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Updated: Apr 15, 2026

Continuous Fluorescence-Based Endonuclease-Coupled DNA Methylation Assay to Screen for DNA Methyltransferase Inhibitors
Published on: August 5, 2022
Infrequent DNA methylation of miR-9-1 and miR-9-3 in multiple myeloma
Qi Zhang1, Lu Qian Wang2, Kwan Yeung Wong2
1Department of Haematology, Affiliated Hospital of Xuzhou Medical College, Xuzhou Medical College, Xuzhou, Jiangsu Province, China.
Aims:
The miR-9 family microRNAs (miRNAs) are tumour suppressor miRNAs implicated in carcinogenesis. We postulated that miR-9-1, miR-9-2 and miR-9-3 may be inactivated by aberrant promoter methylation in multiple myeloma (MM).
Methods:
Methylation of miR-9-1, miR-9-2 and miR-9-3 was studied by methylation-specific PCR (MSP) in six normal controls, including three each of healthy peripheral blood (PB) or bone marrow buffy coat, 10 MM cell lines, 62 primary MM marrow samples at diagnosis and 22 at relapse/progression.
Results:
MSP, verified by quantitative pyrosequencing, showed that the promoters of miR-9-3 and miR-9-1 were unmethylated in normal controls but methylated in 4 (40%) and 5 (50%) of 10 MM cell lines, respectively. However, the promoter of miR-9-2 was methylated in three normal PB buffy coat controls and in CD138-sorted healthy marrow plasma cells, indicating possibly tissue specific rather than tumour-specific methylation of miR-9-2, which was thus not studied further. In WL-2 cells, which were completely methylated for miR-9-3, 5-aza-2'-deoxycytidine treatment caused miR-9-3 promoter demethylation and pri-miR-9-3 re-expression. In primary samples, methylation of miR-9-3 was detected in 1 of 62 patients at diagnosis and 1 of 22 patients at relapse/progression. However, miR-9-1 methylation was absent in both primary samples at diagnosis and at relapse/progression.
Conclusions:
Hypermethylation of miR-9-3 and miR-9-1 is tumour-specific in MM, leading to reversible miRNA silencing. Frequent methylation of miR-9-3 and miR-9-1 in cell lines, but not in primary samples, may be acquired during in vitro culture, and indicates an unimportant role of miR-9 methylation in myelomagenesis.
Insights
Hypermethylation of miR-9-3 and miR-9-1 microRNAs (miRNAs) is tumor-specific in multiple myeloma (MM) cell lines, leading to reversible silencing. However, this methylation appears acquired in vitro, suggesting a minor role in myelomagenesis.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- MicroRNAs (miRNAs) of the miR-9 family act as tumor suppressors.
- Aberrant promoter methylation is a mechanism for gene inactivation in cancer.
- The role of miR-9 family methylation in multiple myeloma (MM) pathogenesis is unclear.
Purpose of the Study:
- To investigate the potential inactivation of miR-9-1, miR-9-2, and miR-9-3 by promoter methylation in multiple myeloma (MM).
Main Methods:
- Methylation-specific PCR (MSP) and quantitative pyrosequencing were used to assess promoter methylation.
- Analysis included normal controls, MM cell lines, and primary MM samples at diagnosis and relapse.
- Demethylation and re-expression studies were performed using 5-aza-2'-deoxycytidine treatment.
Main Results:
- miR-9-3 and miR-9-1 promoters were methylated in 40% and 50% of MM cell lines, respectively, but not in normal controls.
- miR-9-2 promoter methylation was observed in normal controls, suggesting tissue-specific methylation, and was excluded from further study.
- Demethylation of miR-9-3 in cell lines led to pri-miR-9-3 re-expression, indicating reversible silencing.
- miR-9-3 and miR-9-1 methylation was rare in primary MM samples (1/62 and 0/62 at diagnosis, respectively).
Conclusions:
- Hypermethylation of miR-9-3 and miR-9-1 is tumor-specific in MM cell lines, causing reversible miRNA silencing.
- The frequent methylation observed in cell lines, but not primary samples, suggests it is acquired during in vitro culture.
- miR-9 methylation likely plays a limited role in the overall process of myelomagenesis.
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