The regulation of ferroptosis by MESH1 through the activation of the integrative stress response

Abstract All organisms exposed to metabolic and environmental stresses have developed various stress adaptive strategies to maintain homeostasis. The main bacterial stress survival mechanism is the stringent response triggered by the accumulation “alarmone” (p)ppGpp, whose level is regulated by RelA...

Full description

Bibliographic Details
Main Authors: Chao-Chieh Lin, Chien-Kuang Cornelia Ding, Tianai Sun, Jianli Wu, Kai-Yuan Chen, Pei Zhou, Jen-Tsan Chi
Format: Article
Language:English
Published: Nature Publishing Group 2021-07-01
Series:Cell Death and Disease
Online Access:https://doi.org/10.1038/s41419-021-04018-7
id doaj-150a25f87ae44ccaa6345387880b3114
record_format Article
spelling doaj-150a25f87ae44ccaa6345387880b31142021-07-25T11:04:35ZengNature Publishing GroupCell Death and Disease2041-48892021-07-0112811010.1038/s41419-021-04018-7The regulation of ferroptosis by MESH1 through the activation of the integrative stress responseChao-Chieh Lin0Chien-Kuang Cornelia Ding1Tianai Sun2Jianli Wu3Kai-Yuan Chen4Pei Zhou5Jen-Tsan Chi6Department of Molecular Genetics and Microbiology, Duke University Medical CenterDepartment of Molecular Genetics and Microbiology, Duke University Medical CenterDepartment of Molecular Genetics and Microbiology, Duke University Medical CenterDepartment of Molecular Genetics and Microbiology, Duke University Medical CenterDepartment of Biomedical Engineering, Duke UniversityDepartment of Biochemistry, Duke University School of MedicineDepartment of Molecular Genetics and Microbiology, Duke University Medical CenterAbstract All organisms exposed to metabolic and environmental stresses have developed various stress adaptive strategies to maintain homeostasis. The main bacterial stress survival mechanism is the stringent response triggered by the accumulation “alarmone” (p)ppGpp, whose level is regulated by RelA and SpoT. While metazoan genomes encode MESH1 (Metazoan SpoT Homolog 1) with ppGpp hydrolase activity, neither ppGpp nor the stringent response is found in metazoa. The deletion of Mesh1 in Drosophila triggers a transcriptional response reminiscent of the bacterial stringent response. However, the function of MESH1 remains unknown until our recent discovery of MESH1 as the first cytosolic NADPH phosphatase that regulates ferroptosis. To further understand whether MESH1 knockdown triggers a similar transcriptional response in mammalian cells, here, we employed RNA-Seq to analyze the transcriptome response to MESH1 knockdown in human cancer cells. We find that MESH1 knockdown induced different genes involving endoplasmic reticulum (ER) stress, especially ATF3, one of the ATF4-regulated genes in the integrative stress responses (ISR). Furthermore, MESH1 knockdown increased ATF4 protein, eIF2a phosphorylation, and induction of ATF3, XBPs, and CHOP mRNA. ATF4 induction contributes to ~30% of the transcriptome induced by MESH1 knockdown. Concurrent ATF4 knockdown re-sensitizes MESH1-depleted RCC4 cells to ferroptosis, suggesting its role in the ferroptosis protection mediated by MESH1 knockdown. ATF3 induction is abolished by the concurrent knockdown of NADK, implicating a role of NADPH accumulation in the integrative stress response. Collectively, these results suggest that MESH1 depletion triggers ER stress and ISR as a part of its overall transcriptome changes to enable stress survival of cancer cells. Therefore, the phenotypic similarity of stress tolerance caused by MESH1 removal and NADPH accumulation is in part achieved by ISR to regulate ferroptosis.https://doi.org/10.1038/s41419-021-04018-7
collection DOAJ
language English
format Article
sources DOAJ
author Chao-Chieh Lin
Chien-Kuang Cornelia Ding
Tianai Sun
Jianli Wu
Kai-Yuan Chen
Pei Zhou
Jen-Tsan Chi
spellingShingle Chao-Chieh Lin
Chien-Kuang Cornelia Ding
Tianai Sun
Jianli Wu
Kai-Yuan Chen
Pei Zhou
Jen-Tsan Chi
The regulation of ferroptosis by MESH1 through the activation of the integrative stress response
Cell Death and Disease
author_facet Chao-Chieh Lin
Chien-Kuang Cornelia Ding
Tianai Sun
Jianli Wu
Kai-Yuan Chen
Pei Zhou
Jen-Tsan Chi
author_sort Chao-Chieh Lin
title The regulation of ferroptosis by MESH1 through the activation of the integrative stress response
title_short The regulation of ferroptosis by MESH1 through the activation of the integrative stress response
title_full The regulation of ferroptosis by MESH1 through the activation of the integrative stress response
title_fullStr The regulation of ferroptosis by MESH1 through the activation of the integrative stress response
title_full_unstemmed The regulation of ferroptosis by MESH1 through the activation of the integrative stress response
title_sort regulation of ferroptosis by mesh1 through the activation of the integrative stress response
publisher Nature Publishing Group
series Cell Death and Disease
issn 2041-4889
publishDate 2021-07-01
description Abstract All organisms exposed to metabolic and environmental stresses have developed various stress adaptive strategies to maintain homeostasis. The main bacterial stress survival mechanism is the stringent response triggered by the accumulation “alarmone” (p)ppGpp, whose level is regulated by RelA and SpoT. While metazoan genomes encode MESH1 (Metazoan SpoT Homolog 1) with ppGpp hydrolase activity, neither ppGpp nor the stringent response is found in metazoa. The deletion of Mesh1 in Drosophila triggers a transcriptional response reminiscent of the bacterial stringent response. However, the function of MESH1 remains unknown until our recent discovery of MESH1 as the first cytosolic NADPH phosphatase that regulates ferroptosis. To further understand whether MESH1 knockdown triggers a similar transcriptional response in mammalian cells, here, we employed RNA-Seq to analyze the transcriptome response to MESH1 knockdown in human cancer cells. We find that MESH1 knockdown induced different genes involving endoplasmic reticulum (ER) stress, especially ATF3, one of the ATF4-regulated genes in the integrative stress responses (ISR). Furthermore, MESH1 knockdown increased ATF4 protein, eIF2a phosphorylation, and induction of ATF3, XBPs, and CHOP mRNA. ATF4 induction contributes to ~30% of the transcriptome induced by MESH1 knockdown. Concurrent ATF4 knockdown re-sensitizes MESH1-depleted RCC4 cells to ferroptosis, suggesting its role in the ferroptosis protection mediated by MESH1 knockdown. ATF3 induction is abolished by the concurrent knockdown of NADK, implicating a role of NADPH accumulation in the integrative stress response. Collectively, these results suggest that MESH1 depletion triggers ER stress and ISR as a part of its overall transcriptome changes to enable stress survival of cancer cells. Therefore, the phenotypic similarity of stress tolerance caused by MESH1 removal and NADPH accumulation is in part achieved by ISR to regulate ferroptosis.
url https://doi.org/10.1038/s41419-021-04018-7
work_keys_str_mv AT chaochiehlin theregulationofferroptosisbymesh1throughtheactivationoftheintegrativestressresponse
AT chienkuangcorneliading theregulationofferroptosisbymesh1throughtheactivationoftheintegrativestressresponse
AT tianaisun theregulationofferroptosisbymesh1throughtheactivationoftheintegrativestressresponse
AT jianliwu theregulationofferroptosisbymesh1throughtheactivationoftheintegrativestressresponse
AT kaiyuanchen theregulationofferroptosisbymesh1throughtheactivationoftheintegrativestressresponse
AT peizhou theregulationofferroptosisbymesh1throughtheactivationoftheintegrativestressresponse
AT jentsanchi theregulationofferroptosisbymesh1throughtheactivationoftheintegrativestressresponse
AT chaochiehlin regulationofferroptosisbymesh1throughtheactivationoftheintegrativestressresponse
AT chienkuangcorneliading regulationofferroptosisbymesh1throughtheactivationoftheintegrativestressresponse
AT tianaisun regulationofferroptosisbymesh1throughtheactivationoftheintegrativestressresponse
AT jianliwu regulationofferroptosisbymesh1throughtheactivationoftheintegrativestressresponse
AT kaiyuanchen regulationofferroptosisbymesh1throughtheactivationoftheintegrativestressresponse
AT peizhou regulationofferroptosisbymesh1throughtheactivationoftheintegrativestressresponse
AT jentsanchi regulationofferroptosisbymesh1throughtheactivationoftheintegrativestressresponse
_version_ 1721283498617077760