CUX1 restrains latent hematopoietic stem cell plasticity by suppressing stem cell–intrinsic inflammatory pathways

T Tanner C. Martinez (1Medical Scientist Training Program, The University of Chicago, Chicago, IL) M Matthew R. M. Jotte (1Medical Scientist Training Program, The University of Chicago, Chicago, IL) S Saira Khan A Angela Stoddart (2Department of Pathology, The University of Chicago, Chicago, IL) H Hunter Blaylock (2Department of Pathology, The University of Chicago, Chicago, IL) A Ankit Malik (Department of Electrical Engineering, University of South Carolina 1 , Columbia, South Carolina 29208,) M Megan E. McNerney (2Department of Pathology, The University of Chicago, Chicago, IL)

Abstract

Abstract Long-term maintenance of somatic stem cells relies on precise regulation of self-renewal and differentiation. Understanding the molecular framework for these homeostatic processes is essential for improved cellular therapies and treatment of myeloid neoplasms. CUX1 is a widely expressed, dosage-sensitive transcription factor crucial for development and frequently deleted in myeloid neoplasia in the context of –7/(del7q). Here, using novel mouse models and single-cell approaches, we report that dynamic and distinct CUX1 levels are integral to hematopoietic stem cell (HSC) activity. Knockdown of CUX1 reverses HSC differentiation and strikingly reendows progenitors with stem cell function, accompanied by restoration of the HSC transcriptome and DNA accessibility landscape. CUX1 mediates these activities, in part, via suppressing endogenous retroelements (EREs) and the ensuing interferon-stimulated gene expression program. Both EREs and the interferon response are upregulated in CUX1-deficient acute myeloid leukemia, suggesting a conserved role of CUX1 in regulating these elements. These data establish an unexpected entwinement between stem cell–intrinsic innate immune activation and the transcriptional programs of stem cell identity. Furthermore, we reveal the profound effects of transcription factor levels in cell fate.

Article Details

Journal Blood
Volume / Issue Vol. 146, Issue 24
Published December 11, 2025
Pages 2914-2930
ISSN 0006-4971
Publisher Elsevier BV

Journal Info

Blood

Elsevier BV

ISSN: 0006-4971 Health Sciences

Authors (7)

T

Tanner C. Martinez

1Medical Scientist Training Program, The University of Chicago, Chicago, IL

M

Matthew R. M. Jotte

1Medical Scientist Training Program, The University of Chicago, Chicago, IL

S

Saira Khan

A

Angela Stoddart

2Department of Pathology, The University of Chicago, Chicago, IL

H

Hunter Blaylock

2Department of Pathology, The University of Chicago, Chicago, IL

A

Ankit Malik

Department of Electrical Engineering, University of South Carolina 1 , Columbia, South Carolina 29208,

M

Megan E. McNerney

2Department of Pathology, The University of Chicago, Chicago, IL