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Frequent alterations in p16/CDKN2A identified by immunohistochemistry and FISH in chordoma
Lucia Cottone1, Nadia Eden1, Inga Usher1
1UCL Cancer Institute, University College London, London, UK.
Abstract:
The expression of p16/CDKN2A, the second most commonly inactivated tumour suppressor gene in cancer, is lost in the majority of chordomas. However, the mechanism(s) leading to its inactivation and contribution to disease progression have only been partially addressed using small patient cohorts. We studied 384 chordoma samples from 320 patients by immunohistochemistry and found that p16 protein was lost in 53% of chordomas and was heterogeneously expressed in these tumours. To determine if CDKN2A copy number loss could explain the absence of p16 protein expression we performed fluorescence in situ hybridisation (FISH) for CDKN2A on consecutive tissue sections. CDKN2A copy number status was altered in 168 of 274 (61%) of samples and copy number loss was the most frequent alteration acquired during clinical disease progression. CDKN2A homozygous deletion was always associated with p16 protein loss but only accounted for 33% of the p16-negative cases. The remaining immunonegative cases were associated with disomy (27%), monosomy (12%), heterozygous loss (20%) and copy number gain (7%) of CDKN2A, supporting the hypothesis that loss of protein expression might be achieved via epigenetic or post-transcriptional regulatory mechanisms. We identified that mRNA levels were comparable in tumours with and without p16 protein expression, but other events including DNA promoter hypermethylation, copy number neutral loss of heterozygosity and expression of candidate microRNAs previously implicated in the regulation of CDKN2A expression were not identified to explain the protein loss. The data argue that p16 loss in chordoma is commonly caused by a post-transcriptional regulatory mechanism that is yet to be defined.
Insights
Loss of p16/CDKN2A protein expression is common in chordoma. While copy number loss explains some cases, most p16 loss results from undefined post-transcriptional mechanisms, impacting chordoma progression.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- p16/CDKN2A is a crucial tumor suppressor gene frequently inactivated in various cancers.
- Chordomas often exhibit loss of p16 protein expression, but the underlying mechanisms remain unclear.
- Understanding p16 inactivation is vital for elucidating chordoma pathogenesis and progression.
Purpose of the Study:
- To investigate the mechanisms of p16/CDKN2A inactivation in a large cohort of chordoma samples.
- To correlate p16 protein loss with genetic alterations, including copy number variations.
- To explore potential post-transcriptional regulatory mechanisms contributing to p16 loss in chordoma.
Main Methods:
- Immunohistochemistry was used to assess p16 protein expression in 384 chordoma samples.
- Fluorescence in situ hybridization (FISH) was performed to determine CDKN2A copy number status.
- Analysis included assessment of mRNA levels, DNA promoter hypermethylation, and microRNA expression.
Main Results:
- p16 protein was lost in 53% of chordomas, often with heterogeneous expression.
- CDKN2A copy number alterations were found in 61% of samples, with loss being frequent during disease progression.
- Homozygous deletion explained only 33% of p16-negative cases; other alterations and epigenetic/post-transcriptional mechanisms were implicated.
Conclusions:
- CDKN2A copy number loss is a significant factor in p16 loss in chordoma, particularly during progression.
- A substantial proportion of p16-negative chordomas are not explained by genetic alterations alone.
- The data strongly suggest that undefined post-transcriptional regulatory mechanisms are commonly responsible for p16 loss in chordoma.
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