Literature DB >> 34239083

The therapeutic implications of immunosuppressive tumor aerobic glycolysis.

Bradley I Reinfeld1, W Kimryn Rathmell1, Tae Kon Kim1, Jeffrey C Rathmell2.   

Abstract

In 2011, Hanahan and Weinberg added "Deregulating Cellular Energetics" and "Avoiding Immune Destruction" to the six previous hallmarks of cancer. Since this seminal paper, there has been a growing consensus that these new hallmarks are not mutually exclusive but rather interdependent. The following review summarizes how founding genetic events for tumorigenesis ultimately increase tumor cell glycolysis, which not only supports the metabolic demands of malignancy but also provides an immunoprotective niche, promoting malignant cell proliferation, maintenance and progression. The mechanisms by which altered metabolism contributes to immune impairment are multifactorial: (1) the metabolic demands of proliferating tumor cells and activated immune cells are similar, thus creating a situation where immune cells may be in competition for key nutrients; (2) the metabolic byproducts of aerobic glycolysis directly inhibit antitumor immunity while promoting a regulatory immune phenotype; and (3) the gene programs associated with the upregulation of glycolysis also result in the generation of immunosuppressive cytokines and metabolites. From this perspective, we shed light on important considerations for the development of new classes of agents targeting cancer metabolism. These types of therapies can impair tumor growth but also pose a significant risk of stifling antitumor immunity.
© 2021. The Author(s), under exclusive licence to CSI and USTC.

Entities:  

Keywords:  cancer; glycolysis; immunology; metabolism

Mesh:

Year:  2021        PMID: 34239083      PMCID: PMC8752729          DOI: 10.1038/s41423-021-00727-3

Source DB:  PubMed          Journal:  Cell Mol Immunol        ISSN: 1672-7681            Impact factor:   11.530


  162 in total

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Authors:  Jose M Orozco; Patrycja A Krawczyk; Sonia M Scaria; Andrew L Cangelosi; Sze Ham Chan; Tenzin Kunchok; Caroline A Lewis; David M Sabatini
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Review 5.  Ionic Regulation of T-Cell Function and Anti-Tumour Immunity.

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  5 in total

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