Mitochondrial dynamics and reactive oxygen species initiate thrombopoiesis from mature megakaryocytes

Sonia Poirault-Chassac1, Valérie Nivet-Antoine1,2, Amandine Houvert3,4

  • 1Innovative Therapies in Hemostasis, INSERM 1140, Université de Paris, Paris, France.

Blood Advances
|March 15, 2021
PubMed

Insights

Mitochondrial reactive oxygen species (mtROS) and mitochondrial fission are crucial for initiating platelet production from megakaryocytes. Controlling mtROS levels and fission dynamics can regulate thrombopoiesis and potentially treat thrombocytopenia.

Area of Science:

  • Hematology
  • Cell Biology
  • Mitochondrial Biology

Background:

  • Blood platelets are vital for hemostasis, produced by megakaryocytes (MKs) in the bone marrow.
  • Platelet production (thrombopoiesis) may be influenced by oxygen gradients, as suggested by increased platelet counts in postpulmonary capillaries.

Purpose of the Study:

  • To investigate the role of reactive oxygen species (ROS) and mitochondrial dynamics in the initiation of thrombopoiesis.
  • To elucidate the molecular mechanisms coupling ROS production and mitochondrial fission in mature MKs.

Main Methods:

  • Assessed thrombopoiesis initiation under varying oxygen levels and with pro-oxidant/antioxidant treatments.
  • Utilized MitoTEMPO to quench mitochondrial ROS (mtROS) and genetic manipulation of sirtuin-3 to alter mtROS levels.
  • Employed NOX inhibitors to block cytosolic ROS and Mdivi-1 to inhibit Drp1-dependent mitochondrial fission.
  • Classified MKs into stages based on cell roundness index and analyzed mitochondrial morphology and dynamics.

Main Results:

  • Hyperoxia and pro-oxidants enhanced thrombopoiesis, while antioxidants and mtROS quenching decreased it.
  • Genetic enhancement of mtROS increased thrombopoiesis; cytosolic ROS inhibition had no effect.
  • Three MK stages (early, intermediate, terminal) correlated with mtROS levels, mitochondrial network structure, and Drp1 activity.
  • Inhibition of Drp1-mediated mitochondrial fission reduced mtROS and intermediate MKs, while promoting a tubular mitochondrial network.

Conclusions:

  • A functional coupling exists between ROS, particularly mtROS, and mitochondrial fission in MKs, essential for initiating thrombopoiesis.
  • These findings offer new molecular insights into platelet biogenesis regulation.
  • The study may help explain certain types of thrombocytopenia and suggest therapeutic avenues.

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