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Degranulation of rough endoplasmic reticulum in M phase and adenosine-triphosphate-treated interphase cells is

K H Sit1, B H Bay, K P Wong

  • 1Department of Anatomy, National University of Singapore.

Acta Anatomica
|January 1, 1992
PubMed

Insights

Calcium depletion causes endoplasmic reticulum (ER) degranulation in human liver cells during mitosis or ATP stimulation. ER granularity is reversible with calcium reintroduction, suggesting it

Area of Science:

  • Cell Biology
  • Biochemistry

Background:

  • Mitotic (M phase) cells exhibit Ca2+ transients.
  • Mechanical agitation in Ca2+-free solutions induces endoplasmic reticulum (ER) degranulation in human Chang liver cells.
  • Quiescent cells treated with adenosine 5'-triphosphate (ATP) in Ca2+-free buffer also show ER degranulation.

Purpose of the Study:

  • To investigate the role of calcium (Ca2+) in ER degranulation during mitosis and ATP stimulation.
  • To determine if Ca2+ depletion is the cause of ER degranulation.

Main Methods:

  • Preferential harvesting of mitotic cells via mechanical agitation.
  • Incubation of quiescent cells with ATP in Ca2+-free buffer.
  • Confocal argon laser imaging of fluo-3-loaded cells to monitor Ca2+ transients.
  • Experimental manipulation of extracellular Ca2+ concentrations and use of calcium ionophores.

Main Results:

  • Mechanical agitation of mitotic cells in Ca2+-free saline caused ER degranulation.
  • ATP treatment in Ca2+-free buffer induced ER degranulation with a peak Ca2+ transient at 2 minutes.
  • Ca2+ depletion, not elevated cytosolic Ca2+, was implicated in ER degranulation.
  • Degranulated ER could be restored by incubation in Ca2+-containing growth medium.

Conclusions:

  • Ca2+ depletion, or reduction, is causally linked to ER degranulation.
  • ER granularity is a facultative, not constitutive, state.
  • Restoration of Ca2+ levels allows recovery of ER structure and cell morphology.

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