Manipulating niche composition limits damage to haematopoietic stem cells during Plasmodium infection

Severe infections are a major stress on haematopoiesis, where the consequences for haematopoietic stem cells (HSCs) have only recently started to emerge. HSC function critically depends on the integrity of complex bone marrow (BM) niches; however, what role the BM microenvironment plays in mediating...

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Veröffentlicht in:Nature cell biology 2020-12, Vol.22 (12), p.1399-1410
Hauptverfasser: Haltalli, Myriam L. R., Watcham, Samuel, Wilson, Nicola K., Eilers, Kira, Lipien, Alexander, Ang, Heather, Birch, Flora, Anton, Sara Gonzalez, Pirillo, Chiara, Ruivo, Nicola, Vainieri, Maria L., Pospori, Constandina, Sinden, Robert E., Luis, Tiago C., Langhorne, Jean, Duffy, Ken R., Göttgens, Berthold, Blagborough, Andrew M., Lo Celso, Cristina
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Sprache:eng
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Zusammenfassung:Severe infections are a major stress on haematopoiesis, where the consequences for haematopoietic stem cells (HSCs) have only recently started to emerge. HSC function critically depends on the integrity of complex bone marrow (BM) niches; however, what role the BM microenvironment plays in mediating the effects of infection on HSCs remains an open question. Here, using a murine model of malaria and combining single-cell RNA sequencing, mathematical modelling, transplantation assays and intravital microscopy, we show that haematopoiesis is reprogrammed upon infection, whereby the HSC compartment turns over substantially faster than at steady-state and HSC function is drastically affected. Interferon is found to affect both haematopoietic and mesenchymal BM cells and we specifically identify a dramatic loss of osteoblasts and alterations in endothelial cell function. Osteo-active parathyroid hormone treatment abolishes infection-triggered HSC proliferation and—coupled with reactive oxygen species quenching—enables partial rescuing of HSC function. Haltalli et al. show that Plasmodium berghei infection induces interferon release, and affects haematopoietic stem cell proliferation and function, as well as osteoblasts and vascular integrity, in the bone marrow niche.
ISSN:1465-7392
1476-4679
DOI:10.1038/s41556-020-00601-w