Changes in intracellular electrolyte concentrations during apoptosis induced by UV irradiation of human myeloblastic

F Arrebola1, E Fernández-Segura, A Campos

  • 1Electron Microscopy Unit, King's College London, Department of Ophthalmology, The Rayne Institute, St. Thomas' Hospital, UK.

Insights

Early decreases in intracellular potassium (K+) and chloride (Cl-) concentrations precede key apoptosis events. These electrolyte changes occur in various cell compartments before cell death markers appear.

Area of Science:

  • Cell Biology
  • Biochemistry
  • Physiology

Background:

  • Intracellular electrolyte shifts, particularly potassium (K+) and chloride (Cl-), are linked to apoptosis.
  • The precise timing and compartmentalization of these electrolyte changes during apoptosis remain unclear.

Purpose of the Study:

  • To investigate the temporal relationship between intracellular electrolyte concentration changes (Na+, P, Cl-, K+) and key apoptotic events.
  • To determine how electrolyte concentration changes affect different intracellular compartments (nucleus, cytoplasm, mitochondria) during UV-induced apoptosis.

Main Methods:

  • Utilized electron probe X-ray microanalysis to quantify elemental concentrations in U937 cells.
  • Monitored changes in sodium (Na+), phosphorus (P), chloride (Cl-), and potassium (K+) in nucleus, cytoplasm, and mitochondria during apoptosis progression.

Main Results:

  • Early decreases in intracellular [K+] and [Cl-] were observed across all compartments, preceding cytochrome c release and nuclear changes.
  • Mitochondria exhibited the most significant early decreases in [K+] and [Cl-].
  • Later stages showed increasing [Cl-] and [Na+], coinciding with nuclear events like DNA laddering and caspase activation.

Conclusions:

  • Normotonic cell shrinkage, driven by electrolyte loss, is an early event in apoptosis.
  • Intracellular K+ and Cl- concentration changes precede and potentially drive key apoptotic events in a compartmentalized manner.

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