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A critical role of CDKN3 in Bcr-Abl-mediated tumorigenesis
Qinghuang Chen1, Ke Chen2, Guijie Guo2
1College of Animal Sciences, Fujian Agriculture and Forestry University, Fuzhou, Fujian, China.
Abstract:
CDKN3 (cyclin-dependent kinase inhibitor 3), a dual specificity protein phosphatase, dephosphorylates cyclin-dependent kinases (CDKs) and thus functions as a key negative regulator of cell cycle progression. Deregulation or mutations of CDNK3 have been implicated in various cancers. However, the role of CDKN3 in Bcr-Abl-mediated chronic myelogenous leukemia (CML) remains unknown. Here we found that CDKN3 acts as a tumor suppressor in Bcr-Abl-mediated leukemogenesis. Overexpression of CDKN3 sensitized the K562 leukemic cells to imanitib-induced apoptosis and dramatically inhibited K562 xenografted tumor growth in nude mouse model. Ectopic expression of CDKN3 significantly reduced the efficiency of Bcr-Abl-mediated transformation of FDCP1 cells to growth factor independence. In contrast, depletion of CDKN3 expression conferred resistance to imatinib-induced apoptosis in the leukemic cells and accelerated the growth of xenograph leukemia in mice. In addition, we found that CDKN3 mutant (CDKN3-C140S) devoid of the phosphatase activity failed to affect the K562 leukemic cell survival and xenografted tumor growth, suggesting that the phosphatase of CDKN3 was required for its tumor suppressor function. Furthermore, we observed that overexpression of CDKN3 reduced the leukemic cell survival by dephosphorylating CDK2, thereby inhibiting CDK2-dependent XIAP expression. Moreover, overexpression of CDKN3 delayed G1/S transition in K562 leukemic cells. Our results highlight the importance of CDKN3 in Bcr-Abl-mediated leukemogenesis, and provide new insights into diagnostics and therapeutics of the leukemia.
Insights
Cyclin-dependent kinase inhibitor 3 (CDKN3) suppresses tumors in Bcr-Abl-mediated leukemia. Its phosphatase activity is crucial for inhibiting leukemic cell growth and sensitizing cells to imatinib therapy.
Area of Science:
- Molecular Biology
- Oncology
- Biochemistry
Background:
- Cyclin-dependent kinase inhibitor 3 (CDKN3) is a phosphatase regulating cell cycle.
- CDKN3 deregulation is linked to various cancers.
- The role of CDKN3 in Bcr-Abl-mediated chronic myelogenous leukemia (CML) is uncharacterized.
Purpose of the Study:
- To investigate the function of CDKN3 in Bcr-Abl-mediated leukemogenesis.
- To determine if CDKN3 acts as a tumor suppressor in CML.
- To explore the therapeutic potential of CDKN3 in CML.
Main Methods:
- Overexpression and depletion of CDKN3 in K562 and FDCP1 cell lines.
- Assessment of imatinib sensitivity and apoptosis induction.
- Xenograft mouse models for tumor growth analysis.
- Analysis of CDKN3 phosphatase activity using a mutant form (CDKN3-C140S).
- Investigation of downstream targets including CDK2 and XIAP.
Main Results:
- CDKN3 overexpression inhibited K562 cell growth, sensitized cells to imatinib, and reduced tumor growth in mice.
- CDKN3 depletion conferred imatinib resistance and accelerated leukemia growth.
- A catalytically inactive CDKN3 mutant (CDKN3-C140S) failed to suppress tumor growth, indicating phosphatase activity is essential.
- CDKN3 dephosphorylated CDK2, inhibiting CDK2-dependent XIAP expression and delaying G1/S transition.
Conclusions:
- CDKN3 functions as a tumor suppressor in Bcr-Abl-mediated leukemogenesis.
- The phosphatase activity of CDKN3 is critical for its tumor-suppressive role.
- CDKN3 represents a potential therapeutic target for CML, influencing imatinib sensitivity and cell cycle regulation.
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