Addressing Natural Killer Cell Dysfunction and Plasticity in Cell-Based Cancer Therapeutics.
Kassandra M CoyleLindsey G HawkeMark L OrmistonPublished in: Cancers (2023)
Natural killer (NK) cells are cytotoxic group 1 innate lymphoid cells (ILC), known for their role as killers of stressed, cancerous, and virally infected cells. Beyond this cytotoxic function, NK cell subsets can influence broader immune responses through cytokine production and have been linked to central roles in non-immune processes, such as the regulation of vascular remodeling in pregnancy and cancer. Attempts to exploit the anti-tumor functions of NK cells have driven the development of various NK cell-based therapies, which have shown promise in both pre-clinical disease models and early clinical trials. However, certain elements of the tumor microenvironment, such as elevated transforming growth factor (TGF)-β, hypoxia, and indoalemine-2,3-dioxygenase (IDO), are known to suppress NK cell function, potentially limiting the longevity and activity of these approaches. Recent studies have also identified these factors as contributors to NK cell plasticity, defined by the conversion of classical cytotoxic NK cells into poorly cytotoxic, tissue-resident, or ILC1-like phenotypes. This review summarizes the current approaches for NK cell-based cancer therapies and examines the challenges presented by tumor-linked NK cell suppression and plasticity. Ongoing efforts to overcome these challenges are discussed, along with the potential utility of NK cell therapies to applications outside cancer.
Keyphrases
- nk cells
- papillary thyroid
- transforming growth factor
- induced apoptosis
- clinical trial
- immune response
- squamous cell
- epithelial mesenchymal transition
- randomized controlled trial
- machine learning
- oxidative stress
- squamous cell carcinoma
- quality improvement
- cell cycle arrest
- small molecule
- endothelial cells
- endoplasmic reticulum stress
- childhood cancer
- mesenchymal stem cells
- stem cells
- patient safety
- peripheral blood
- climate change
- pregnant women
- anti inflammatory
- dendritic cells