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Next Generation Sequencing for the Detection of Actionable Mutations in Solid and Liquid Tumors
Published on: September 20, 2016
Gene abnormalities in multiple myeloma; the relevance of TP53, MDM2, and CDKN2A
Manal O Elnenaei1, Alicja M Gruszka-Westwood, Roger A'Hernt
1Academic Department of Haematology and Cytogenetics, The Institute of Cancer Research and Royal Marsden Hospital Trust, 203 Fulham Road, London SW3 6JJ, UK.
Background And Objectives:
Disruption of either the p14ARF- mdm2- p53 or p16INK4A- Rb1 pathways produces a breakdown of regulatory mechanisms and creates a gateway for tumorigenesis. Since the incidence and clinical implications of abnormalities of TP53, CDKN2A (encoding for p16 and p14) and MDM2 genes (chromosome 12) in multiple myeloma (MM) is not clear, we investigated allelic loss at the former two loci and gain at the latter locus in a series of 82 MM patients.
Design And Methods:
Dual color fluorescence in situ hybridization (FISH) was applied to bone marrow samples to establish the incidence of changes at the above mentioned loci. The CDKN2A locus was tested using a probe which hybridizes to 9p21 and also targets the p15INK4B gene.
Results:
FISH analysis revealed the presence of monoallelic TP53 deletions in 12% of patients. Ten percent of patients had hemizygous deletion at 9p21, while a further 8% had loss of 1 of 3 loci in the presence of trisomy 9. MDM2 amplification in the face of chromosome 12 diploidy was seen in 8%, while another 8% had trisomy 12 with an equivalent increase in signals for MDM2. Clinical correlations revealed that allelic loss of TP53 was the only factor associated with resistance to chemotherapy. The presence of 9p21 deletion was associated with an IgA isotype but none of the abnormalities had a significant influence on overall or event-free survival.
Interpretations And Conclusions:
P53 and CDKN2A (9p21) allelic loss and amplifications of the MDM2 gene are infrequent events in myeloma. The incidence of the latter two events was, however, higher than previously reported. Deletion of the TP53 gene predicted resistance to chemotherapy, highlighting its importance in this disease process.
Insights
TP53 gene deletion is linked to chemotherapy resistance in multiple myeloma (MM). While TP53, CDKN2A, and MDM2 gene abnormalities are infrequent in MM, TP53 deletion is a significant predictor of treatment outcomes.
Area of Science:
- Oncology
- Cancer Genetics
- Hematology
Background:
- Disruption of p14ARF-mdm2-p53 and p16INK4A-Rb1 pathways drives tumorigenesis.
- The role of TP53, CDKN2A, and MDM2 gene abnormalities in multiple myeloma (MM) requires clarification.
Purpose of the Study:
- Investigate allelic loss of TP53 and CDKN2A, and gain of MDM2 in 82 MM patients.
- Determine the incidence and clinical implications of these genetic alterations in MM.
Main Methods:
- Dual-color fluorescence in situ hybridization (FISH) on bone marrow samples.
- Assessed TP53 deletions, 9p21 (CDKN2A/p15) deletions, and MDM2 amplifications/trisomy 12.
Main Results:
- Monoallelic TP53 deletions occurred in 12% of MM patients.
- 9p21 deletions (hemizygous or with trisomy 9) in 10-8% and MDM2 amplification/trisomy 12 in 8-8%.
- TP53 allelic loss was the sole predictor of chemotherapy resistance; 9p21 deletion correlated with IgA isotype.
Conclusions:
- TP53, CDKN2A, and MDM2 genetic alterations are infrequent but potentially more common than previously reported in MM.
- TP53 deletion is a significant indicator of chemotherapy resistance in multiple myeloma.
- Further research is warranted to understand the full impact of these genetic changes on MM prognosis.
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