Lineage-specific Growth Factors Can Compensate for Stem and Progenitor Cell Deficiencies at the Postprogenitor Cell Level: an Analysis of Doubly TPO- and G-CSF Receptor-deficient Mice
Overview
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Multiple lines of evidence indicate that thrombopoietin (TPO) substantially impacts the number of hematopoietic stem cells and progenitors of all myeloid lineages. Nevertheless, tpo knock-out mice (T(-)) display thrombocytopenia only; blood erythroid and neutrophil levels are normal despite 60% to 85% reductions in stem and progenitor cells. The compensatory mechanism(s) for these deficiencies remains uncertain; lineage-specific cytokines such as erythropoietin or granulocyte colony-stimulating factor (G-CSF) have been postulated but never proven to be responsible. To directly test whether G-CSF can compensate for the myeloid progenitor cell reduction in the T(-) model of hematopoietic deficiency, T(-) and G-CSF-receptor knock-out (GR(-)) mice were crossed, and F1 animals bred to obtain doubly nullizygous mice (T(-)GR(-)). This experiment also allowed us to test the hypothesis that G-CSF contributes to the residual platelet production in T(-) mice. We found that T(-)GR(-) F2 mice displayed similar blood platelet levels as that seen in T(-) mice, indicating that G-CSF does not account for the residual megakaryopoiesis in T(-) mice. However, we also noted excessive perinatal mortality of T(-)GR(-) animals, caused by infection due to a profound and significant decrease in marrow and peripheral blood neutrophils, far greater than that seen in either T(-) or GR(-) mice. These data indicate that in the additional absence of GR, T(-) mice cannot compensate for their 62% reduction in myeloid progenitors and become profoundly neutropenic, supporting the hypothesis that G-CSF can compensate for the myeloid effects of TPO deficiency by expanding the pool of cells between the granulocyte-macrophage colony-forming unit and mature neutrophil stages of granulopoiesis.
Role of autophagy in megakaryocyte differentiation and platelet formation.
You T, Wang Q, Zhu L Int J Physiol Pathophysiol Pharmacol. 2016; 8(1):28-34.
PMID: 27186320 PMC: 4859876.
Requirement of TPO/c-mpl for IL-17A-induced granulopoiesis and megakaryopoiesis.
Tan W, Liu B, Barsoum A, Huang W, Kolls J, Schwarzenberger P J Leukoc Biol. 2013; 94(6):1303-8.
PMID: 23990627 PMC: 4051276. DOI: 10.1189/jlb.1212639.
Wang Y, Leblanc M, Fox N, Mao J, Tinkum K, Krummel K Genes Dev. 2011; 25(13):1426-38.
PMID: 21724834 PMC: 3134085. DOI: 10.1101/gad.2024411.
Quillen K, Yau Y, Leitman S Transfusion. 2008; 49(3):421-6.
PMID: 19040597 PMC: 3421027. DOI: 10.1111/j.1537-2995.2008.01997.x.
Panopoulos A, Watowich S Cytokine. 2008; 42(3):277-88.
PMID: 18400509 PMC: 2852428. DOI: 10.1016/j.cyto.2008.03.002.