We established a novel syngeneic glioblastoma stem cell (GSC) line from PDGFB-driven RCAS/tv-a glioblastomas and subsequently generated a Pten-deficient derivative, WYZ-1. In vitro, WYZ-1 cells exhibited robust self-renewal, high expression of GSC markers (CD133, Nestin, SOX2), and multipotent differentiation into neuronal and astrocytic lineages. In vivo, intracranial implantation in immunocompetent mice produced highly infiltrative and vascularized tumors with marked proliferation, necrosis, and white matter invasion, closely recapitulating key histopathological features of human glioblastoma. Immunohistochemical analysis confirmed the retention of oncogenic, stem-like, and mesenchymal-associated markers. Importantly, WYZ-1 tumors displayed an immune-excluded (“cold”) tumor microenvironment characterized by dense infiltration of immunosuppressive macrophages/microglial cells within the tumor core and restricted localization of exhausted T cells to the tumor margins. Consistent with these features, WYZ-1 tumors are resistant to temozolomide and anti-PD-1 monotherapy, with only a modest survival benefit observed following CTLA-4 blockade. Collectively, these findings establish WYZ-1 as a highly aggressive, stem-like, and immunocompetent glioblastoma model that mirrors the therapeutic resistance of human disease and provides a valuable platform for investigating tumor biology and evaluating novel immunotherapeutic strategies.
Metastatic cancer poses significant clinical challenges, necessitating effective immunotherapies with minimal systemic toxicity. Building on prior research demonstrating the rWTC-MBTA vaccine’s ability to inhibit tumor metastasis and growth, this study focuses on its clinical translation by optimizing vaccine composition, dosing regimens, and freezing techniques. The vaccine formula components included three TLR ligands (LTA, Poly I:C, and Resiquimod) and an anti-CD40 antibody, which were tested in melanoma and triple-negative breast cancer (TNBC) models. The formulations were categorized as rWTC-MBT (Mannan-BAM with LTA, Poly I:C, Resiquimod), rWTC-MBL (LTA), rWTC-MBP (Mannan-BAM with Poly I:C), and rWTC-MBR (Resiquimod). In the melanoma models, all the formulations exhibited efficacy that was comparable to that of the full vaccine, while in the “colder” TNBC models, the formulations with multiple TLR ligands or Resiquimod alone performed the best. Vaccine-induced activation of dendritic cell (DC) subsets, including conventional DCs (cDCs), myeloid DCs (mDCs), and plasmacytoid DCs (pDCs), was accompanied by significant CD80+CD86+ population induction, suggesting robust innate immune stimulation. An initial three-dose schedule followed by booster doses (3-1-1-1 or 3-3-3-3) reduced the metastatic burden effectively. Gradual freezing (DMSO-based preservation) maintained vaccine efficacy, underscoring the importance of intact cell structure. These findings highlight the potential of simplified formulations, optimized dosing, and freezing techniques in developing practical, scalable immunotherapies for metastatic cancers.
Central nervous system (CNS) lymphomas are difficult to treat due to their aggressive nature, limited brain accessibility, and poor response to conventional therapies. This study evaluates the rWTC‐MBTA vaccine, alone or with anti‐PD1 therapy, in A20 B‐cell lymphoma models. The vaccine alone significantly inhibits tumor growth and extends survival in both subcutaneous and intracranial settings by triggering strong innate and adaptive immune responses, including long‐term memory. Immune profiling reveals dynamic responses in lymph nodes and tumor‐infiltrating lymphocytes over time. Co‐culture assays with lymph node or spleen cells from vaccinated mice show enhanced tumor cell killing and increased IFN‐γ and TNF‐α levels, indicating lymphoma‐specific immunity. In the intracranial model, control mice has dense tumor infiltration in the brain, while vaccinated mice exhibit more dispersed tumors with reduced spread to ventricles and meninges. Vaccination also shifts the tumor microenvironment toward a more active antitumor state, marked by increased PD‐1⁺ CD8⁺ T cells. Combining the vaccine with anti‐PD1 further enhances antitumor effects. These findings demonstrate that rWTC‐MBTA induces potent and durable immune responses against CNS and peripheral lymphomas, offering long‐term protection and showing synergistic benefit when combined with immune checkpoint blockade.
Despite strides in immunotherapy, glioblastoma multiforme (GBM) remains challenging due to low inherent immunogenicity and suppressive tumor microenvironment. Converting "cold" GBMs to "hot" is crucial for immune activation and improved outcomes. This study comprehensively characterized a therapeutic vaccination strategy for preclinical GBM models. The vaccine consists of Mannan-BAM-anchored irradiated whole tumor cells, Toll-like receptor ligands [lipoteichoic acid (LTA), polyinosinic-polycytidylic acid (Poly (I:C)), and resiquimod (R-848)], and anti-CD40 agonistic antibody (rWTC-MBTA). Intracranial GBM models (GL261, SB28 cells) are used to evaluate the vaccine efficacy. A substantial number of vaccinated mice exhibited complete regression of GBM tumors in a T-cell-dependent manner, with no significant toxicity. Long-term tumor-specific immune memory is confirmed upon tumor rechallenge. In the vaccine-draining lymph nodes of the SB28 model, rWTC-MBTA vaccination triggered a major rise in conventional dendritic cell type 1 (cDC1) 12 h post-treatment, followed by an increase in conventional dendritic cell type 2 (cDC2), monocyte-derived dendritic cell (moDC), and plasmacytoid dendritic cell (pDC) on Day 5 and Day 13. Enhanced cytotoxicity of CD4+ and CD8+ T cells in vaccinated mice is verified in co-culture with tumor cells. Analyses of immunosuppressive signals (T-cell exhaustion, myeloid-derived suppressor cells (MDSC), M2 macrophages) in the GBM microenvironment suggest potential combinations with other immunotherapies for enhanced efficacy. In conclusion, the authors findings demonstrate that rWTC-MBTA induces potent and long-term adaptive immune responses against GBM.
Autologous tumor cell-based vaccines (ATVs) aim to prevent and treat tumor metastasis by activating patient-specific tumor antigens to induce immune memory. However, their clinical efficacy is limited. Mannan-BAM (MB), a pathogen-associated molecular pattern (PAMP), can coordinate an innate immune response that recognizes and eliminates mannan-BAM-labeled tumor cells. TLR agonists and anti-CD40 antibodies (TA) can enhance the immune response by activating antigen-presenting cells (APCs) to present tumor antigens to the adaptive immune system. In this study, we investigated the efficacy and mechanism of action of rWTC-MBTA, an autologous whole tumor cell vaccine consisting of irradiated tumor cells (rWTC) pulsed with mannan-BAM, TLR agonists, and anti-CD40 antibody (MBTA), in preventing tumor metastasis in multiple animal models. The efficacy of the rWTC-MBTA vaccine was evaluated in mice using breast (4T1) and melanoma (B16-F10) tumor models via subcutaneous and intravenous injection of tumor cells to induce metastasis. The vaccine’s effect was also assessed in a postoperative breast tumor model (4T1) and tested in autologous and allogeneic syngeneic breast tumor models (4T1 and EMT6). Mechanistic investigations included immunohistochemistry, immunophenotyping analysis, ELISA, tumor-specific cytotoxicity testing, and T-cell depletion experiments. Biochemistry testing and histopathology of major tissues in vaccinated mice were also evaluated for potential systemic toxicity of the vaccine. The rWTC-MBTA vaccine effectively prevented metastasis and inhibited tumor growth in breast tumor and melanoma metastatic animal models. It also prevented tumor metastasis and prolonged survival in the postoperative breast tumor animal model. Cross-vaccination experiments revealed that the rWTC-MBTA vaccine prevented autologous tumor growth, but not allogeneic tumor growth. Mechanistic data demonstrated that the vaccine increased the percentage of antigen-presenting cells, induced effector and central memory cells, and enhanced CD4+ and CD8+ T-cell responses. T-cells obtained from mice that were vaccinated displayed tumor-specific cytotoxicity, as shown by enhanced tumor cell killing in co-culture experiments, accompanied by increased levels of Granzyme B, TNF-α, IFN-γ, and CD107a in T-cells. T-cell depletion experiments showed that the vaccine’s antitumor efficacy depended on T-cells, especially CD4+ T-cells. Biochemistry testing and histopathology of major tissues in vaccinated mice revealed negligible systemic toxicity of the vaccine. The rWTC-MBTA vaccine demonstrated efficacy in multiple animal models through T-cell mediated cytotoxicity and has potential as a therapeutic option for preventing and treating tumor metastasis with minimal systemic toxicity.
Wet age-related macular degeneration (AMD), characterized by leaky neovessels emanating from the choroid, is a main cause of blindness. As current treatments for wet AMD require regular intravitreal injections of anti-vascular endothelial growth factor (VEGF) biologics, there is a need for the development of less invasive treatments. Here, we designed an allosteric inhibitor of end binding-3 (EB3) protein, termed EBIN, which reduces the effects of environmental stresses on endothelial cells by limiting pathological calcium signaling. Delivery of EBIN via eye drops in mouse and non-human primate (NHP) models of wet AMD prevents both neovascular leakage and choroidal neovascularization. EBIN reverses the epigenetic changes induced by environmental stresses, allowing an activation of a regenerative program within metabolic-active endothelial cells comprising choroidal neovascularization (CNV) lesions. These results suggest the therapeutic potential of EBIN in preventing the degenerative processes underlying wet AMD.
Toll-like receptors (TLRs) are pattern recognition receptors (PRRs) expressed in various immune cell types and perform multiple purposes and duties involved in the induction of innate and adaptive immunity. Their capability to propagate immunity makes them attractive targets for the expansion of numerous immunotherapeutic approaches targeting cancer. These immunotherapeutic strategies include using TLR ligands/agonists as monotherapy or combined therapeutic strategies. Several TLR agonists have demonstrated significant efficacy in advanced clinical trials. In recent years, multiple reports established the applicability of TLR agonists as adjuvants to chemotherapeutic drugs, radiation, and immunotherapies, including cancer vaccines. Cancer vaccines are a relatively novel approach in the field of cancer immunotherapy and are currently under extensive evaluation for treating different cancers. In the present review, we tried to deliver an inclusive discussion of the significant TLR agonists and discussed their application and challenges to their incorporation into cancer immunotherapy approaches, particularly highlighting the usage of TLR agonists as functional adjuvants to cancer vaccines. Finally, we present the translational potential of rWTC-MBTA vaccination [irradiated whole tumor cells (rWTC) pulsed with phagocytic agonists Mannan-BAM, TLR ligands, and anti-CD40 agonisticAntibody], an autologous cancer vaccine leveraging membrane-bound Mannan-BAM, and the immune-inducing prowess of TLR agonists as a probable immunotherapy in multiple cancer types.
Background While the past decades have seen an explosion of innovation in immunotherapies, most have failed in their clinical studies. One of the barriers encountered across these trials is that despite demonstrated cytoxicity, tumor immune evasion renders these treatments ineffective. Glioblastoma (GBM) is one of these tumors where experimental immunotherapeutics have continued to fail. The median survival of GBM remains at 15 months with the primary treatment being surgical resection, radiation, and chemotherapeutic over the past decade. To breach this stalemate, we require new therapeutics that both can target tumor immune evasion and can balance efficacy with toxicity. Our lab previously developed a subcutaneous autologous tumor vaccine utilizing a phagocytosis-stimulating ligand mannan anchored to irradiated (IR) tumor cells with the adjuvants toll-like receptor (TLR) agonists and immunostimulant anti-CD40 antibody (collectively abbreviated as MBTA). This regime allowed recognition of tumors resulting in a coordinated innate and adaptive immune response in both prophylactic and therapeutic studies with colon carcinoma, breast tumor, and GBM mouse models. The aim of our study was to generate a dendritic cell (DC) vaccine utilizing this strategy. Methods To assess if MBTA anchored GBM cells could mature DCs in-vitro, we harvested bone-marrow DCs (BMDCs) from mice and co-cultured them with MBTA GBM cells for 24 hours. Analysis was performed by flow cytometry and ELISA to confirm maturation markers and DC phenotype. To assess if MBTA DCs could protect against tumor metastasis, we utilized a melanoma (B16) prophylactic model by vaccinating mice 1 week before tail vein melanoma challenge. Results We found robust up-regulation of co-stimulatory molecules CD40, CD80 and CD86 and preferential upregulation of MHCI in the MBTA group with ELISA analysis demonstrating MBTA DCs significantly upregulated Type 1 cytokines (TNFa and IL-6) and limited regulatory cytokine (IL-10) secretion across GBM cell lines. Mice vaccinated with MBTA DCs had a significant decrease in lung metastasis compared to controls with lung immunohistochemistry demonstrating robust perivascular lymphocytic infiltration. Currently, we are working on demonstrating this efficacy in a glioblastoma model. Conclusions Collectively our results demonstrate that MBTA is an effective strategy to mature and load tumor antigens onto DCs ex-vivo. It has efficacy as a DC vaccine to prevent melanoma metastasis and potential as a glioblastoma DC vaccine. Acknowledgements The authors acknowledge the NCI-CCR affiliated staff for their assistance with animal housing and the NCI CCR Flow Cytometry Core Members for their expertise in flow cytometry Ethics Approval The National Cancer Institute (NCI) Animal Use and Care Committees approved the present study under NOB-010 and NOB-016.
Despite the advances made in cancer treatment over the past decades, one statistic has remained unchanged: metastatic cancer accounts for 90 percent of annual cancer deaths in the United States. Our group previously demonstrated that an autologous whole tumor cell vaccine (rWTC-MBTA: irradiated autologous whole tumor cells pulsed with Mannan-BAM, TLR ligands, and anti-CD40 antibody) had a potent anti-tumor immune response and prolonged survival in a mouse colon carcinoma model. To investigate whether rWTC-MBTA would work in “cold” tumor models, we evaluated the vaccine’s effect on preventing and treating tumor metastasis in 4T1 breast tumors. Our data showed that vaccinated mice could significantly prevent lung metastasis in both intravenous injection and mammary pad subcutaneous implantation animal models. Further, we used another metastasis model that more closely mimics clinical practice by resecting the primary tumor after metastasis development. The data showed that vaccinated mice could prevent tumor recurrence, increase T-cell infiltration in the metastatic tumor, and prolong the survival curve. The mechanistic investigation by immunophenotyping revealed that rWTC-MBTA vaccination induced both effector memory (CD44+CD62L−) and center memory (CD44+CD62L+) T cells as well as increased overall CD4+ and CD8+ T-cell count while depletion experiments demonstrated that CD8+ T cells were required for vaccine efficacy. Isolated splenocytes co-cultured with 4T1 cells showed rWTC-MBTA significantly increased T-cell mediated cytotoxicity through TNF-a and IFN-γ in CD107a+CD4+ T cells and Granzyme B and IFN-γ in CD107a+CD8+ T cells. In all experiments, vaccination exerted negligible systemic toxicity. Collectively, our study demonstrates that the rWTC-MBTA vaccine is a safe and promising therapeutic option to prevent and treat tumor metastasis by triggering an antitumor immune response. Citation Format: Juan Ye, Herui Wang, Mitchell Sun, Ondrej Uher, Mark R. Gilbert, Karel Pacak, Zhengping Zhuang, Rogelio Medina, Samik Chakraborty, Jan Zenka. Unique autologous cancer vaccine comprised of irradiated whole tumor cells and MBTA (rWTC-MBTA) triggers antitumor immune response to prevent metastasis. [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2023; Part 1 (Regular and Invited Abstracts); 2023 Apr 14-19; Orlando, FL. Philadelphia (PA): AACR; Cancer Res 2023;83(7_Suppl):Abstract nr 6800.
Despite numerous therapeutic advances in cancers, the treatment of glioblastoma multiforme (GBM) remains a challenge. Boosting T-lymphocyte mediated responses against GBM offers a promising approach towards solving this problem. Herein, we present a therapeutic vaccination strategy that promotes the phagocytosis of tumor cells, enhances tumor antigen presentation, and induces a tumor-specific adaptive immune response with subsequent tumor eradication. This strategy consists of subcutaneous injection of irradiated whole tumor cells (rWTC) pulsed with phagocytic agonists (Mannan-BAM), TLR ligands (LTA, Poly (I:C), and R-848), and anti-CD40 agonistic antibody (collectively abbreviated as rWTC-MBTA). We evaluated the therapeutic efficacy of rWTC-MBTA strategy in mouse syngeneic GBM tumor models with GL261 and SB28 cells. In GL261 GBM model, complete regression (CR) of intracranial tumors was achieved in 70% (7/10) of rWTC-MBTA treated animals while none survived in the control group. Of note, the therapeutic efficacy of rWTC-MBTA was abolished in CD4-T and/or CD8-T lymphocyte depleted mice. Immunophenotyping analyses of peripheral lymph nodes and brain tumors of rWTC-MBTA treated mice demonstrated increased antigen presenting cells (dendritic cells and MHC II+ monocytes) and increased cytotoxic IFNγ, TNFα, and granzyme B-secreting CD4-T and CD8-T cells. All three CR mice that were rechallenged with GL261 cells intracranially 14 months after their last rWTC-MBTA treatment resisted tumor development, confirming the establishment of long-term immunological memory. In SB28 GBM model, 80% (8/10) rWTC-MBTA treated mice survived past 95 days after tumor cell implantation without any GBM-related symptoms, with median survival being only 35 days in control groups. In summary, our study demonstrated that rWTC-MBTA strategy can induce potent adaptive immune response against GBM in pre-clinical models. Citation Format: Herui Wang, Rogelio Medina, Juan Ye, Samik Chakraborty, Ondrej Uher, Mitchell Sun, Jan Zenka, Mark R. Gilbert, Karel Pacak, Zhengping Zhuang. Irradiated whole tumor cells pulsed with mannan-BAM, TLR ligands and anti-CD40 antibody serve as a potent tumor cell vaccine against glioblastoma [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2023; Part 1 (Regular and Invited Abstracts); 2023 Apr 14-19; Orlando, FL. Philadelphia (PA): AACR; Cancer Res 2023;83(7_Suppl):Abstract nr 691.
Chimeric antigen receptor (CAR)-engineered T cells represent a promising modality for treating glioblastoma. Recently, we demonstrated that CAR-T cells targeting carbonic anhydrase IX (CAIX), a protein involved in HIF-1a hypoxic signaling, is a promising CAR-T cell target in an intracranial murine glioblastoma model. Anti-CAIX CAR-T cell therapy is limited by its suboptimal activation within the tumor microenvironment. LB-100, a small molecular inhibitor of protein phosphatase 2A (PP2A), has been shown to enhance T cell anti-tumor activity through activation of the mTOR signaling pathway. Herein, we investigated if a treatment strategy consisting of a combination of LB-100 and anti-CAIX CAR-T cell therapy produced a synergistic anti-tumor effect. Our studies demonstrate that LB-100 enhanced anti-CAIX CAR-T cell treatment efficacy in vitro and in vivo. Our findings demonstrate the role of LB-100 in augmenting the cytotoxic activity of anti-CAIX CAR-T cells and underscore the synergistic therapeutic potential of applying combination LB-100 and CAR-T Cell therapy to other solid tumors.
We previously identified a novel syndrome in patients characterized by paraganglioma, somatostatinoma, and polycythemia. In these patients, polycythemia occurs long before any tumor develops, and tumor removal only partially corrects polycythemia, with recurrence occurring shortly after surgery. Genetic mosaicism of gain-of-function mutations of the EPAS1 gene (encoding HIF2α) located in the oxygen degradation domain (ODD), typically p.530–532, was shown as the etiology of this syndrome. The aim of the present investigation was to demonstrate that these mutations are necessary and sufficient for the development of the symptoms. We developed transgenic mice with a gain-of-function Epas1A529V mutation (corresponding to human EPAS1A530V), which demonstrated elevated levels of erythropoietin and polycythemia, a decreased urinary metanephrine-to-normetanephrine ratio, and increased expression of somatostatin in the ampullary region of duodenum. Further, inhibition of HIF2α with its specific inhibitor PT2385 significantly reduced erythropoietin levels in the mutant mice. However, polycythemia persisted after PT2385 treatment, suggesting an alternative erythropoietin-independent mechanism of polycythemia. These findings demonstrate the vital roles of EPAS1 mutations in the syndrome development and the great potential of the Epas1A529V animal model for further pathogenesis and therapeutics studies.
The need for novel therapies for glioblastoma multiforme (GBM) is well established. Chimeric antigen receptor (CAR)-engineered T cells represent a promising cancer treatment modality for treating GBM. However, CAR-T therapy has limitations, such as low penetration into solid tumors and short duration of CAR-T survival. Protein phosphatase 2A (PP2A) inhibition has been implicated in enhancing T cell anti-tumor activity. LB-100 is a novel, first-in-class, small molecule inhibitor of PP2A recently shown in a Phase I trial to be well-tolerated at doses resulting in stabilization of progressive solid tumors. We set out to overcome limitations of CAR-T therapy by activating the mTOR signaling pathway through inhibition of PP2A by LB-100. GBM highly expresses CAIX due to increased hypoxia signaling. Thus, antitumor CAIX-specific CAR T cells were developed and tested against GBM in vitro and in vivo. CAR-T cells displayed GBM cells cytotoxicity and increased IFN-γ, TNF-α, and IL-2 production. Intra-tumor injection of the CAR-T cells into an intracranial GBM xenograft mouse model efficiently suppressed the tumor growth. We found that PP2A inhibition by LB-100 further enhanced CAIX CAR-T activity and significantly prolonged mouse survival. Herein we demonstrate that CAIX represents a viable target for CAR-T cells and inhibition of PP2A enhances CAR-T efficacy against GBM. Targeting PP2A via inhibition with LB-100 may be a promising therapeutic strategy to improve CAR-T efficacy in other solid tumors. Citation Format: Jing Cui, Qi Zhang, Qi Song, Herui Wang, Pauline Dmitriev, Mitchell Sun, Jared S. Rosenblum, Kaiyong Yang, John Kovach, Mark R. Gilbert, Zhengping Zhuang. Targeting PP2A with LB100 enhances efficacy of CAIX CAR-T cells against GBM [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2019; 2019 Mar 29-Apr 3; Atlanta, GA. Philadelphia (PA): AACR; Cancer Res 2019;79(13 Suppl):Abstract nr 2260.
Heat shock protein 90 (HSP-90) has been identified in many disease processes including cancer, neurodegeneration, autoimmune diseases, and cancers. Great effort has been expended in the development of specific inhibitors of the N-terminal and C-terminal domains. Inhibitors of post-translational modification have also been developed. Herein, we explore the available inhibitors and those in development, discuss the relevant disease processes, and examine the pitfalls and promises of targeting HSP-90 for therapeutic intervention.
Here we describe a novel method for studying the protein "interactome" in primary human cells and apply this method to investigate the effect of posttranslational protein modifications (PTMs) on the protein's functions. We created a novel "biomimetic microsystem platform" (Bio-MSP) to isolate the protein complexes in primary cells by covalently attaching purified His-tagged proteins to a solid microscale support. Using this Bio-MSP, we have analyzed the interactomes of unphosphorylated and phosphomimetic end-binding protein-3 (EB3) in endothelial cells. Pathway analysis of these interactomes demonstrated the novel role of EB3 phosphorylation at serine 162 in regulating the protein's function. We showed that phosphorylation "switches" the EB3 biological network to modulate cellular processes such as cell-to-cell adhesion whereas dephosphorylation of this site promotes cell proliferation. This novel technique provides a useful tool to study the role of PTMs or single point mutations in activating distinct signal transduction networks and thereby the biological function of the protein in health and disease.
Vascular endothelial (VE)-cadherin forms homotypic adherens junctions (AJs) in the endothelium, whereas N-cadherin forms heterotypic adhesion between endothelial cells and surrounding vascular smooth muscle cells and pericytes. Here we addressed the question whether both cadherin adhesion complexes communicate through intracellular signaling and contribute to the integrity of the endothelial barrier. We demonstrated that deletion of N-cadherin (Cdh2) in either endothelial cells or pericytes increases junctional endothelial permeability in lung and brain secondary to reduced accumulation of VE-cadherin at AJs. N-cadherin functions by increasing the rate of VE-cadherin recruitment to AJs and induces the assembly of VE-cadherin junctions. We identified the dual Rac1/RhoA Rho guanine nucleotide exchange factor (GEF) Trio as a critical component of the N-cadherin adhesion complex, which activates both Rac1 and RhoA signaling pathways at AJs. Trio GEF1-mediated Rac1 activation induces the recruitment of VE-cadherin to AJs, whereas Trio GEF2-mediated RhoA activation increases intracellular tension and reinforces Rac1 activation to promote assembly of VE-cadherin junctions and thereby establish the characteristic restrictive endothelial barrier.
Purpose Pheochromocytomas and paragangliomas (PPGLs) are neuroendocrine tumors of neural crest origin. Germline or somatic mutations of numerous genes have been implicated in the pathogenesis of PPGLs, including the isocitrate dehydrogenase 1 ( IDH1 ) gene and alpha thalassemia/mental retardation syndrome X-linked ( ATRX ) gene. Although concurrent IDH1 and ATRX mutations are frequently seen in gliomas, they have never been reported together in PPGLs. The aim of this study was to characterize one paraganglioma with concurrent IDH1 and ATRX mutations identified by whole exome sequencing. Methods Leukocyte and tumor DNA were used for whole exome sequencing and Sanger sequencing. 2-hydroxyglurarate level and the global DNA methylation status in the tumor were measured. ATRX’s cDNA transcripts were analyzed. Tyrosine hydroxylase (TH), HIF1α and ATRX staining, as well as telomere-specific FISH was also performed. Results The presence of a somatic IDH1 (c.394C>T, p.R132C) mutation and a concurrent somatic ATRX splicing mutation (c.4318-2A>G) in the current case was confirmed. Dramatic accumulation of 2-hydroxyglutarate was detected in the paraganglioma without the global DNA hypermethylation, and pseudohypoxia was also activated. Importantly, immunohistochemistry revealed negative TH staining in the tumor and the first exon region of TH gene was hypermethylated resulting in normal plasma metanephrines. The splicing ATRX mutation resulted in two transcripts, causing frameshifts. Immunohistochemistry revealed scarce ATRX staining in the tumor. Alternative lengthening of telomeres (ALT) was detected by FISH. Conclusions This case represents the first concurrence of IDH1 and ATRX mutations in PPGLs. Although relatively rare, a somatic R132C mutation of IDH1 might play a role in a small subset of sporadic PPGLs.
Oncocytomas represent a subset of benign pituitary adenomas that are characterized by significant mitochondrial hyperplasia. Mitochondria are key organelles for energy generation and metabolic intermediate production for biosynthesis in tumour cells, so understanding the mechanism underlying mitochondrial biogenesis and its impact on cellular metabolism in oncocytoma is vital. Here, we studied surgically resected pituitary oncocytomas by using multi‐omic analyses. Whole‐exome sequencing did not reveal any nuclear mutations, but identified several somatic mutations of mitochondrial DNA, and dysfunctional respiratory complex I. Metabolomic analysis suggested that oxidative phosphorylation was reduced within individual mitochondria, and that there was no reciprocal increase in glycolytic activity. Interestingly, we found a reduction in the cellular lactate level and reduced expression of lactate dehydrogenase A (LDHA), which contributed to mitochondrial biogenesis in an in vitro cell model. It is of note that the hypoxia‐response signalling pathway was not upregulated in pituitary oncocytomas, thereby failing to enhance glycolysis. Proteomic analysis showed that 14‐3‐3η was exclusively overexpressed in oncocytomas, and that 14‐3‐3η was capable of inhibiting glycolysis, leading to mitochondrial biogenesis in the presence of rotenone. In particular, 14‐3‐3η inhibited LDHA by direct interaction in the setting of complex I dysfunction, highlighting the role of 14‐3‐3η overexpression and inefficient oxidative phosphorylation in oncocytoma mitochondrial biogenesis. These findings deepen our understanding of the metabolic changes that occur within oncocytomas, and shine a light on the mechanism of mitochondrial biogenesis, providing a novel perspective on metabolic adaptation in tumour cells. © 2018 The Authors. The Journal of Pathology published by John Wiley & Sons Ltd on behalf of Pathological Society of Great Britain and Ireland.
The endothelium, a monolayer of endothelial cells lining vessel walls, maintains tissue-fluid homeostasis by restricting the passage of the plasma proteins and blood cells into the interstitium. The ion Ca2+, a ubiquitous secondary messenger, initiates signal transduction events in endothelial cells that is critical to control of vascular tone and endothelial permeability. The ion Ca2+ is stored inside the intracellular organelles and released into the cytosol in response to environmental cues. The inositol 1,4,5-trisphosphate (IP3) messenger facilitates Ca2+ release through IP3 receptors which are Ca2+-selective intracellular channels located within the membrane of the endoplasmic reticulum. Binding of IP3 to the IP3Rs initiates assembly of IP3R clusters, a key event responsible for amplification of Ca2+ signals in endothelial cells. This review discusses emerging concepts related to architecture and dynamics of IP3R clusters, and their specific role in propagation of Ca2+ signals in endothelial cells.
Tumor-associated macrophages (TAMs) are predominantly M2 phenotype in solid cancers including hepatocellular carcinoma (HCC). Though differentiation of M2 macrophages has been recently linked to fatty acid oxidation (FAO), whether FAO plays a role in functional maintenance of M2 macrophages is still unclear. Here, we used an in vitro model to mimic TAM-HCC interaction in tumor microenvironment. We found that M2 monocyte-derived macrophages (MDMs) enhanced the proliferation, migration, and invasion of HCC cells through an FAO-dependent way. Further investigations identified that IL-1β mediated the pro-migratory effect of M2 MDM. Using etomoxir and siRNA to inhibit FAO and palmitate to enhance FAO, we showed that FAO was responsible for the up-regulated secretion of IL-1β and, thus, the pro-migratory effect in M2 MDMs. In addition, we proved that IL-1β induction was reactive oxygen species and NLRP3-dependent. Our study demonstrates that FAO plays a key role in functional human M2 macrophages by enhancing IL-1β secretion to promote HCC cell migration. These findings provide evidence for different dependency of energy sources in macrophages with distinct phenotypes and functions, and suggest a novel strategy to treat HCC by reprogramming cell metabolism or modulating tumor microenvironment.