<p>Monocyte-derived macrophages (mo-macs) often drive immunosuppression in the tumour microenvironment (TME)<sup><CitationRef CitationID="CR1">1</CitationRef></sup> and tumour-enhanced myelopoiesis in the bone marrow fuels these populations<sup><CitationRef CitationID="CR2">2</CitationRef></sup>. Here we performed paired transcriptome and chromatin accessibility analysis over the continuum of myeloid progenitors, circulating monocytes and tumour-infiltrating mo-macs in mice and in patients with lung cancer to identify myeloid progenitor programs that fuel pro-tumorigenic mo-macs. We show that lung tumours prime accessibility for <i>Nfe2l2</i> (NRF2) in bone marrow myeloid progenitors as a cytoprotective response to oxidative stress, enhancing myelopoiesis while dampening interferon response and promoting immunosuppression. NRF2 activity is amplified during monocyte differentiation into mo-macs in the TME to regulate stress and drive immunosuppressive phenotype. NRF2 genetic deletion and pharmacological inhibition significantly reduced the survival and immunosuppression of mo-macs in the TME, restoring natural killer and T cell anti-tumour immunity and enhancing checkpoint blockade efficacy. Our findings identify a targetable epigenetic node of myeloid progenitor dysregulation that sustains immunoregulatory mo-macs in the lung TME and highlight the potential of early interventions to reprogram macrophage fate for improved immunotherapy outcomes.</p>

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Myeloid progenitor dysregulation fuels immunosuppressive macrophages in tumours

  • Samarth Hegde,
  • Bruno Giotti,
  • Brian Y. Soong,
  • Laszlo Halasz,
  • Jessica Le Berichel,
  • Maximilian M. Schaefer,
  • Benoit Kloeckner,
  • Raphaël Mattiuz,
  • Matthew D. Park,
  • Assaf Magen,
  • Adam Marks,
  • Meriem Belabed,
  • Pauline Hamon,
  • Theodore Chin,
  • Leanna Troncoso,
  • Juliana J. Lee,
  • Kaili Fan,
  • Dughan Ahimovic,
  • Michael J. Bale,
  • Kai Nie,
  • Grace Chung,
  • Darwin D’souza,
  • Krista Angeliadis,
  • Seunghee Kim-Schulze,
  • Raja M. Flores,
  • Andrew J. Kaufman,
  • Florent Ginhoux,
  • Jason D. Buenrostro,
  • Steven Z. Josefowicz,
  • Alexander M. Tsankov,
  • Thomas U. Marron,
  • Sai Ma,
  • Brian D. Brown,
  • Miriam Merad

摘要

Monocyte-derived macrophages (mo-macs) often drive immunosuppression in the tumour microenvironment (TME)1 and tumour-enhanced myelopoiesis in the bone marrow fuels these populations2. Here we performed paired transcriptome and chromatin accessibility analysis over the continuum of myeloid progenitors, circulating monocytes and tumour-infiltrating mo-macs in mice and in patients with lung cancer to identify myeloid progenitor programs that fuel pro-tumorigenic mo-macs. We show that lung tumours prime accessibility for Nfe2l2 (NRF2) in bone marrow myeloid progenitors as a cytoprotective response to oxidative stress, enhancing myelopoiesis while dampening interferon response and promoting immunosuppression. NRF2 activity is amplified during monocyte differentiation into mo-macs in the TME to regulate stress and drive immunosuppressive phenotype. NRF2 genetic deletion and pharmacological inhibition significantly reduced the survival and immunosuppression of mo-macs in the TME, restoring natural killer and T cell anti-tumour immunity and enhancing checkpoint blockade efficacy. Our findings identify a targetable epigenetic node of myeloid progenitor dysregulation that sustains immunoregulatory mo-macs in the lung TME and highlight the potential of early interventions to reprogram macrophage fate for improved immunotherapy outcomes.