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Updated: Apr 28, 2026

Generation and Expansion of Primary, Malignant Pleural Mesothelioma Tumor Lines
Published on: April 21, 2022
Biallelic germline and somatic mutations in malignant mesothelioma: multiple mutations in transcription regulators
Yoshie Yoshikawa1, Ayuko Sato, Tohru Tsujimura
1Department of Genetics, Hyogo College of Medicine, Nishinomiya, Hyogo, Japan.
Abstract:
We detected low levels of acetylation for histone H3 tail lysines in malignant mesothelioma (MM) cell lines resistant to histone deacetylase inhibitors. To identify the possible genetic causes related to the low histone acetylation levels, whole-exome sequencing was conducted with MM cell lines established from eight patients. A mono-allelic variant of BRD1 was common to two MM cell lines with very low acetylation levels. We identified 318 homozygous protein-damaging variants/mutations (18-78 variants/mutations per patient); annotation analysis showed enrichment of the molecules associated with mammalian SWI/SNF (mSWI/SNF) chromatin remodeling complexes and co-activators that facilitate initiation of transcription. In seven of the patients, we detected a combination of variants in histone modifiers or transcription factors/co-factors, in addition to variants in mSWI/SNF. Direct sequencing showed that homozygous mutations in SMARCA4, PBRM1 and ARID2 were somatic. In one patient, homozygous germline variants were observed for SMARCC1 and SETD2 in chr3p22.1-3p14.2. These exhibited extended germline homozygosity and were in regions containing somatic mutations, leading to a loss of BAP1 and PBRM1 expression in MM cell line. Most protein-damaging variants were heterozygous in normal tissues. Heterozygous germline variants were often converted into hemizygous variants by mono-allelic deletion, and were rarely homozygous because of acquired uniparental disomy. Our findings imply that MM might develop through the somatic inactivation of mSWI/SNF complex subunits and/or histone modifiers, including BAP1, in subjects that have rare germline variants of these transcription regulators and/or transcription factors/co-factors, and in regions prone to mono-allelic deletion during oncogenesis.
Insights
Malignant mesothelioma cell lines resistant to histone deacetylase inhibitors show low histone acetylation. Genetic analysis revealed variants in chromatin remodeling complexes, suggesting their inactivation contributes to cancer development.
Area of Science:
- Oncology
- Epigenetics
- Genetics
Background:
- Malignant mesothelioma (MM) cell lines resistant to histone deacetylase inhibitors exhibit low histone H3 lysine acetylation.
- Identifying genetic factors contributing to low acetylation is crucial for understanding MM pathogenesis.
Purpose of the Study:
- To investigate the genetic underpinnings of low histone acetylation in MM cell lines.
- To identify specific gene variants associated with drug resistance and MM development.
Main Methods:
- Whole-exome sequencing of MM cell lines from eight patients.
- Analysis of variants in histone modifiers, chromatin remodeling complexes (mSWI/SNF), and transcription factors/co-factors.
- Direct sequencing to confirm somatic mutations.
Main Results:
- A mono-allelic BRD1 variant was found in two MM cell lines with very low acetylation.
- 318 homozygous protein-damaging variants were identified, enriched in mSWI/SNF components and transcription co-activators.
- Somatic mutations in SMARCA4, PBRM1, and ARID2 were confirmed; germline variants in SMARCC1 and SETD2 were observed in one patient.
- Loss of BAP1 and PBRM1 expression was linked to homozygous mutations and extended germline homozygosity.
Conclusions:
- MM development may involve somatic inactivation of mSWI/SNF complex subunits and histone modifiers.
- Germline variants in transcription regulators, combined with deletions in susceptible regions, may predispose individuals to MM.
- These findings highlight the role of epigenetic dysregulation and genetic instability in malignant mesothelioma.
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