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Updated: Oct 31, 2025

Studying TGF-β Signaling and TGF-β-induced Epithelial-to-mesenchymal Transition in Breast Cancer and Normal Cells
Published on: October 27, 2020
NEK5 activity regulates the mesenchymal and migratory phenotype in breast cancer cells
Margarite D Matossian1, Steven Elliott1, T Van Hoang1
1Department of Medicine, Tulane University School of Medicine, New Orleans, LA, USA.
Purpose:
Breast cancer remains a prominent global disease affecting women worldwide despite the emergence of novel therapeutic regimens. Metastasis is responsible for most cancer-related deaths, and acquisition of a mesenchymal and migratory cancer cell phenotypes contributes to this devastating disease. The utilization of kinase targets in drug discovery have revolutionized the field of cancer research but despite impressive advancements in kinase-targeting drugs, a large portion of the human kinome remains understudied in cancer. NEK5, a member of the Never-in-mitosis kinase family, is an example of such an understudied kinase. Here, we characterized the function of NEK5 in breast cancer.
Methods:
Stably overexpressing NEK5 cell lines (MCF7) and shRNA knockdown cell lines (MDA-MB-231, TU-BcX-4IC) were utilized. Cell morphology changes were evaluated using immunofluorescence and quantification of cytoskeletal components. Cell proliferation was assessed by Ki-67 staining and transwell migration assays tested cell migration capabilities. In vivo experiments with murine models were necessary to demonstrate NEK5 function in breast cancer tumor growth and metastasis.
Results:
NEK5 activation altered breast cancer cell morphology and promoted cell migration independent of effects on cell proliferation. NEK5 overexpression or knockdown does not alter tumor growth kinetics but promotes or suppresses metastatic potential in a cell type-specific manner, respectively.
Conclusion:
While NEK5 activity modulated cytoskeletal changes and cell motility, NEK5 activity affected cell seeding capabilities but not metastatic colonization or proliferation in vivo. Here we characterized NEK5 function in breast cancer systems and we implicate NEK5 in regulating specific steps of metastatic progression.
Insights
Never-in-mitosis kinase 5 (NEK5) influences breast cancer cell migration and metastasis. NEK5 activation promotes cell motility and alters cell shape, impacting metastatic potential in a cell-type-specific manner.
Area of Science:
- Oncology
- Cell Biology
- Molecular Biology
Background:
- Breast cancer metastasis is a leading cause of cancer mortality.
- Kinase-targeting drugs have advanced cancer therapy, yet many kinases remain understudied.
- NEK5, a Never-in-mitosis kinase, is an under-explored kinase in breast cancer research.
Purpose of the Study:
- To investigate the functional role of NEK5 in breast cancer.
- To characterize NEK5's impact on cell morphology, migration, and metastasis.
Main Methods:
- Utilized stably overexpressing NEK5 (MCF7) and shRNA knockdown (MDA-MB-231, TU-BcX-4IC) breast cancer cell lines.
- Assessed cell morphology, cytoskeletal changes, proliferation (Ki-67), and migration (transwell assays).
- Conducted in vivo murine models to evaluate tumor growth and metastasis.
Main Results:
- NEK5 activation altered breast cancer cell morphology and promoted cell migration.
- NEK5 overexpression/knockdown did not affect tumor growth kinetics.
- NEK5 modulated metastatic potential in a cell type-specific manner, affecting cell seeding but not colonization.
Conclusions:
- NEK5 plays a role in regulating specific steps of metastatic progression in breast cancer.
- NEK5 activity influences cytoskeletal dynamics and cell motility.
- Further research into NEK5 as a therapeutic target for metastasis is warranted.
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