Triptolide-Assisted Phosphorylation of p53 Suppresses Inflammation-Induced NF-κB Survival Pathways in Cancer Cells

Author:

Zheng Li1,Jia Jia2,Dai Huifang1,Wan Lei13,Liu Jian3,Hu Lin4,Zhou Mian1,Qiu Michael1,Chen Xufeng1,Chang Lufen1,Kim Jae Y.5,Reckamp Karen6,Raz Dan J.5,Xia Zongping4,Shen Binghui1

Affiliation:

1. Department of Cancer Genetics and Epigenetics, City of Hope National Medical Center and Beckman Research Institute, Duarte, California, USA

2. Shanghai Center for Bioinformatics Technology, Shanghai, China

3. First Affiliated Hospital, Anhui University of Chinese Medicine, Hefei, Anhui, China

4. Life Science Institute, Zhejiang University, Hangzhou, Zhejiang, China

5. Department of Surgery, City of Hope National Medical Center and Beckman Research Institute, Duarte, California, USA

6. Department of Medical Oncology and Therapeutics Research, City of Hope National Medical Center and Beckman Research Institute, Duarte, California, USA

Abstract

ABSTRACT Chronic inflammation plays important roles in cancer initiation and progression. Resolving chronic inflammation or blocking inflammatory signal transduction may prevent cancer development. Here, we report that the combined low-dose use of two anti-inflammatory drugs, aspirin and triptolide, reduces spontaneous lung cancer incidence from 70% to 10% in a mouse model. Subsequent studies reveal that such treatment has little effect on resolving chronic inflammatory conditions in the lung, but it significantly blocks the NF-κB-mediated expression of proliferation and survival genes in cancer cells. Furthermore, triptolide and aspirin induce distinct mechanisms to potentiate each other to block NF-κB nuclear localization stimulated by inflammatory cytokines. While aspirin directly inhibits IκB kinases (IKKs) to phosphorylate IκBα for NF-κB activation, triptolide does not directly target IKKs or other factors that mediate IKK activation. Instead, it requires p53 to inhibit IκBα phosphorylation and degradation. Triptolide binds to and activates p38α and extracellular signal-regulated kinase 1/2 (ERK1/2), which phosphorylate and stabilize p53. Subsequently, p53 competes with IκBα for substrate binding to IKKβ and thereby blocks IκBα phosphorylation and NF-κB nuclear translocation. Inhibition of p38α and ERK1/2 or p53 mutations could abolish the inhibitory effects of triptolide on NF-κB. Our study defines a new p53-dependent mechanism for blocking NF-κB survival pathways in cancer cells.

Funder

HHS | NIH | National Cancer Institute

Publisher

American Society for Microbiology

Subject

Cell Biology,Molecular Biology

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