Rac2-MRC-cIII–generated ROS cause genomic instability in chronic myeloid leukemia stem cells and primitive progenitors

Author:

Nieborowska-Skorska Margaret1,Kopinski Piotr K.1,Ray Regina1,Hoser Grazyna2,Ngaba Danielle1,Flis Sylwia1,Cramer Kimberly1,Reddy Mamatha M.3,Koptyra Mateusz1,Penserga Tyrone1,Glodkowska-Mrowka Eliza4,Bolton Elisabeth1,Holyoake Tessa L.5,Eaves Connie J.6,Cerny-Reiterer Sabine7,Valent Peter7,Hochhaus Andreas8,Hughes Timothy P.9,van der Kuip Heiko10,Sattler Martin3,Wiktor-Jedrzejczak Wieslaw11,Richardson Christine12,Dorrance Adrienne13,Stoklosa Tomasz4,Williams David A.13,Skorski Tomasz1

Affiliation:

1. Department of Microbiology and Immunology, Temple University School of Medicine, Philadelphia, PA;

2. Department of Clinical Cytology, Medical Center for Postgraduate Education, Warsaw, Poland;

3. Department of Medical Oncology, Dana-Farber Cancer Institute, Boston, MA;

4. Department of Immunology, Medical University of Warsaw, Warsaw, Poland;

5. Paul O'Gorman Leukemia Research Centre, University of Glasgow, Glasgow, United Kingdom;

6. Terry Fox Laboratory, British Columbia Cancer Agency, Vancouver, BC;

7. Department of Internal Medicine I, Division of Hematology and Hemostaseology, Medical University of Vienna and Ludwig-Boltzmann Oncology Cluster, Vienna, Austria;

8. Department of Hematology/Oncology, Jena University Hospital, Jena, Germany;

9. Department of Hematology and Centre for Cancer Biology, University of Adelaide School of Medicine, Adelaide, Australia;

10. Dr Margarete Fischer-Bosch Institute of Clinical Pharmacology and University of Tuebingen, Stuttgart, Germany;

11. Department of Hematology, Oncology and Internal Diseases, Medical University of Warsaw, Warsaw, Poland;

12. Department of Biology and Center of Bioinformatics, University of North Carolina at Charlotte, Charlotte, NC; and

13. Division of Hematology/Oncology, Children's Hospital Boston, Dana-Farber Cancer Institute, Harvard Medical School, Harvard Stem Cell Institute, Boston, MA

Abstract

Abstract Chronic myeloid leukemia in chronic phase (CML-CP) is induced by BCR-ABL1 oncogenic tyrosine kinase. Tyrosine kinase inhibitors eliminate the bulk of CML-CP cells, but fail to eradicate leukemia stem cells (LSCs) and leukemia progenitor cells (LPCs) displaying innate and acquired resistance, respectively. These cells may accumulate genomic instability, leading to disease relapse and/or malignant progression to a fatal blast phase. In the present study, we show that Rac2 GTPase alters mitochondrial membrane potential and electron flow through the mitochondrial respiratory chain complex III (MRC-cIII), thereby generating high levels of reactive oxygen species (ROS) in CML-CP LSCs and primitive LPCs. MRC-cIII–generated ROS promote oxidative DNA damage to trigger genomic instability, resulting in an accumulation of chromosomal aberrations and tyrosine kinase inhibitor–resistant BCR-ABL1 mutants. JAK2(V617F) and FLT3(ITD)–positive polycythemia vera cells and acute myeloid leukemia cells also produce ROS via MRC-cIII. In the present study, inhibition of Rac2 by genetic deletion or a small-molecule inhibitor and down-regulation of mitochondrial ROS by disruption of MRC-cIII, expression of mitochondria-targeted catalase, or addition of ROS-scavenging mitochondria-targeted peptide aptamer reduced genomic instability. We postulate that the Rac2-MRC-cIII pathway triggers ROS-mediated genomic instability in LSCs and primitive LPCs, which could be targeted to prevent the relapse and malignant progression of CML.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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