ATP2B1 expression identifies human hematopoietic stem cells with superior repopulation and self-renewal

A Angelica Varesi M Murtaza S. Nagree I Isabella Di Biasio (Princess Margaret Cancer Centre, University Health Network) A Andy G. X. Zeng S Sayyam Shah M Michael Zhang (Department of Astronomy and Astrophysics, University of Chicago, Chicago, IL, USA.) H Hyerin Kim A Alex Murison R Rohail Badami (Princess Margaret Cancer Centre, University Health Network) O Olga Gan (Princess Margaret Cancer Centre, University Health Network) L Liqing Jin J Jessica McLeod S Sheela A. Abraham (Department of Biomedical and Molecular Sciences, Queen’s University) M Mark D. Minden (Princess Margaret Cancer Centre, University Health Network) A Andrea Arruda (Princess Margaret Cancer Centre, University Health Network) I Igor Novitzky-Basso (Princess Margaret Cancer Centre, University Health Network) J Jonas Mattsson (Princess Margaret Cancer Centre, University Health Network) J John E. Dick S Stephanie Z. Xie

Abstract

Long-term hematopoietic stem cells (LT-HSC) maintain lifelong hematopoiesis while preserving the stem cell compartment through self-renewal. The human LT-HSC compartment is molecularly and functionally heterogeneous and also varies across ontogeny. Dissecting the molecular basis for this variation is impeded by the paucity of immunophenotypic markers to resolve LT-HSC heterogeneity. Here, we identified ATPase plasma membrane calcium transporting 1 (ATP2B1/PMCA1) as a cell surface marker that is heterogeneously expressed by CD49f + LT-HSC from fetal to adult hematopoiesis. ATP2B1 immunophenotypic expression stratified human CD49f + LT-HSC from fetal liver, neonatal cord blood, and adult mobilized peripheral blood sources into functionally distinct subpopulations in single-cell (sc) clonogenic assays. CD49f + ATP2B1 + LT-HSC exhibited superior long-term repopulation and self-renewal capacities in vivo compared to CD49f + ATP2B1 – LT-HSC. Molecular profiling by scMultiome and immunofluorescence microscopy point to enrichment of an HSC self-renewal program that includes the TFEB–endolysosomal axis in CD49f + ATP2B1 + LT-HSC. Our study provides a framework to dissect the heterogeneous molecular programs in LT-HSC.

Article Details

Volume / Issue Vol. 123, Issue 19
Published May 12, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (19)

A

Angelica Varesi

M

Murtaza S. Nagree

I

Isabella Di Biasio

Princess Margaret Cancer Centre, University Health Network

A

Andy G. X. Zeng

S

Sayyam Shah

M

Michael Zhang

Department of Astronomy and Astrophysics, University of Chicago, Chicago, IL, USA.

H

Hyerin Kim

A

Alex Murison

R

Rohail Badami

Princess Margaret Cancer Centre, University Health Network

O

Olga Gan

Princess Margaret Cancer Centre, University Health Network

L

Liqing Jin

J

Jessica McLeod

S

Sheela A. Abraham

Department of Biomedical and Molecular Sciences, Queen’s University

M

Mark D. Minden

Princess Margaret Cancer Centre, University Health Network

A

Andrea Arruda

Princess Margaret Cancer Centre, University Health Network

I

Igor Novitzky-Basso

Princess Margaret Cancer Centre, University Health Network

J

Jonas Mattsson

Princess Margaret Cancer Centre, University Health Network

J

John E. Dick

S

Stephanie Z. Xie