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Updated: Mar 22, 2026

An Integrated Platform for Genome-wide Mapping of Chromatin States Using High-throughput ChIP-sequencing in Tumor Tissues
Published on: April 5, 2018
Genomic aberrations frequently alter chromatin regulatory genes in chordoma
Lu Wang1, Ahmet Zehir1, Khedoudja Nafa1
1Department of Pathology, Memorial Sloan Kettering Cancer Center, New York, NY.
Abstract:
Chordoma is a rare primary bone neoplasm that is resistant to standard chemotherapies. Despite aggressive surgical management, local recurrence and metastasis is not uncommon. To identify the specific genetic aberrations that play key roles in chordoma pathogenesis, we utilized a genome-wide high-resolution SNP-array and next generation sequencing (NGS)-based molecular profiling platform to study 24 patient samples with typical histopathologic features of chordoma. Matching normal tissues were available for 16 samples. SNP-array analysis revealed nonrandom copy number losses across the genome, frequently involving 3, 9p, 1p, 14, 10, and 13. In contrast, copy number gain is uncommon in chordomas. Two minimum deleted regions were observed on 3p within a ∼8 Mb segment at 3p21.1-p21.31, which overlaps SETD2, BAP1 and PBRM1. The minimum deleted region on 9p was mapped to CDKN2A locus at 9p21.3, and homozygous deletion of CDKN2A was detected in 5/22 chordomas (∼23%). NGS-based molecular profiling demonstrated an extremely low level of mutation rate in chordomas, with an average of 0.5 mutations per sample for the 16 cases with matched normal. When the mutated genes were grouped based on molecular functions, many of the mutation events (∼40%) were found in chromatin regulatory genes. The combined copy number and mutation profiling revealed that SETD2 is the single gene affected most frequently in chordomas, either by deletion or by mutations. Our study demonstrated that chordoma belongs to the C-class (copy number changes) tumors whose oncogenic signature is non-random multiple copy number losses across the genome and genomic aberrations frequently alter chromatin regulatory genes. © 2016 Wiley Periodicals, Inc.
Insights
Chordoma, a rare bone cancer, exhibits frequent non-random copy number losses and alterations in chromatin regulatory genes, with SETD2 being the most commonly affected gene. This discovery aids in understanding chordoma pathogenesis.
Area of Science:
- Oncology
- Genetics
- Genomics
Background:
- Chordoma is a rare primary bone neoplasm known for its resistance to chemotherapy.
- Despite aggressive treatment, chordoma frequently recurs and metastasizes.
Purpose of the Study:
- To identify specific genetic aberrations driving chordoma pathogenesis.
- To characterize the molecular landscape of chordoma using genome-wide profiling.
Main Methods:
- Utilized high-resolution SNP-array and next-generation sequencing (NGS) for molecular profiling.
- Analyzed 24 patient chordoma samples and 16 matched normal tissues.
Main Results:
- Identified nonrandom copy number losses on chromosomes 3, 9p, 1p, 14, 10, and 13.
- Found homozygous deletion of CDKN2A in approximately 23% of chordomas.
- Observed a low mutation rate, with ~40% of mutations affecting chromatin regulatory genes.
- Determined SETD2 as the most frequently altered gene via deletion or mutation.
Conclusions:
- Chordoma exhibits a C-class tumor signature characterized by multiple copy number losses.
- Genomic aberrations in chordoma predominantly impact chromatin regulatory genes.
- Understanding these genetic alterations is crucial for developing targeted therapies for chordoma.
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