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Non-genetic determinants of malignant clonal fitness at single-cell resolution

Author

Listed:
  • Katie A. Fennell

    (Peter MacCallum Cancer Centre
    The University of Melbourne)

  • Dane Vassiliadis

    (Peter MacCallum Cancer Centre
    The University of Melbourne)

  • Enid Y. N. Lam

    (Peter MacCallum Cancer Centre
    The University of Melbourne)

  • Luciano G. Martelotto

    (The University of Melbourne)

  • Jesse J. Balic

    (Peter MacCallum Cancer Centre)

  • Sebastian Hollizeck

    (Peter MacCallum Cancer Centre
    The University of Melbourne)

  • Tom S. Weber

    (The Walter and Eliza Hall Institute of Medical Research
    The University of Melbourne)

  • Timothy Semple

    (Peter MacCallum Cancer Centre
    The University of Melbourne)

  • Qing Wang

    (Victor Chang Cardiac Research Institute)

  • Denise C. Miles

    (The Walter and Eliza Hall Institute of Medical Research
    The University of Melbourne)

  • Laura MacPherson

    (Peter MacCallum Cancer Centre
    The University of Melbourne)

  • Yih-Chih Chan

    (Peter MacCallum Cancer Centre
    The University of Melbourne)

  • Andrew A. Guirguis

    (Peter MacCallum Cancer Centre
    The University of Melbourne)

  • Lev M. Kats

    (Peter MacCallum Cancer Centre
    The University of Melbourne)

  • Emily S. Wong

    (Victor Chang Cardiac Research Institute
    UNSW)

  • Sarah-Jane Dawson

    (Peter MacCallum Cancer Centre
    The University of Melbourne
    The University of Melbourne)

  • Shalin H. Naik

    (The Walter and Eliza Hall Institute of Medical Research
    The University of Melbourne)

  • Mark A. Dawson

    (Peter MacCallum Cancer Centre
    The University of Melbourne
    The University of Melbourne)

Abstract

All cancers emerge after a period of clonal selection and subsequent clonal expansion. Although the evolutionary principles imparted by genetic intratumour heterogeneity are becoming increasingly clear1, little is known about the non-genetic mechanisms that contribute to intratumour heterogeneity and malignant clonal fitness2. Here, using single-cell profiling and lineage tracing (SPLINTR)—an expressed barcoding strategy—we trace isogenic clones in three clinically relevant mouse models of acute myeloid leukaemia. We find that malignant clonal dominance is a cell-intrinsic and heritable property that is facilitated by the repression of antigen presentation and increased expression of the secretory leukocyte peptidase inhibitor gene (Slpi), which we genetically validate as a regulator of acute myeloid leukaemia. Increased transcriptional heterogeneity is a feature that enables clonal fitness in diverse tissues and immune microenvironments and in the context of clonal competition between genetically distinct clones. Similar to haematopoietic stem cells3, leukaemia stem cells (LSCs) display heritable clone-intrinsic properties of high, and low clonal output that contribute to the overall tumour mass. We demonstrate that LSC clonal output dictates sensitivity to chemotherapy and, although high- and low-output clones adapt differently to therapeutic pressure, they coordinately emerge from minimal residual disease with increased expression of the LSC program. Together, these data provide fundamental insights into the non-genetic transcriptional processes that underpin malignant clonal fitness and may inform future therapeutic strategies.

Suggested Citation

  • Katie A. Fennell & Dane Vassiliadis & Enid Y. N. Lam & Luciano G. Martelotto & Jesse J. Balic & Sebastian Hollizeck & Tom S. Weber & Timothy Semple & Qing Wang & Denise C. Miles & Laura MacPherson & Y, 2022. "Non-genetic determinants of malignant clonal fitness at single-cell resolution," Nature, Nature, vol. 601(7891), pages 125-131, January.
  • Handle: RePEc:nat:nature:v:601:y:2022:i:7891:d:10.1038_s41586-021-04206-7
    DOI: 10.1038/s41586-021-04206-7
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