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Published on: January 19, 2019
A novel model of controlling PD-L1 expression in ALK+ anaplastic large cell lymphoma revealed by CRISPR screening
Jing-Ping Zhang1,2, Zhihui Song1, Hong-Bo Wang1
1Blood Cell Development and Function Program, Fox Chase Cancer Center, Philadelphia, PA.
Abstract:
The success of programmed cell death protein 1 (PD-1)/PD-L1-based immunotherapy highlights the critical role played by PD-L1 in cancer progression and reveals an urgent need to develop new approaches to attenuate PD-L1 function by gaining insight into how its expression is controlled. Anaplastic lymphoma kinase (ALK)-positive anaplastic large-cell lymphoma (ALK+ ALCL) expresses a high level of PD-L1 as a result of the constitutive activation of multiple oncogenic signaling pathways downstream of ALK activity, making it an excellent model in which to define the signaling processes responsible for PD-L1 upregulation in tumor cells. Here, using clustered regularly interspaced short palindromic repeats (CRISPR)/Cas9 library screening, we sought a comprehensive understanding of the molecular effectors required for PD-L1 regulation in ALK+ ALCL. Indeed, we determined that PD-L1 induction is dependent on the nucleophosmin-ALK oncoprotein activation of STAT3, as well as a signalosome containing GRB2/SOS1, which activates the MEK-ERK and PI3K-AKT signaling pathways. These signaling networks, through STAT3 and the GRB2/SOS1, ultimately induce PD-L1 expression through the action of transcription factors IRF4 and BATF3 on the enhancer region of the PD-L1 gene. IRF4 and BATF3 are essential for PD-L1 upregulation, and IRF4 expression is correlated with PD-L1 levels in primary ALK+ ALCL tissues. Targeting this oncogenic signaling pathway in ALK+ ALCL largely inhibited the ability of PD-L1-mediated tumor immune escape when cocultured with PD-1-positive T cells and natural killer cells. Thus, our identification of this previously unrecognized regulatory hub not only accelerates our understanding of the molecular circuitry that drives tumor immune escape but also provides novel opportunities to improve immunotherapeutic intervention strategies.
Insights
This study identifies key signaling pathways, including STAT3 and MEK-ERK, that control PD-L1 expression in ALK+ ALCL. Targeting these pathways can reduce tumor immune escape, improving immunotherapy strategies.
Area of Science:
- Oncology
- Immunology
- Molecular Biology
Background:
- Programmed cell death protein 1 (PD-1)/PD-L1 immunotherapy is successful, but understanding PD-L1 regulation is crucial for new cancer treatments.
- Anaplastic lymphoma kinase (ALK)-positive anaplastic large-cell lymphoma (ALK+ ALCL) is a model for studying PD-L1 upregulation due to activated oncogenic signaling.
Purpose of the Study:
- To comprehensively identify molecular regulators of PD-L1 expression in ALK+ ALCL using CRISPR/Cas9 screening.
- To elucidate the signaling pathways driving PD-L1 upregulation and its role in tumor immune escape.
Main Methods:
- Utilized clustered regularly interspaced short palindromic repeats (CRISPR)/Cas9 library screening to identify genes regulating PD-L1.
- Analyzed signaling pathways including STAT3, MEK-ERK, and PI3K-AKT.
- Investigated the role of transcription factors IRF4 and BATF3 in PD-L1 gene regulation.
Main Results:
- Discovered that PD-L1 induction depends on nucleophosmin-ALK activating STAT3 and a signalosome (GRB2/SOS1) that activates MEK-ERK and PI3K-AKT pathways.
- Identified IRF4 and BATF3 as essential transcription factors for PD-L1 expression, acting on the PD-L1 gene enhancer.
- IRF4 expression levels correlated with PD-L1 levels in primary ALK+ ALCL tissues.
Conclusions:
- Uncovered a novel regulatory hub controlling PD-L1 expression and tumor immune escape in ALK+ ALCL.
- Targeting this oncogenic signaling pathway significantly reduced PD-L1-mediated immune escape in co-culture models.
- Findings offer new strategies for improving immunotherapeutic interventions by targeting PD-L1 regulation.
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