HifLICs · Acute Myeloid Leukemia Leukemic Initiating Cells: Contribution of hypoxia/HIF pathway to chemoresistance and relapse
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2019-01-01 → 2020-12-31
- EU contribution
- €158,122
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
Acute Myeloid Leukemia Leukemic Initiating Cells: Contribution of hypoxia/HIF pathway to chemoresistance and relapse
Acute Myeloid Leukemia (AML) is a heterogeneous disease that originates from diverse genetic alterations. It can be classified into different cytogenetic groups with variable prognosis. Unfortunately, treatment of AML has not improved over the last 30 years and cure rates remain low. Experimental data supports the view that relapse is driven by a specific subpopulation of cells, termed leukemia initiating cells (LICs), which are able to escape cytotoxic therapy and ultimately reboot the disease. LICs have unique properties, some of them shared with normal hematopoietic stem cells (HSCs), such as relative quiescence, resistance to apoptosis and increased drug efflux, which makes them more resilient to chemotherapy. The discovery of molecular pathways that specifically support LICs, while challenging, would represent an important advancement in AML biology. With the present project, we study the mechanisms leading to LIC quiescence and to exploit them to sensitize LICs to chemotherapy, in the hope of reducing current relapse rates. Quiescence is partially associated with low oxygen levels (hypoxia) in the bone marrow niche where HSCs/LICs reside. Hypoxia maintains cells in a dormant state as a defense mechanism to prevent their exhaustion. In response to hypoxia, cells activate a specific pathway mediated by Hypoxia Inducible Factors (HIFs), which promote the transcription of many hypoxia-regulated target genes and play a key role in regulating numerous biological processes such as cell proliferation, survival and metabolism. Although the study of HIF inhibition is at its earliest stage, the growing interest for the function of HIF factors in hematological malignancies suggests its important translational value. Therefore, a deeper understanding of the function of HIFs in cells of hematopoietic origin will create a more precise mapping of the complexity of hypoxia signaling in different physiological and pathological conditions. The data obtained during this project was focused to couple the hypoxia transcriptional signature of LICs with their in vivo function in the most prevalent human AML cytogenetic subgroups in order to assess: i) whether the hypoxia/HIF pathway represents a mechanism for LICs to evade chemotherapy and, ii) LIC heterogeneity in the hypoxic niche. Targeting this pathway in LICs would open new avenues in AML treatment, leading to clinical trials testing HIF-targeting compounds.
Data: CORDIS, © European Union
Project objective
Acute myeloid leukemia (AML) is a heterogeneous group of diseases caused by acquired cytogenetic and molecular alterations in hematopoietic progenitor cells. There is a substantial need to develop new therapeutic approaches to AML; however, the genetic heterogeneity of AML constitutes a barrier for the development of targeted therapies. Leukemia relapse after treatment is most often caused by a subgroup of cells commonly referred to as leukemia initiating cells (LICs), which are resistant to chemotherapy. It is thought that this resistance is the result of several properties unique to LICs, including their dormant and metabolically inactive state, making them less susceptible to genotoxic drugs. The localization of the LICs in the hypoxic bone marrow niche has been proposed as a driving factor for dormancy. The HIF (hypoxia-inducible factor) family of transcription factors mediates cellular adaptation to hypoxia. While the role of HIFs in the pathogenesis of solid tumors is quite well established, they have only recently been suggested as key regulators of LICs in specific types of leukemia. Yet, results to date are highly controversial, with some studies supporting an oncogenic activity for HIFs and others pointing to a tumor suppressor role.We propose a broad transcriptional study of human AML classified by cytogenetic criteria and disease stage (diagnosis vs relapse). We will focus on HIF-regulated target genes in the LIC subgroup and evaluate LIC heterogeneity using state-of-the-art single-cell technologies. Our results should extend our understanding of the ability of LICs to survive cytotoxic therapy and help to identify candidate targets for clinical application.The use of AML patient samples and single-cell techniques included in this proposal will increase my scientific knowledge and practical experience. I will also benefit from the complementary planned activities of the action, empowering me to become an independent investigator in the near future.
Original text from CORDIS.
Participants
- FUNDACIO INSTITUT DE RECERCA CONTRA LA LEUCEMIA JOSEP CARRERAS · BadalonaCoordinatorSpain
Links
- View on CORDIS
- DOI: 10.3030/792923
- https://www.carrerasresearch.org/en/Stem_cells_mesenchymal_cancer_and_development
Data: CORDIS, © European Union
