REST-DRD2 mechanism impacts glioblastoma stem cell-mediated tumorigenesis
NEURO-ONCOLOGY
Authors: Marisetty, Anantha L.; Lu, Li; Veo, Bethany L.; Liu, Bin; Coarfa, Cristian; Kamal, Mohamed Mostafa; Kassem, Dina Hamada; Irshad, Khushboo; Lu, Yungang; Gumin, Joy; Henry, Verlene; Paulucci-Holthauzen, Adriana; Rao, Ganesh; Baladandayuthapani, Veerabhadran; Lang, Frederick F.; Fuller, Gregory N.; Majumder, Sadhan
Abstract
Background Glioblastoma (GBM) is a lethal, heterogeneous human brain tumor, with regulatory mechanisms that have yet to be fully characterized. Previous studies have indicated that the transcriptional repressor REST (repressor element-1 silencing transcription factor) regulates the oncogenic potential of GBM stem cells (GSCs) based on level of expression. However, how REST performs its regulatory role is not well understood. Methods We examined 2 independent high REST (HR) GSC lines using genome-wide assays, biochemical validations, gene knockdown analysis, and mouse tumor models. We analyzed in-house patient tumors and patient data present in The Cancer Genome Atlas (TCGA). Results Genome-wide transcriptome and DNA-binding analyses suggested the dopamine receptor D2 (DRD2) gene, a dominant regulator of neurotransmitter signaling, as a direct target of REST. Biochemical analyses and mouse intracranial tumor models using knockdown of REST and double knockdown of REST and DRD2 validated this target and suggested that DRD2 is a downstream target of REST regulating tumorigenesis, at least in part, through controlling invasion and apoptosis. Further, TCGA GBM data support the presence of the REST-DRD2 axis and reveal that high REST/low DRD2 (HRLD) and low REST/high DRD2 (LRHD) tumors are specific subtypes, are molecularly different from the known GBM subtypes, and represent functional groups with distinctive patterns of enrichment of gene sets and biological pathways. The inverse HRLD/LRHD expression pattern is also seen in in-house GBM tumors. Conclusions These findings suggest that REST regulates neurotransmitter signaling pathways through DRD2 in HR-GSCs to impact tumorigenesis. They further suggest that the REST-DRD2 mechanism forms distinct subtypes of GBM.
An effective dendritic cell-based vaccine containing glioma stem-like cell lysate and CpG adjuvant for an orthotopic mouse model of glioma
INTERNATIONAL JOURNAL OF CANCER
Authors: Zhu, Shan; Lv, Xinping; Zhang, Xuhao; Li, Tete; Zang, Guoxia; Yang, Ning; Wang, Xue; Wu, Jing; Chen, Wei; Liu, Yong-Jun; Chen, Jingtao
Abstract
Owing to the limited therapeutic efficacy of glioma vaccines, new strategies are required to improve cancer vaccines. Our study aimed to assess the therapeutic efficacy of a glioma vaccine called STDENVANT. This vaccine, comprising glioma stem-like cell (GSC) lysate, dendritic cells (DCs), and Toll-like receptor (TLR) 9 agonist CpG motif-containing oligodeoxynucleotides (CpG ODNs), was assessed using a GL261-C57BL/6 orthotopic mouse model of glioma. STDENVANT markedly improved survival and tumor regression by enhancing anti-tumor immune function. Moreover, STDENVANT upregulated programmed death 1 (PD-1) and its ligand PD-L1 on effector T cells, DCs, and glioma tissues, resulting in the accumulation of regulatory T (Treg) cells in the brain and lymph nodes. Combinatorial administration of anti-PD-L1 antibody and STDENVANT conferred a greater survival advantage and decreased the Treg cell population in the brain. The present results indicate that PD-L1 blockade can promote tumor regression via STDENVANT in a mouse model of glioma, and combinatorial administration of anti-PD-L1 antibody and STDENVANT increases the therapeutic anti-tumor efficacy of treatment. What's new? Vaccines based on dendritic cells harbouring glioma stem-like cell (GSC)-associated antigens are a promising therapeutic avenue against glioma, but efficacy remains limited. Here, the authors assessed the efficacy of a novel glioma vaccine called STDENVANT containing GSC lysate, dendritic cells, and CpG adjuvant. STDENVANT improved survival and tumor regression by enhancing anti-tumor immune function in an orthotopic mouse model of glioma. Moreover, addition of anti-PD-L1 mAb enhanced the therapeutic potency of the vaccine and deterred Treg cell accumulation in the tumor microenvironment. The findings revealed the potential clinical efficacy of combinatorial administration of the GSC-based vaccine with PD-L1 blocking therapy.