Quantitative proteomics reveals specific metabolic features of acute myeloid leukemia stem cells

Author:

Raffel Simon1234ORCID,Klimmeck Daniel123,Falcone Mattia123ORCID,Demir Aykut4ORCID,Pouya Alireza4ORCID,Zeisberger Petra123,Lutz Christoph5,Tinelli Marco6,Bischel Oliver7,Bullinger Lars89,Thiede Christian10,Flörcken Anne9,Westermann Jörg9,Ehninger Gerhard10,Ho Anthony D.4,Müller-Tidow Carsten4ORCID,Gu Zuguang11,Herrmann Carl1213ORCID,Krijgsveld Jeroen141516ORCID,Trumpp Andreas12317ORCID,Hansson Jenny1418ORCID

Affiliation:

1. Heidelberg Institute for Stem Cell Technology and Experimental Medicine (HI-STEM) GmbH, Heidelberg, Germany;

2. Division of Stem Cells and Cancer, German Cancer Research Center (DKFZ), Heidelberg, Germany;

3. DKFZ Center for Molecular Biology Heidelberg (DKFZ–ZMBH) Alliance, Heidelberg, Germany;

4. Department of Internal Medicine V, Heidelberg University Hospital, Heidelberg, Germany;

5. Praxis für Hämatologie und Onkologie, Koblenz, Germany;

6. Department of Orthopaedics and Trauma Surgery, Sinsheim Hospital, Sinsheim, Germany;

7. BG Trauma Center Ludwigshafen at Heidelberg University Hospital, Ludwigshafen, Germany;

8. Department of Internal Medicine III, University Hospital of Ulm, Ulm, Germany;

9. Department of Hematology, Oncology and Tumorimmunology, Charité University Medicine, Berlin, Germany;

10. Medical Department 1, University Hospital Carl Gustav Carus, Dresden, Germany;

11. Division of Theoretical Bioinformatics, DKFZ, Heidelberg, Germany;

12. Health Data Science Unit, Medical Faculty Heidelberg, and

13. Bioquant Center, University of Heidelberg, Heidelberg, Germany;

14. Genome Biology Unit, European Molecular Biology Laboratory (EMBL), Heidelberg, Germany;

15. Division of Proteomics of Stem Cells and Cancer, DKFZ, Heidelberg, Germany;

16. Medical Faculty, Heidelberg University, Heidelberg, Germany;

17. German Cancer Consortium (DKTK); and

18. Lund Stem Cell Center, Division of Molecular Hematology, Lund University, Lund, Sweden

Abstract

Abstract Acute myeloid leukemia is characterized by the accumulation of clonal myeloid blast cells unable to differentiate into mature leukocytes. Chemotherapy induces remission in the majority of patients, but relapse rates are high and lead to poor clinical outcomes. Because this is primarily caused by chemotherapy-resistant leukemic stem cells (LSCs), it is essential to eradicate LSCs to improve patient survival. LSCs have predominantly been studied at the transcript level, thus information about posttranscriptionally regulated genes and associated networks is lacking. Here, we extend our previous report on LSC proteomes to healthy age-matched hematopoietic stem and progenitor cells (HSPCs) and correlate the proteomes to the corresponding transcriptomes. By comparing LSCs to leukemic blasts and healthy HSPCs, we validate candidate LSC markers and highlight novel and potentially targetable proteins that are absent or only lowly expressed in HSPCs. In addition, our data provide strong evidence that LSCs harbor a characteristic energy metabolism, adhesion molecule composition, as well as RNA-processing properties. Furthermore, correlating proteome and transcript data of the same individual samples highlights the strength of proteome analyses, which are particularly potent in detecting alterations in metabolic pathways. In summary, our study provides a comprehensive proteomic and transcriptomic characterization of functionally validated LSCs, blasts, and healthy HSPCs, representing a valuable resource helping to design LSC-directed therapies.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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