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In Vitro Tumor Cell Rechallenge For Predictive Evaluation of Chimeric Antigen Receptor T Cell Antitumor Function
Published on: February 27, 2019
Systematic Interrogation of Tumor Cell Resistance to Chimeric Antigen Receptor T-cell Therapy in Pancreatic Cancer
Kimberly R Hagel1,2, Rand Arafeh1,2, Sydney Gang1
1Dana-Farber Cancer Institute and Harvard Medical School, Boston, Massachusetts.
Abstract:
Chimeric antigen receptor (CAR) T-cell therapy can lead to dramatic clinical responses in B-cell malignancies. However, early clinical trials with CAR T-cell therapy in non-B-cell malignancies have been disappointing to date, suggesting that tumor-intrinsic features contribute to resistance. To investigate tumor-intrinsic modes of resistance, we performed genome scale CRISPR-Cas9 screens in mesothelin (MSLN)-expressing pancreatic cancer cells. Co-culture with MSLN-targeting CAR T cells identified both antigen-dependent and antigen-independent modes of resistance. In particular, loss of the majority of the genes involved in the pathway responsible for GPI-anchor biosynthesis and attachment abrogated the ability of CAR T cells to target pancreatic cancer cells, suggesting that disruption of this pathway may permit MSLN CAR T-cell evasion in the clinic. Antigen-independent mediators of CAR T-cell response included members of the death receptor pathway as well as genes that regulate tumor transcriptional responses, including TFAP4 and INTS12. TFAP4-mediated CAR T resistance depended on the NFκB transcription factor p65, indicating that tumor resistance to CAR T-cell therapy likely involves alterations in tumor-intrinsic states. Overall, this study uncovers multiple antigen-dependent and -independent mechanisms of CAR T-cell evasion by pancreatic cancer, paving the way for overcoming resistance in this disease that is notoriously refractory to immunotherapy.
Significance:
The identification and validation of key determinants of CAR T-cell response in pancreatic cancer provide insights into the landscape of tumor cell intrinsic resistance mechanisms and into approaches to improve therapeutic efficacy.
Insights
Chimeric antigen receptor (CAR) T-cell therapy faces resistance in pancreatic cancer. This study reveals GPI anchor biosynthesis and TFAP4 as key resistance mechanisms, offering new strategies to improve CAR T-cell efficacy.
Area of Science:
- Immunology
- Oncology
- Genetics
Background:
- Chimeric antigen receptor (CAR) T-cell therapy shows promise in B-cell cancers but faces challenges in non-B-cell malignancies like pancreatic cancer.
- Tumor-intrinsic factors are suspected contributors to CAR T-cell therapy resistance in pancreatic ductal adenocarcinoma.
Purpose of the Study:
- To investigate tumor-intrinsic mechanisms of resistance to CAR T-cell therapy in pancreatic cancer.
- To identify novel targets for overcoming CAR T-cell resistance in pancreatic cancer.
Main Methods:
- Genome-scale CRISPR-Cas9 screens were employed in mesothelin-expressing pancreatic cancer cells.
- Co-culture assays with mesothelin-targeting CAR T cells were used to identify resistance mediators.
Main Results:
- Loss of genes in the GPI-anchor biosynthesis pathway abrogated CAR T-cell targeting, indicating a novel antigen-dependent resistance mechanism.
- Antigen-independent resistance involved the death receptor pathway and transcriptional regulators TFAP4 and INTS12.
- TFAP4-mediated resistance was dependent on the NFκB transcription factor p65.
Conclusions:
- Pancreatic cancer employs multiple antigen-dependent and -independent mechanisms to evade CAR T-cell therapy.
- Disruption of GPI-anchor biosynthesis and targeting TFAP4 present potential therapeutic strategies to enhance CAR T-cell efficacy in pancreatic cancer.
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