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Biology subjects

Olson, O. C.

Publications and source records attributed to Olson, O. C..

2 recordsLinked to original sources

Glutamine addiction is a therapeutic target to block emergency myelopoiesis

Inflammation-driven emergency myelopoiesis (EM) contributes to the progression of many solid cancers and inflammatory diseases, yet therapeutic strategies to selectively suppress EM without compromising hematopoiesis remain lacking. Here, we use functional and single-cell transcriptomic analyses to determine metabolic programs organizing the hematopoietic hierarchy, myeloid lineage commitment, and myeloid differentiation. We identify de novo glutamine biosynthesis as a stem cell-specific survival mechanism allowing independence from exogenous glutamine. We show that myeloid differentiation is characterized by Myc-driven upregulation of mitochondrial respiration, which is hyperactivated during EM and renders myeloid progenitors dependent on glutaminolysis to fuel the TCA cycle. Both genetic and pharmacologic targeting of glutaminase suppresses EM and impairs breast tumor progression by reducing intratumoral neutrophil infiltration. Our study defines a central role for Myc-glutaminolysis in driving EM, identifies glutaminolysis as a therapeutic target to normalize maladaptive EM, and highlights myeloid overproduction as a systemic problem requiring HSPC targeting. HIGHLIGHTSO_LIHSC survival depends on de novo glutamine biosynthesis via glutamine synthetase C_LIO_LIMyc hyperactivation drives mitochondrial biogenesis during emergency myelopoiesis C_LIO_LIMyeloid progenitors become glutamine-addicted to fuel Myc-driven TCA cycle activity C_LIO_LIGlutaminase deficiency in HSPCs blunts tumor-promoting neutrophil production C_LI ETOC BLURBOlson et al. show that emergency myelopoiesis, the inflammatory overproduction of myeloid cells that drives regeneration, depends on Myc-driven mitochondrial respiration and glutamine addiction in hematopoietic progenitors. Targeting glutaminase in hematopoietic stem and progenitor cells suppresses pathological myelopoiesis, reduces tumor-promoting neutrophil production, and slows breast tumor growth.

immunology↗

Quantitative molecular cartography of emergency myelopoiesis reveals conserved modules of hematopoietic activation

Hematopoietic stem and progenitor cells (HSPC) respond to infections, inflammation, and regenerative challenges using a collection of cellular and molecular mechanisms termed emergency myelopoiesis (EM) pathways. However, it remains unclear how various EM inducers regulate HSPCs using shared or distinct molecular mechanisms. Here, we generate a comprehensive and generalizable cell annotation method (HemaScribe) and a refined quantitative model of hematopoietic differentiation (HemaScape) using single cell RNA sequencing (scRNA-seq) of HSPCs, which we apply to a broad range of EM modalities. We uncover multiple strategies to enhance myelopoiesis acting at different levels of the HSPC hierarchy, which are associated with both unique and shared transcriptional response modules. In particular, we identify a myeloid progenitor-based module of EM engagement across diverse inflammatory challenges, which informs outcome in adult and pediatric human acute myeloid leukemia. Collectively, our work illuminates fundamental regulatory mechanisms in hematopoietic regeneration that have direct translational applications in disease contexts. HIGHLIGHTSO_LINew HemaScribe method for hematopoietic progenitor annotation in scRNA-seq datasets C_LIO_LIDifferent emergency myelopoiesis (EM) inducers act at distinct hematopoiesis levels C_LIO_LIUnique and shared transcriptional response modules enacted by different EM inducers C_LIO_LIA myeloid progenitor EM module informs outcome in acute myeloid leukemia C_LI eTOC BLURBSwann et al. conduct comparative analysis of single cell RNA sequencing data from multiple emergency myelopoiesis models, finding that different perturbations act at various levels of the hematopoietic hierarchy and recruit distinct sets of molecular mechanisms to enhance myelopoiesis. In particular, they identify a conserved myeloid progenitor-based activation module across multiple disease conditions, which informs outcome in human acute myeloid leukemia. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=199 HEIGHT=200 SRC="FIGDIR/small/656712v2_ufig1.gif" ALT="Figure 1"> View larger version (52K): org.highwire.dtl.DTLVardef@ffcd62org.highwire.dtl.DTLVardef@50eaeorg.highwire.dtl.DTLVardef@6df44org.highwire.dtl.DTLVardef@12bfacf_HPS_FORMAT_FIGEXP M_FIG C_FIG

cell biology↗