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Studying Cell Cycle-regulated Gene Expression by Two Complementary Cell Synchronization Protocols
Published on: June 6, 2017
Nm23-H1 can induce cell cycle arrest and apoptosis in B cells
Tathagata Choudhuri1, Masanao Murakami, Rajeev Kaul
1Division of Infectious Disease Biology, Institute of Life Sciences, Bhubaneswar, India.
Abstract:
Nm23-H1 is a well-known tumor metastasis suppressor, which functions as a nucleoside-diphosphate kinase converting nucleoside diphosphates to nucleoside triphosphates with an expense of ATP. It regulates a variety of cellular activities, including proliferation, development, migration and differentiation known to be modulated by a series of complex signaling pathway. Few studies have addressed the mechanistic action of Nm23-H1 in the context of these cellular processes. To determine the downstream pathways modulated by Nm23-H1, we expressed Nm23-H1 in a Burkitt lymphoma derived B-cell line BJAB and performed pathway specific microarray analysis. The genes with significant changes in expression patterns were clustered in groups which are responsible for regulating cell cycle, p53 activities and apoptosis. We found a general reduction of cell cycle regulatory proteins including cyclins and cyclin dependent kinase inhibitors (anti proliferation), and upregulation of apoptotic genes which included caspase 3, 9 and Bcl-x. Nm23-H1 was also found to upregulate p53 and downregulate p21 expression. A number of these genes were validated by real time PCR and results from promoter assays indicated that Nm23-H1 expression downregulated cyclin D1 in a dose responsive manner. Further, we show that Nm23-H1 forms a complex with the cellular transcription factor AP1 to modulate cyclin D1 expression levels. BJAB cells expressing Nm23-H1 showed reduced proliferation rate and were susceptible to increased apoptosis which may in part be due to a direct interaction between Nm23-H1 and p53. These results suggest that Nm23-H1 may have a role in the regulation of cell cycle and apoptosis in human B-cells.
Insights
Nucleoside-diphosphate kinase Nm23-H1 suppresses tumor metastasis by regulating cell cycle and apoptosis in B-cells. It impacts proliferation and cell death pathways, suggesting a key role in human B-cell regulation.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Nm23-H1 is a known tumor metastasis suppressor with nucleoside-diphosphate kinase activity.
- Its precise mechanistic actions in cellular processes like proliferation and migration are not fully understood.
- Nm23-H1 regulates diverse cellular activities modulated by complex signaling pathways.
Purpose of the Study:
- To elucidate the downstream signaling pathways affected by Nm23-H1 expression.
- To investigate the role of Nm23-H1 in regulating cell cycle and apoptosis in B-cells.
Main Methods:
- Nm23-H1 was expressed in BJAB Burkitt lymphoma-derived B-cells.
- Pathway-specific microarray analysis was performed to identify gene expression changes.
- Real-time PCR, promoter assays, and co-immunoprecipitation were used for validation and mechanistic studies.
Main Results:
- Microarray analysis revealed changes in cell cycle regulators, p53 activity, and apoptosis-related genes.
- Nm23-H1 downregulated proliferation proteins (cyclins, CDK inhibitors) and upregulated apoptotic genes (caspase 3, 9, Bcl-x).
- Nm23-H1 upregulated p53, downregulated p21, and formed a complex with AP1 to modulate cyclin D1 expression.
Conclusions:
- Nm23-H1 expression reduces proliferation and increases apoptosis in BJAB B-cells.
- Nm23-H1 may directly interact with p53, contributing to its effects on apoptosis.
- Nm23-H1 plays a significant role in regulating cell cycle and apoptosis in human B-cells.
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