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Mutation of SMARCA4 Induces Cancer Cell-Intrinsic Defects in the Enhancer Landscape and Resistance to Immunotherapy
Yawen Wang1, Ismail M Meraz1, Md Qudratullah1
1Department of Thoracic and Cardiovascular Surgery, The University of Texas MD Anderson Cancer Center, Houston, Texas.
Abstract:
Cancer genomic studies have identified frequent alterations in genes encoding components of the SWI/SNF chromatin remodeling complex, including SMARCA4 and ARID1A. Importantly, clinical reports indicate that SMARCA4-mutant lung cancers respond poorly to immunotherapy and have dismal prognosis. In this study, we corroborated the clinical findings by using immune-humanized, syngeneic, and genetically engineered mouse models of lung cancer harboring SMARCA4 deficiency. Specifically, models with SMARCA4 loss showed decreased response to anti-PD-1 immunotherapy associated with significantly reduced infiltration of dendritic cells and CD4+ T cells into the tumor microenvironment. SMARCA4 loss in tumor cells led to profound downregulation of STING1, IL1β, and other components of the innate immune system, as well as inflammatory cytokines that are required for efficient recruitment and activity of immune cells. The deregulation of gene expression was caused by cancer cell-intrinsic reprogramming of the enhancer landscape with marked loss of chromatin accessibility at enhancers of genes involved in innate immune response, such as STING1, IL1β, type I IFN, and inflammatory cytokines. Interestingly, the transcription factor NF-κB-binding motif was enriched in enhancers that lose accessibility upon SMARCA4 deficiency. Furthermore, SMARCA4 and NF-κB co-occupied the same genomic loci on enhancers associated with STING1 and IFNβ, indicating a functional interplay between SMARCA4 and NF-κB. Taken together, these findings provide the mechanistic basis for the poor response of SMARCA4-mutant tumors to immunotherapy and establish a functional link between SMARCA4 and NF-κB in innate immune and inflammatory gene expression regulation. Significance: Epigenetic reprogramming in SMARCA4-mutant cancer cells alters immune infiltration and limits immunotherapy efficacy by downregulating immunostimulatory gene expression, which could potentially be targeted to overcome immunotherapy resistance in SMARCA4-deficient tumors.
Insights
SMARCA4-deficient lung cancers poorly respond to immunotherapy due to epigenetic changes that reduce immune cell infiltration. This study reveals a link between SMARCA4, NF-κB, and innate immune gene expression, offering potential therapeutic targets.
Area of Science:
- Oncology
- Immunology
- Epigenetics
Background:
- Frequent alterations in SWI/SNF chromatin remodeling complex genes, including SMARCA4, are observed in cancers.
- SMARCA4-mutant lung cancers exhibit poor immunotherapy response and prognosis.
- Understanding the mechanisms behind this resistance is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the mechanistic basis for poor immunotherapy response in SMARCA4-deficient lung cancer.
- To elucidate the role of SMARCA4 in regulating the tumor immune microenvironment and gene expression.
- To identify potential therapeutic strategies to overcome immunotherapy resistance.
Main Methods:
- Utilized immune-humanized, syngeneic, and genetically engineered mouse models of SMARCA4-deficient lung cancer.
- Assessed anti-PD-1 immunotherapy response and immune cell infiltration (dendritic cells, CD4+ T cells).
- Analyzed gene expression, chromatin accessibility, and transcription factor binding (SMARCA4, NF-κB) in tumor cells.
Main Results:
- SMARCA4 loss decreased anti-PD-1 response and reduced immune cell infiltration into tumors.
- SMARCA4 deficiency downregulated innate immune genes (STING1, IL1β) and inflammatory cytokines.
- Epigenetic reprogramming led to reduced chromatin accessibility at immune-related enhancers, involving NF-κB.
- Demonstrated a functional interplay between SMARCA4 and NF-κB in regulating immune gene expression.
Conclusions:
- SMARCA4 loss epigenetically reprograms cancer cells, impairing immune infiltration and immunotherapy efficacy.
- Downregulation of immunostimulatory genes by SMARCA4 deficiency contributes to immunotherapy resistance.
- Targeting the SMARCA4-NF-κB pathway in innate immunity may overcome resistance in SMARCA4-mutant tumors.
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