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Updated: May 8, 2026

Assessment of the Metabolic Profile of Primary Leukemia Cells
Published on: November 21, 2018
Emerging metabolic targets in the therapy of hematological malignancies
Zaira Leni1, Geetha Parakkal, Alexandre Arcaro
1University of Bern, Department of Clinical Research, Division of Pediatric Hematology/Oncology, Murtenstrasse 31, 3010 Bern, Switzerland.
Abstract:
During the last decade, the development of anticancer therapies has focused on targeting neoplastic-related metabolism. Cancer cells display a variety of changes in their metabolism, which enable them to satisfy the high bioenergetic and biosynthetic demands for rapid cell division. One of the crucial alterations is referred to as the "Warburg effect", which involves a metabolic shift from oxidative phosphorylation towards the less efficient glycolysis, independent of the presence of oxygen. Although there are many examples of solid tumors having altered metabolism with high rates of glucose uptake and glycolysis, it was only recently reported that this phenomenon occurs in hematological malignancies. This review presents evidence that targeting the glycolytic pathway at different levels in hematological malignancies can inhibit cancer cell proliferation by restoring normal metabolic conditions. However, to achieve cancer regression, high concentrations of glycolytic inhibitors are used due to limited solubility and biodistribution, which may result in toxicity. Besides using these inhibitors as monotherapies, combinatorial approaches using standard chemotherapeutic agents could display enhanced efficacy at eradicating malignant cells. The identification of the metabolic enzymes critical for hematological cancer cell proliferation and survival appears to be an interesting new approach for the targeted therapy of hematological malignancies.
Insights
Targeting cancer cell metabolism, specifically the Warburg effect in glycolysis, shows promise for treating hematological malignancies. Combining glycolytic inhibitors with chemotherapy may improve efficacy and reduce toxicity.
Area of Science:
- Oncology
- Cancer Metabolism
- Hematological Malignancies
Background:
- Cancer cells exhibit altered metabolism to support rapid proliferation.
- The Warburg effect, a shift towards glycolysis, is a key metabolic adaptation.
- This metabolic reprogramming is now recognized in hematological malignancies.
Purpose of the Study:
- To review the evidence for targeting the glycolytic pathway in hematological cancers.
- To discuss the potential of metabolic inhibitors as targeted therapies.
- To explore combination strategies for enhanced efficacy.
Main Methods:
- Literature review of studies on cancer metabolism and hematological malignancies.
- Analysis of the role of the glycolytic pathway in cancer cell survival.
- Evaluation of therapeutic strategies targeting metabolic enzymes.
Main Results:
- Targeting glycolysis can inhibit proliferation in hematological malignancies.
- High inhibitor concentrations are often needed, leading to potential toxicity.
- Combinatorial approaches may enhance therapeutic outcomes.
Conclusions:
- Targeting cancer-related metabolism, particularly glycolysis, is a viable strategy for hematological malignancies.
- Developing novel glycolytic inhibitors with improved properties is crucial.
- Combination therapies hold significant potential for eradicating malignant cells.
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