Targeting EGFR induced oxidative stress by PARP1 inhibition in glioblastoma therapy.
Despite the critical role of Epidermal Growth Factor Receptor (EGFR) in glioblastoma pathogenesis, EGFR targeted therapies have achieved limited clinical efficacy. Here we propose an alternate therapeutic strategy based on the conceptual framework of non-oncogene addiction. A directed RNAi screen re...
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doaj-990e27027f6a4eb0af04a40bb1e36d1b2020-11-24T21:12:24ZengPublic Library of Science (PLoS)PLoS ONE1932-62032010-01-0155e1076710.1371/journal.pone.0010767Targeting EGFR induced oxidative stress by PARP1 inhibition in glioblastoma therapy.Masayuki NittaDavid KozonoRichard KennedyJayne StommelKimberly NgPascal O ZinnDeepa KushwahaSantosh KesariMaria-del-Mar IndaJill WykoskyFrank FurnariKatherine A HoadleyLynda ChinRonald A DePinhoWebster K CaveneeAlan D'AndreaClark C ChenDespite the critical role of Epidermal Growth Factor Receptor (EGFR) in glioblastoma pathogenesis, EGFR targeted therapies have achieved limited clinical efficacy. Here we propose an alternate therapeutic strategy based on the conceptual framework of non-oncogene addiction. A directed RNAi screen revealed that glioblastoma cells over-expressing EGFRvIII, an oncogenic variant of EGFR, become hyper-dependent on a variety of DNA repair genes. Among these, there was an enrichment of Base Excision Repair (BER) genes required for the repair of Reactive Oxygen Species (ROS)-induced DNA damage, including poly-ADP ribose polymerase 1 (PARP1). Subsequent studies revealed that EGFRvIII over-expression in glioblastoma cells caused increased levels of ROS, DNA strand break accumulation, and genome instability. In a panel of primary glioblastoma lines, sensitivity to PARP1 inhibition correlated with the levels of EGFR activation and oxidative stress. Gene expression analysis indicated that reduced expression of BER genes in glioblastomas with high EGFR expression correlated with improved patient survival. These observations suggest that oxidative stress secondary to EGFR hyper-activation necessitates increased cellular reliance on PARP1 mediated BER, and offer critical insights into clinical trial design.http://europepmc.org/articles/PMC2879424?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Masayuki Nitta David Kozono Richard Kennedy Jayne Stommel Kimberly Ng Pascal O Zinn Deepa Kushwaha Santosh Kesari Maria-del-Mar Inda Jill Wykosky Frank Furnari Katherine A Hoadley Lynda Chin Ronald A DePinho Webster K Cavenee Alan D'Andrea Clark C Chen |
spellingShingle |
Masayuki Nitta David Kozono Richard Kennedy Jayne Stommel Kimberly Ng Pascal O Zinn Deepa Kushwaha Santosh Kesari Maria-del-Mar Inda Jill Wykosky Frank Furnari Katherine A Hoadley Lynda Chin Ronald A DePinho Webster K Cavenee Alan D'Andrea Clark C Chen Targeting EGFR induced oxidative stress by PARP1 inhibition in glioblastoma therapy. PLoS ONE |
author_facet |
Masayuki Nitta David Kozono Richard Kennedy Jayne Stommel Kimberly Ng Pascal O Zinn Deepa Kushwaha Santosh Kesari Maria-del-Mar Inda Jill Wykosky Frank Furnari Katherine A Hoadley Lynda Chin Ronald A DePinho Webster K Cavenee Alan D'Andrea Clark C Chen |
author_sort |
Masayuki Nitta |
title |
Targeting EGFR induced oxidative stress by PARP1 inhibition in glioblastoma therapy. |
title_short |
Targeting EGFR induced oxidative stress by PARP1 inhibition in glioblastoma therapy. |
title_full |
Targeting EGFR induced oxidative stress by PARP1 inhibition in glioblastoma therapy. |
title_fullStr |
Targeting EGFR induced oxidative stress by PARP1 inhibition in glioblastoma therapy. |
title_full_unstemmed |
Targeting EGFR induced oxidative stress by PARP1 inhibition in glioblastoma therapy. |
title_sort |
targeting egfr induced oxidative stress by parp1 inhibition in glioblastoma therapy. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2010-01-01 |
description |
Despite the critical role of Epidermal Growth Factor Receptor (EGFR) in glioblastoma pathogenesis, EGFR targeted therapies have achieved limited clinical efficacy. Here we propose an alternate therapeutic strategy based on the conceptual framework of non-oncogene addiction. A directed RNAi screen revealed that glioblastoma cells over-expressing EGFRvIII, an oncogenic variant of EGFR, become hyper-dependent on a variety of DNA repair genes. Among these, there was an enrichment of Base Excision Repair (BER) genes required for the repair of Reactive Oxygen Species (ROS)-induced DNA damage, including poly-ADP ribose polymerase 1 (PARP1). Subsequent studies revealed that EGFRvIII over-expression in glioblastoma cells caused increased levels of ROS, DNA strand break accumulation, and genome instability. In a panel of primary glioblastoma lines, sensitivity to PARP1 inhibition correlated with the levels of EGFR activation and oxidative stress. Gene expression analysis indicated that reduced expression of BER genes in glioblastomas with high EGFR expression correlated with improved patient survival. These observations suggest that oxidative stress secondary to EGFR hyper-activation necessitates increased cellular reliance on PARP1 mediated BER, and offer critical insights into clinical trial design. |
url |
http://europepmc.org/articles/PMC2879424?pdf=render |
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