Protein kinase CK2 impact on intracellular calcium homeostasis in prostate cancer

Muhammad Afzal1,2,3, Betsy T Kren1,4, A Khaliq Naveed3

  • 1Research Service, Minneapolis VA Health Care System, Minneapolis, MN, 55417, USA.

Insights

Inhibiting protein kinase CK2 rapidly shifts calcium ions (Ca2+) from the cytosol to the ER and mitochondria in prostate cancer cells. This rapid calcium redistribution is a key early event in CK2 inhibition-induced apoptosis.

Area of Science:

  • Biochemistry
  • Cell Biology
  • Cancer Research

Background:

  • Protein kinase CK2 (CK2) is crucial for cell function and is often elevated in cancer.
  • CK2's role in suppressing apoptosis is a key factor in cancer cell survival.
  • Previous research indicates CK2's influence on cell death involves mitochondrial pathways, with early effects on mitochondrial membrane potential and Ca2+ signaling.

Purpose of the Study:

  • To investigate the immediate impact of CK2 inhibition on intracellular calcium (Ca2+) dynamics in prostate cancer cells.
  • To elucidate the role of Ca2+ redistribution in the early stages of CK2 inhibition-induced apoptosis.

Main Methods:

  • Three prostate cancer cell lines (PC3-LN4, C4-2B, 22Rv1) were treated with CK2 inhibitors (4,5,6,7-tetrabrombenzotriazole and CX-4945).
  • Intracellular Ca2+ levels were monitored in various cellular compartments (cytosol, ER, mitochondria) over time using quantitative analysis.

Main Results:

  • CK2 inhibition caused a rapid, dose-dependent decrease in cytosolic Ca2+ levels within minutes.
  • Concurrently, Ca2+ levels increased significantly in the endoplasmic reticulum (ER) and mitochondria.
  • Total cellular Ca2+ levels decreased at later time points (2 hours) in cells with significant CK2 inhibition.

Conclusions:

  • CK2 inhibition triggers a swift translocation of Ca2+ from the cytosol to the ER and mitochondria.
  • This rapid Ca2+ redistribution is a potential early mechanism contributing to apoptosis induction by CK2 inhibition.
  • These findings offer novel insights into CK2's regulation of cell survival and death pathways.

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