Targeting the bicarbonate transporter SLC4A4 overcomes immunosuppression and immunotherapy resistance in pancreatic cancer.
Federica CappellessoMarie-Pauline OrbanNiranjan ShirgaonkarEmanuele BerardiJens SerneelsMarie-Aline NeveuDaria Di MolfettaFrancesca PiccapaneRosa CaroppoLucantonio DebellisTessa OstynNicolas JoudiouLionel MignionElena RichiardoneBénédicte F JordanBernard GallezCyril CorbetTania RoskamsRamanuj DasGuptaSabine TejparMario Di MatteoDaniela TavernaStephan Joel ReshkinBaki TopalFederico VirgaMassimilliano MazzonePublished in: Nature cancer (2022)
Solid tumors are generally characterized by an acidic tumor microenvironment (TME) that favors cancer progression, therapy resistance and immune evasion. By single-cell RNA-sequencing analysis in individuals with pancreatic ductal adenocarcinoma (PDAC), we reveal solute carrier family 4 member 4 (SLC4A4) as the most abundant bicarbonate transporter, predominantly expressed by epithelial ductal cells. Functionally, SLC4A4 inhibition in PDAC cancer cells mitigates the acidosis of the TME due to bicarbonate accumulation in the extracellular space and a decrease in lactate production by cancer cells as the result of reduced glycolysis. In PDAC-bearing mice, genetic or pharmacological SLC4A4 targeting improves T cell-mediated immune response and breaches macrophage-mediated immunosuppression, thus inhibiting tumor growth and metastases. In addition, Slc4a4 targeting in combination with immune checkpoint blockade is able to overcome immunotherapy resistance and prolong survival. Overall, our data propose SLC4A4 as a therapeutic target to unleash an antitumor immune response in PDAC.
Keyphrases
- single cell
- immune response
- cancer therapy
- rna seq
- induced apoptosis
- high throughput
- signaling pathway
- dendritic cells
- toll like receptor
- papillary thyroid
- cell cycle arrest
- stem cells
- gene expression
- cell proliferation
- mesenchymal stem cells
- big data
- cell death
- squamous cell carcinoma
- inflammatory response
- machine learning
- data analysis
- metabolic syndrome
- skeletal muscle
- high fat diet induced
- radiation therapy
- artificial intelligence
- copy number
- african american
- radiation induced
- wild type