasmic NF-κB pathway is induced by genotoxic agents.
Purpose of the Study:
- To elucidate the mechanism of genotoxic stress-induced NF-κB activation.
- To identify key molecules involved in linking nuclear DNA damage to cytoplasmic IKK activation.
- To explore the therapeutic potential of targeting this pathway for cancer treatment.
Main Methods:
- Investigated the role of TRIM37 (E3 ligase) in genotoxic NF-κB activation.
- Utilized biochemical assays to study monoubiquitination of NEMO at K309.
- Employed cell-penetrating TAT-TBM peptide to block the ATM/TRIM37/NEMO axis.
- Assessed chemoresistance in vitro and in vivo.
Main Results:
- TRIM37 mediates genotoxic NF-κB activation via nuclear monoubiquitination of NEMO.
- TRIM37 overexpression confers resistance to cisplatin chemotherapy.
- Blocking the ATM/TRIM37/NEMO axis abrogates NF-κB activity and sensitizes cancer cells to genotoxic drugs.
- High TRIM37 levels correlate with advanced esophageal cancer and poor survival.
Conclusions:
- TRIM37 is a crucial mediator of genotoxic stress-induced NF-κB activation.
- The ATM/TRIM37/NEMO axis promotes chemoresistance and tumor relapse.
- Targeting this axis represents a promising strategy to enhance chemotherapy efficacy.
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