Macrophage migration inhibitory factor is an endogenous regulator of stress-induced extramedullary erythropoiesis
Sanja Vignjević Petrinović1, Mirela Budeč2, Dragana Marković3
1Department of Neuroendocrinology, Institute for Medical Research, University of Belgrade, Dr Subotića 4, PO Box 39, 11129, Belgrade 102, Serbia. sanja.vignjevic@imi.bg.ac.rs.
Abstract:
Macrophage migration inhibitory factor is a well-known proinflammatory cytokine that is released during systemic stress response. Although MIF can affect erythrocyte production, the role of this cytokine in stress-induced erythropoiesis is completely unknown. To extend our previous findings showing that chronic psychological stress stimulates extramedullary erythropoiesis, here we examined whether MIF is involved in the control of stress-induced erythropoietic response. Adult male C57BL/6 wild-type (WT) and MIF-KO (knock-out) mice were subjected to 2-h daily restraint stress for either 7 or 14 consecutive days. The number of erythroid progenitors and CD71/Ter119 profile of erythroid precursors were analyzed in the bone marrow and spleen. Additionally, MIF protein expression was assessed in WT mice. Our results demonstrated that chronic restraint stress enhanced the number of both erythroid progenitors and precursors in the spleen. Stress-induced increase in the number of splenic late erythroid progenitors as well as in the percentage of CD71(+)Ter119(+)-double-positive precursors was significantly more pronounced in MIF-KO mice compared to WT animals. Furthermore, repeatedly stressed WT animals demonstrated an augmented MIF expression in the spleen. Unlike the spleen, the bone marrow of chronically stressed WT mice exhibited less prominent changes in erythropoietic stress response and no significant alteration in MIF expression. In addition, MIF deficiency did not influence the bone marrow erythropoiesis in stressed animals. These findings suggest that MIF regulates extramedullary erythropoiesis by inhibiting an overexpansion of splenic immature erythroid cells during chronic stress and indicate a novel role for this cytokine under chronic stress conditions.
Insights
Macrophage migration inhibitory factor (MIF) regulates stress-induced red blood cell production in the spleen. MIF deficiency exacerbates extramedullary erythropoiesis during chronic stress.
Area of Science:
- Immunology
- Hematology
- Stress Physiology
Background:
- Macrophage migration inhibitory factor (MIF) is a proinflammatory cytokine released during systemic stress.
- The role of MIF in stress-induced erythropoiesis (red blood cell production) is not well understood.
- Previous research indicated chronic psychological stress stimulates extramedullary erythropoiesis.
Purpose of the Study:
- To investigate the involvement of MIF in the control of stress-induced erythropoietic response.
- To determine if MIF influences extramedullary erythropoiesis under chronic stress conditions.
Main Methods:
- Adult male C57BL/6 wild-type (WT) and MIF-knockout (KO) mice were subjected to daily restraint stress for 7 or 14 days.
- Erythroid progenitor numbers and precursor profiles (CD71/Ter119) were analyzed in bone marrow and spleen.
- MIF protein expression was assessed in WT mice.
Main Results:
- Chronic stress enhanced erythroid progenitors and precursors in the spleen of WT mice.
- MIF-KO mice showed a more pronounced increase in splenic erythroid progenitors and precursors compared to WT mice.
- Stressed WT mice exhibited augmented MIF expression in the spleen, but not bone marrow.
- MIF deficiency did not affect bone marrow erythropoiesis in stressed animals.
Conclusions:
- MIF plays a regulatory role in extramedullary erythropoiesis.
- MIF inhibits the overexpansion of splenic immature erythroid cells during chronic stress.
- This study reveals a novel function for MIF in response to chronic stress.
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