Metabolic Strategies for Inhibiting Cancer Development

Author:

Icard Philippe123,Loi Mauro4,Wu Zherui56,Ginguay Antonin78,Lincet Hubert910,Robin Edouard3,Coquerel Antoine11,Berzan Diana3,Fournel Ludovic36,Alifano Marco312

Affiliation:

1. Université Caen Normandie, Medical School, CHU de Caen, Caen, France

2. Normandie Université, UNICAEN, INSERM U1086, Interdisciplinary Research Unit for Cancer Prevention and Treatment, Centre de Lutte Contre le Cancer Centre François Baclesse, Caen, France

3. Service de Chirurgie Thoracique, Hôpital Cochin, Hôpitaux Universitaires Paris Centre, AP-HP, Paris-Descartes University, Paris, France

4. Radiotherapy Department, Humanitas Cancer Center, Rozzano, Milan, Italy

5. School of Medicine, Shenzhen University, Shenzhen, Guangdong, China

6. INSERM UMR-S 1124, Cellular Homeostasis and Cancer, Paris-Descartes University, Paris, France

7. Service de Biochimie, Hôpital Cochin, Hôpitaux Universitaires Paris-Centre, AP-HP, Paris, France

8. EA4466 Laboratoire de Biologie de la Nutrition, Faculté de Pharmacie de Paris, Université Paris-Descartes, Sorbonne Paris Cité, Paris, France

9. INSERM U1052, CNRS UMR5286, Cancer Research Center of Lyon (CRCL), France

10. ISPB, Faculté de Pharmacie, Université Lyon 1, Lyon, France

11. INSERM U1075, Comete “Mobilités: Attention, Orientation, Chronobiologie”, Université Caen, Caen, France

12. INSERM U1138, Integrative Cancer Immunology, Paris, France

Abstract

ABSTRACT The tumor microenvironment is a complex mix of cancerous and noncancerous cells (especially immune cells and fibroblasts) with distinct metabolisms. These cells interact with each other and are influenced by the metabolic disorders of the host. In this review, we discuss how metabolic pathways that sustain biosynthesis in cancer cells could be targeted to increase the effectiveness of cancer therapies by limiting the nutrient uptake of the cell, inactivating metabolic enzymes (key regulatory ones or those linked to cell cycle progression), and inhibiting ATP production to induce cell death. Furthermore, we describe how the microenvironment could be targeted to activate the immune response by redirecting nutrients toward cytotoxic immune cells or inhibiting the release of waste products by cancer cells that stimulate immunosuppressive cells. We also examine metabolic disorders in the host that could be targeted to inhibit cancer development. To create future personalized therapies for targeting each cancer tumor, novel techniques must be developed, such as new tracers for positron emission tomography/computed tomography scan and immunohistochemical markers to characterize the metabolic phenotype of cancer cells and their microenvironment. Pending personalized strategies that specifically target all metabolic components of cancer development in a patient, simple metabolic interventions could be tested in clinical trials in combination with standard cancer therapies, such as short cycles of fasting or the administration of sodium citrate or weakly toxic compounds (such as curcumin, metformin, lipoic acid) that target autophagy and biosynthetic or signaling pathways.

Publisher

Oxford University Press (OUP)

Subject

Nutrition and Dietetics,Medicine (miscellaneous),Food Science

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