Serum granulocyte colony-stimulating factor kinetics in children receiving intense chemotherapy with or without stem

S Saito1, Y Kawano, T Watanabe

  • 1Department of Pediatrics, The University of Tokushima, Japan.

Insights

Children undergoing chemotherapy and PBSC transplantation produce high levels of endogenous G-CSF, independent of infused cell counts. This finding clarifies the source of G-CSF during hematopoietic recovery.

Area of Science:

  • Hematology
  • Immunology
  • Oncology

Background:

  • Previous studies suggested co-transfused monocytes and lymphocytes increase endogenous cytokine production, accelerating hematopoietic recovery post-PBSC transplantation (PBSCT).
  • The precise source of endogenous cytokines, particularly G-CSF, during this recovery phase remained unclear.

Purpose of the Study:

  • To investigate the source of endogenous G-CSF during hematopoietic recovery after autologous PBSC transplantation in children.
  • To compare serum levels of G-CSF and other cytokines in patients receiving conventional chemotherapy versus PBSCT, with or without exogenous G-CSF.

Main Methods:

  • Serum G-CSF levels were measured via ELISA in children undergoing conventional chemotherapy or PBSCT (with unmanipulated or purified PBSC).
  • Levels of GM-CSF, M-CSF, SCF, IL-6, IFN-gamma, and soluble IL-2 receptor were also assessed.
  • Hematopoietic recovery speed was compared between groups with and without G-CSF treatment.

Main Results:

  • Serum G-CSF levels significantly increased in patients receiving conventional chemotherapy or PBSCT without exogenous G-CSF.
  • No significant difference in hematopoietic recovery speed was observed with or without G-CSF treatment in either cohort.
  • Endogenous G-CSF levels post-PBSCT were similar whether purified CD34+ cells or unmanipulated PBSC were used.

Conclusions:

  • Children undergoing intense chemotherapy and autologous PBSCT generate substantial endogenous G-CSF during the cytopenic period.
  • This endogenous G-CSF production is not attributed to the infusion of a large number of G-CSF-producing cells.
  • The findings challenge the hypothesis that co-transfused cells are the primary drivers of early hematopoietic recovery via cytokine production.

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