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March 29, 2026Cell Death Discovery6 citationsOpen Access

Lactate-mediated NK cell dysfunction as a prognostic marker and therapeutic target in breast cancer

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SISimone IelpoFBFrancesca BarberiniAGAlice Gaiba

Key Points

  • The research aims to understand how lactate accumulation affects the function of NK cells in breast cancer and its potential as a prognostic marker.
  • Analyzed data from 882 breast cancer patients to assess the correlation between lactate metabolism and NK cell activation genes.
  • Cultured NK cells from healthy donors in lactate-rich versus control conditions to evaluate functional impacts.
  • Used flow cytometry, metabolic profiling, and Raman spectroscopy to assess NK cell proliferation and bioenergetics.
  • Conducted functional assays with microfluidic devices to measure chemotaxis and cytotoxicity against breast cancer spheroids.
  • Administered pharmacological inhibitors of lactate transport to evaluate restoration of NK cell cytotoxicity.
  • High lactate levels were linked to reduced NK cell activation in breast cancer patients.
  • Lactate exposure decreased NK cell proliferation and activation markers, impairing their ability to kill cancer cells.
  • Restoring lactate transport improved NK cell function and enhanced tumor cell death in co-culture experiments.
  • GPR81 deletion also increased NK cell activity, supporting lactate's role in their dysfunction.

Abstract

Abstract Lactate is recognized as a crucial signalling molecule within the tumor microenvironment, where it shapes immune responses by modulating various cell populations, including T cells and macrophages. However, its effect on natural killer (NK) cells, key effectors of early antitumor immunity, remains poorly understood. This study investigates how intratumoral lactate accumulation affects NK cell function in breast cancer, a neoplasm characterized by elevated glycolytic flux. An in-silico analysis of 882 breast cancer patients revealed that high lactate metabolism is inversely correlated with NK cell activation genes and is associated with poor prognosis. To corroborate these findings, NK cells from healthy donors were cultured under lactate-rich or control conditions. Lactate exposure impaired NK cell proliferation, downregulated activation markers and cytotoxic molecules, disrupted mitochondrial bioenergetics, and induced lipid accumulation, as demonstrated by flow cytometry, metabolic profiling, and Raman spectroscopy. Functional assays using microfluidic devices and degranulation tests revealed that lactate-exposed NK cells exhibited reduced chemotaxis and diminished cytotoxicity against MCF-7 and MDA-MB-231 breast cancer spheroids, accompanied by decreased CXCL9 and CXCL10 production. Pharmacologic inhibition of lactate transport, via Syrosingopine or MSC-4381 and AZD3965 combination, restored NK cell cytotoxicity in tumor co-cultures, as shown by increased NK cell degranulation, caspase-3/7–mediated tumor apoptosis, and spheroid shrinkage. Finally, GPR81 deletion mirrored these effects, enhancing NK cell activity. These findings identify lactate as a driver of NK cell suppression and highlight lactate transport and receptor targeting as a strategy to enhance NK cell–based immunotherapies in breast cancer and other lactate-rich tumors.

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Cite This Study

Ielpo et al. (2026) studied this question.

synapsesocial.com/papers/69c8c2b8de0f0f753b39d319https://doi.org/10.1038/s41420-026-03063-5
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