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Published on: February 16, 2015
MSH6 mutations arise in glioblastomas during temozolomide therapy and mediate temozolomide resistance
Stephen Yip1, Jiangyong Miao, Daniel P Cahill
1Pathology Service, Department of Pathology, Harvard Medical School, Boston, Massachusetts, USA.
Purpose:
Over the past few years, the alkylating agent temozolomide has become the standard-of-care therapy for patients with glioblastoma, the most common brain tumor. Recently, large-scale cancer genome sequencing efforts have identified a hypermutation phenotype and inactivating MSH6 mismatch repair gene mutations in recurrent, post-temozolomide glioblastomas, particularly those growing more rapidly during temozolomide treatment. This study aimed to clarify the timing and role of MSH6 mutations in mediating glioblastoma temozolomide resistance.
Experimental Design:
MSH6 sequence and microsatellite instability (MSI) status were determined in matched prechemotherapy and postchemotherapy glioblastomas identified by The Cancer Genome Atlas (TCGA) as having posttreatment MSH6 mutations. Temozolomide-resistant lines were derived in vitro through selective growth under temozolomide, and the MSH6 gene was sequenced in resistant clones. The role of MSH6 inactivation in mediating resistance was explored using lentiviral short hairpin RNA knockdown and MSH6 reconstitution.
Results:
MSH6 mutations were confirmed in posttreatment TCGA glioblastomas but absent in matched pretreatment tumors. The posttreatment hypermutation phenotype displayed a signature bias toward CpC transitions and was not associated with MSI. In vitro modeling through exposure of an MSH6 wild-type glioblastoma line to temozolomide resulted in resistant clones; one clone showed an MSH6 mutation, Thr(1219)Ile, that had been independently noted in two treated TCGA glioblastomas. Knockdown of MSH6 in the glioblastoma line U251 increased resistance to temozolomide cytotoxicity and reconstitution restored cytotoxicity in MSH6-null glioma cells.
Conclusions:
MSH6 mutations are selected in glioblastomas during temozolomide therapy both in vitro and in vivo and are causally associated with temozolomide resistance.
Insights
MSH6 mutations emerge during temozolomide treatment in glioblastoma, driving resistance. This study confirms MSH6 mutations are selected in brain tumors during therapy, causing resistance to temozolomide.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Temozolomide is the standard treatment for glioblastoma.
- MSH6 mutations and hypermutation are observed in recurrent glioblastomas after temozolomide therapy.
Purpose of the Study:
- To investigate the timing and role of MSH6 mutations in glioblastoma resistance to temozolomide.
- To understand how MSH6 mutations contribute to treatment failure.
Main Methods:
- Analyzing MSH6 sequence and microsatellite instability (MSI) in pre- and post-temozolomide glioblastomas from The Cancer Genome Atlas (TCGA).
- Developing temozolomide-resistant glioblastoma cell lines in vitro and sequencing MSH6.
- Using lentiviral short hairpin RNA (shRNA) for MSH6 knockdown and MSH6 reconstitution experiments.
Main Results:
- MSH6 mutations were found in posttreatment glioblastomas but not in matched pretreatment tumors.
- In vitro studies showed MSH6 inactivation increased resistance to temozolomide, and MSH6 reconstitution restored sensitivity.
- A specific MSH6 mutation (Thr(1219)Ile) was identified in resistant clones and in treated glioblastomas.
Conclusions:
- MSH6 mutations are selected during temozolomide therapy in glioblastoma.
- MSH6 inactivation is a causal mechanism for temozolomide resistance in glioblastoma.
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