Gdf15 regulates murine stress erythroid progenitor proliferation and the development of the stress erythropoiesis niche

Author:

Hao Siyang12,Xiang Jie1,Wu Dai-Chen34,Fraser James W.12,Ruan Baiye25,Cai Jingwei67,Patterson Andrew D.67,Lai Zhi-Chun138,Paulson Robert F.1237

Affiliation:

1. Graduate Program in Molecular, Cellular and Integrative Bioscience,

2. Center for Molecular Immunology and Infectious Disease, and

3. Graduate Program in Biochemistry, Microbiology and Molecular Biology, Penn State University, University Park, PA;

4. Atreca Inc., Redwood City, CA; and

5. Graduate Program in Pathobiology,

6. Center for Molecular Toxicology and Carcinogenesis,

7. Department of Veterinary and Biomedical Sciences, and

8. Department of Biology, Penn State University, University Park, PA

Abstract

Abstract Anemic stress induces the proliferation of stress erythroid progenitors in the murine spleen that subsequently differentiate to generate erythrocytes to maintain homeostasis. This process relies on the interaction between stress erythroid progenitors and the signals generated in the splenic erythroid niche. In this study, we demonstrate that although growth-differentiation factor 15 (Gdf15) is not required for steady-state erythropoiesis, it plays an essential role in stress erythropoiesis. Gdf15 acts at 2 levels. In the splenic niche, Gdf15−/− mice exhibit defects in the monocyte-derived expansion of the splenic niche, resulting in impaired proliferation of stress erythroid progenitors and production of stress burst forming unit-erythroid cells. Furthermore, Gdf15 signaling maintains the hypoxia-dependent expression of the niche signal, Bmp4, whereas in stress erythroid progenitors, Gdf15 signaling regulates the expression of metabolic enzymes, which contribute to the rapid proliferation of stress erythroid progenitors. Thus, Gdf15 functions as a comprehensive regulator that coordinates the stress erythroid microenvironment with the metabolic status of progenitors to promote stress erythropoiesis.

Publisher

American Society of Hematology

Subject

Hematology

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