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bioRxiv · 10.1101/2023.09.13.557548

Maternal IL-10 restricts fetal emergency myelopoiesis

Abstract

Neonates, in contrast to adults, are highly susceptible to inflammation and infection. Here we investigate how late fetal liver (FL) mouse hematopoietic stem and progenitor cells (HSPC) respond to inflammation, testing the hypothesis that deficits in engagement of emergency myelopoiesis (EM) pathways limit neutrophil output and contribute to perinatal neutropenia. We show that despite similar molecular wiring as adults, fetal HSPCs have limited production of myeloid cells at steady state and fail to activate a classical EM transcriptional program. Moreover, we find that fetal HSPCs are capable of responding to EM-inducing inflammatory stimuli in vitro, but are restricted by maternal anti-inflammatory factors, primarily interleukin-10 (IL-10), from activating EM pathways in utero. Accordingly, we demonstrate that loss of maternal IL-10 restores EM activation in fetal HSPCs but at the cost of premature parturition. These results reveal the evolutionary trade-off inherent in maternal anti-inflammatory responses that maintain pregnancy but render the fetus unresponsive to EM activation signals and susceptible to infection. HIGHLIGHTSO_LIThe structure of the HSPC compartment is conserved from late fetal to adult life. C_LIO_LIFetal HSPCs have diminished steady-state myeloid cell production compared to adult. C_LIO_LIFetal HSPCs are restricted from engaging in emergency myelopoiesis by maternal IL-10. C_LIO_LIRestriction of emergency myelopoiesis may explain neutropenia in septic neonates. C_LI eTOC BLURBFetal hematopoietic stem and progenitor cells are restricted from activating emergency myelopoiesis pathways by maternal IL-10, resulting in inadequate myeloid cell production in response to inflammatory challenges and contributing to neonatal neutropenia.

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Collins, A., Swann, J. W., Proven, M. A., Patel, C., Mitchell, C. A., Kasbekar, M., Dellorusso, P. V., Passegue, E.. 2023-09-13. Maternal IL-10 restricts fetal emergency myelopoiesis. https://doi.org/10.1101/2023.09.13.557548

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