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Hematologic abnormalities of the immunodeficient mouse mutant, viable motheaten (mev)
1Department of Cell Biology and Anatomy, Texas Tech University Health Sciences Center, Lubbock 79430.
Abstract:
We have studied the hematopoietic system of the immunodeficient mouse mutant, viable motheaten (mev/mev). These mice usually die by 9 weeks of age from severe pneumonitis. The lungs at that time are infiltrated with granulocytes, macrophages, and lymphocytes. Granulocyte and macrophage precursor cells (CFU-GM) are dramatically increased in the spleens of mev/mev mice, whereas the bone marrow population of these precursors is decreased when compared with littermate control animals. The CFU-GM population retained its normal dependence on granulocyte-macrophage colony-stimulating factor (GM-CSF) for proliferation and differentiation. In contrast, the frequency of an erythroid precursor (CFU-E) was dramatically increased in spleen and showed increased sensitivity to erythropoietin (Epo). Moreover, a splenic CFU-E subpopulation formed normally appearing erythroid colonies in the absence of exogenous Epo. The bone marrow CFU-E population was significantly diminished in size when compared with either wildtype C57BL/6J mice or mice heterozygous for the mev allele. Unlike the CFU-E population, erythroid burst-forming unit (BFU-E) frequency in mev/mev mice was diminished both in bone marrow and in spleen, although the total number of splenic BFU-E was increased because of splenomegaly in these animals. BFU-E retained their dependence on the presence of both Epo and a source of interleukin 3 (IL-3) for proliferation and differentiation into erythroid bursts. Spleen cells from mev/mev mice, when stimulated in vitro with pokeweed mitogen, failed to produce significant quantities of IL-3. Comparison with medium or +/mev heterozygotes revealed that mev/mev spleen cell-conditioned medium showed a 40-fold reduction in burst-promoting activity. Thus, in viable motheaten mice, there is a major shift in hematopoiesis from bone marrow to spleen, which is accompanied by a diminished capacity of spleen cells to produce burst-promoting activity. These data and those from other studies suggest that the hematopoietic microenvironment of marrow may be impaired in this mutant.
Insights
Viable motheaten mice show a significant shift in blood cell production from bone marrow to spleen. This defect is linked to impaired spleen cell function and suggests a compromised bone marrow microenvironment.
Area of Science:
- Hematology
- Immunology
- Mouse Models
Background:
- The viable motheaten (mev/mev) mouse is an immunodeficient model that typically succumbs to severe pneumonitis by 9 weeks of age.
- Affected mice exhibit lung infiltration by granulocytes, macrophages, and lymphocytes.
Purpose of the Study:
- To investigate the hematopoietic system alterations in viable motheaten (mev/mev) mice.
- To understand the functional changes in hematopoietic precursor cells and their microenvironment.
Main Methods:
- Comparative analysis of hematopoietic precursor cells (CFU-GM, CFU-E, BFU-E) in bone marrow and spleen of mev/mev mice and controls.
- Assessment of precursor cell responses to growth factors like granulocyte-macrophage colony-stimulating factor (GM-CSF) and erythropoietin (Epo).
- In vitro culture of spleen cells to evaluate interleukin-3 (IL-3) production and burst-promoting activity.
Main Results:
- Mev/mev mice display increased granulocyte and macrophage precursors (CFU-GM) in the spleen but decreased levels in bone marrow.
- Erythroid precursors (CFU-E) are elevated in the spleen, with some showing erythropoietin (Epo)-independent growth, while bone marrow CFU-E are diminished.
- Erythroid burst-forming units (BFU-E) are reduced in both compartments, despite splenomegaly, and spleen cells show a 40-fold reduction in burst-promoting activity, indicating impaired IL-3 production.
Conclusions:
- Viable motheaten mice exhibit a substantial shift in hematopoiesis from bone marrow to spleen.
- The reduced burst-promoting activity in mev/mev mice suggests a defect in the hematopoietic microenvironment, potentially impacting IL-3 production.
- These findings highlight a complex interplay between cellular defects and microenvironmental factors in this model of immunodeficiency.