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Updated: Feb 3, 2026

Analysis of Human Natural Killer Cell Metabolism
Published on: June 22, 2020
Translating the anti-myeloma activity of Natural Killer cells into clinical application
Cinzia Fionda1, Helena Stabile1, Rosa Molfetta1
1Department of Molecular Medicine, Sapienza University of Rome, Laboratory affiliated to Istituto Pasteur Italia - Fondazione Cenci Bolognetti, Rome, Italy.
Abstract:
Natural Killer cells (NK) are innate effector cells with a critical role in immunosurveillance against different kinds of cancer cells, including Multiple Myeloma (MM). However, the number and/or function of these lymphocytes are strongly reduced during MM progression and in advanced clinical stages. A better understanding of the mechanisms controlling both MM and NK cell biology have greatly contributed to develop novel and combined therapeutic strategies in the treatment of this incurable hematologic malignancy. These include approaches to reverse the immunosuppressive MM microenvironment or potentiate the natural or antibody-dependent cellular cytotoxicity (ADCC) of NK cells. Moreover, chemotherapeutic drugs or specific monoclonal antibodies (mAbs) can render cancer cells more susceptible to NK cell-mediated recognition and lysis; direct enhancement of NK cell function can be obtained by means of immunomodulatory drugs, cytokines and blocking mAbs targeting NK cell inhibitory receptors. Finally, adoptive transfer of ex-vivo expanded and genetically manipulated NK cells is also a promising therapeutic tool for MM. Here, we review current knowledge on complex mechanisms affecting NK cell activity during MM progression. We also discuss recent advances on innovative approaches aimed at boosting the functions of these cytotoxic innate lymphocytes. In particular, we focus our attention on recent preclinical and clinical studies addressing the therapeutic potential of different NK cell-based strategies for the management of MM.
Insights
Natural Killer (NK) cells are crucial for fighting Multiple Myeloma (MM), but their function declines in MM patients. This review explores strategies to enhance NK cell activity for improved MM treatment.
Area of Science:
- Immunology
- Hematology
- Oncology
Background:
- Natural Killer (NK) cells are vital for immunosurveillance against cancers like Multiple Myeloma (MM).
- NK cell number and function are often impaired during MM progression, limiting their anti-tumor efficacy.
- Understanding MM and NK cell interactions is key to developing new therapies.
Purpose of the Study:
- To review the mechanisms affecting NK cell activity in the context of MM.
- To discuss novel therapeutic strategies aimed at boosting NK cell functions against MM.
- To highlight recent preclinical and clinical studies on NK cell-based MM therapies.
Main Methods:
- Literature review of current knowledge on NK cell biology in MM.
- Analysis of therapeutic approaches targeting the MM microenvironment and NK cell function.
- Examination of studies on adoptive NK cell transfer and immunomodulatory treatments.
Main Results:
- MM progression significantly reduces NK cell number and/or function.
- Various strategies exist to enhance NK cell cytotoxicity, including reversing immunosuppression and using immunomodulatory drugs.
- Monoclonal antibodies and adoptive NK cell transfer show promise in preclinical and clinical MM studies.
Conclusions:
- NK cell-based strategies offer promising therapeutic avenues for Multiple Myeloma.
- Targeting NK cell function and the tumor microenvironment can overcome MM-induced immune suppression.
- Further research and clinical trials are essential to optimize these innovative NK cell-based treatments for MM.
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