Osteosarcoma (OS) is the most common primary bone tumor in children and adolescents. Approximately 25-30% of these tumors carry amplification of chromosome 8q24, which harbors the oncogene c-Myc, and correlates with a poor prognosis in patients with OS. To understand the mechanisms that underlie the ability of Myc to alter both the tumor and its surrounding tumor immune microenvironment (TiME), we generated and molecularly characterized an osteoblast-specific Cre-Lox-Stop-Lox;(LSL)-c-MycT58A;p53f/+ knockin genetically engineered mouse model (GEMM). Phenotypically, the Myc knockin-GEMM had rapid tumor development with a high incidence of metastasis. Myc-dependent gene signature in our murine model demonstrated significant homology to the human Myc-amplified OS.Interestingly, we noticed a significant reduction in the osteoclast (OCL) cell population in the Myc knockin OS tumor compared to the p53-driven. We found the expression of RANK was significantly downregulated in the Myc knockin tumor compared to the Non-knockin p53 heterozygous tumors. The RANK/RANKL pathway is vital in OCL maturation and bone modeling/remodeling. To understand the involvement of Myc in RANK regulation, we used murine-derived OS cell lines and transiently knocked down of Myc expression using siRNA. We observed a significant upregulation in RANK expression after Myc knockdown. To decipher the molecular mechanism behind the Myc-dependent regulation of RANK expression in OS, we looked into the Myc-mediated microRNAs. Myc regulates the expression of several microRNAs, including the polycistronic miR-17-92 cluster. The expression of miR17-5p and Mir20a-5p was significantly higher in the GEMM tumor tissue samples isolated from the Myc knockin compared to the p53-driven. Further, we validated the Myc-dependent regulation of miR-17-5p/20a-5p expression using transient knockdown of Myc in mouse Myc knockin-derived cell lines. To examine the role of miR17-5p/20a-5p on the RANK regulation, we performed both gain and loss-of-function studies using microRNA-17/20a mimics and inhibitors. After the treatment with miR-17-5p/20a-5p inhibitors, the expression of RANK was significantly upregulated whereas in the case of miR17/20a mimics reversed these effects and led to a downregulation of RANK expression. We established that miR-17-5p/20a-5p is causally responsible for at least part of the mechanism by which Myc regulates the RANK expression in OS.We concluded that the Myc-regulated miR17/20a modulates the RANK expression that is involved in the OCL cell population regulation and function in the OS. Citation Format: Bikesh Kumar Nirala, Lyazat Kurenbekova, Tajhal Patel, Ryan Lane Shuck, Atreyi Dasgupta, Nino Carlo Rainusso, Jason T. Yustein. Myc-regulated miR17, 20a modulate RANK expression in osteosarcoma [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 6713.
Contains supplementary figures and tables with corresponding legends. Figure S1: PAK expression and signaling in RMS. Figure S2: Generation of PAK4 knock down stable clones and phenotypic effects on tumorigenicity. Figure S3: Knockdown of PAK4 inhibits tumor growth in vivo. Figure S4: Phenotypic effects of small molecule inhibitors of PAK4. Figure S5: Pharmacological inhibition of PAK4 in vitro attenuating invasion and migration of cells. Figure S6: Target validation and body weight measurement upon treatment. Figure S7: Molecular analysis of PAK4 targeted proteome. Figure S8: Transcriptomic Analysis of KPT-9274 treated RMS tumors indicating immune modulation. Supplementary table 1: Sequence of primers. Supplementary table 2: Patient annotations.
Osteosarcoma (OS) is the most common primary bone tumor of childhood. Approximately 20%-30% of OSs carry amplification of chromosome 8q24, which harbors the oncogene c-MYC and correlates with a poor prognosis. To understand the mechanisms that underlie the ability of MYC to alter both the tumor and its surrounding tumor microenvironment (TME), we generated and molecularly characterized an osteoblast-specific Cre-Lox-Stop-Lox-c-MycT58A p53fl/+ knockin genetically engineered mouse model (GEMM). Phenotypically, the Myc-knockin GEMM had rapid tumor development with a high incidence of metastasis. MYC-dependent gene signatures in our murine model demonstrated significant homology to the human hyperactivated MYC OS. We established that hyperactivation of MYC led to an immune-depleted TME in OS demonstrated by the reduced number of leukocytes, particularly macrophages. MYC hyperactivation led to the downregulation of macrophage colony-stimulating factor 1, through increased microRNA 17/20a expression, causing a reduction of macrophage population in the TME of OS. Furthermore, we developed cell lines from the GEMM tumors, including a degradation tag-MYC model system, which validated our MYC-dependent findings both in vitro and in vivo. Our studies utilized innovative and clinically relevant models to identify a potentially novel molecular mechanism through which MYC regulates the profile and function of the OS immune landscape.
Osteosarcoma (OS) is the most common bone tumor in pediatric patients, particularly in adolescents and young adults. Currently, no effective molecular targeted therapies are available for the OS, however, many OS patients possess genetically defined somatic DNA copy number alterations, including amplification of chromosome 8q24, which harbors the oncogene Myc, and correlates with a worse prognosis. To better understand the molecular pathogenesis, and identify targeted therapy for OS, a robust and reliable preclinical model is needed both for the primary and metastatic disease. We have developed a novel conditional, osteoblast-specific Myc knock-in murine model to understand the mechanisms that underlie the ability of Myc to drive the development and progression of OS and utilize it for the identification of Myc-dependent intrinsic and extrinsic molecular vulnerabilities. A tissue-specific Myc-in genetically engineered murine model was generated by crossing Col2.3-Cre; TP53Flox/+ mice with LSL-MycT58A mice and characterized integrating RNA-seq and Mass Spectrometry. Syngeneic murine OS cell lines were also generated and characterized. The molecular characterization of the GEMM model was compared with high and low Myc expressing human tumors using the OS-TARGET dataset. Differential gene expression in Myc-driven and non-driven-tumor tissue samples were quantified by RNA sequencing. The immune landscape of OS was evaluated using SymphonyFACS and IHC staining. Murine OS tumor type was confirmed by H&E staining. OS tumor was highly aggressive and metastatic in more than 60% of the mice. Myc expression was significantly higher both at the transcriptional and protein levels in the Myc-in tissue/cells compared to the non-Myc-driven model. Expression of 1479 genes (out of 13781 genes) were significantly altered in which 543 were upregulated and 936 were downregulated at transcriptional levels in Myc-in tumor tissue samples as compared to the low-Myc-driven OS tumor model analyzed by RNA sequencing. Myc-target-genes, splicing factor-related genes, E2F, G2M check-point, and DNA repair associated genes were significantly upregulated whereas the immune-related genes, oxidative phosphorylation, adipogenesis, and E2M transition genes were significantly downregulated when compared between two groups, which correlates to differential gene ontologies noted in high Myc human tumors. The total immune cell population, specifically the myeloid and macrophage populations were significantly diminished in the Myc-in tumor models, which could contribute to the poor prognosis in OS.Our murine model closely resembles human OS and will provide new opportunities for dissecting the molecular pathogenesis, identification of novel therapeutic strategies, and pre-clinical modeling for direct translational applications and targeting of Myc-driven OS. Citation Format: Bikesh K. Nirala, Lyazat Kurenbekova, Ryan L. Shuck, Tajhal Patel, Kimal Rajapakshe, Jason T. Yustein. Development and characterization of a c-Myc-driven preclinical mouse model of osteosarcoma to investigate the tumor immune microenvironment [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2022; 2022 Apr 8-13. Philadelphia (PA): AACR; Cancer Res 2022;82(12_Suppl):Abstract nr 1668.
Background: Osteosarcoma (OS) is the most common bone malignancy in childhood and adolescence. Though the prognosis of OS patients has been improved by multimodal therapies, patients with metastatic disease still have a very poor prognosis. We previously reported a novel TBL1/β-catenin inhibitor, Tegavivint, suppresses OS primary tumor and lung metastasis using patient-derived cell lines. Wnt/β-catenin signaling is reported to influence intratumoral T cell infiltration and using murine syngeneic OS models we investigated the effects of Tegavivint on improving immune checkpoint inhibition and the OS tumor immune microenvironment. Methods: We used murine OS cell lines F331 and F420 for in vitro and in vivo studies. We performed cytotoxicity studies using the CCK-8 assay and western blots to investigate downstream β-catenin signaling perturbations secondary to Tegavivint. Intratibial injections were performed into C57BL/6 mice using both murine cell lines. Tegavivint and anti-PD-1 antibody was administered as monotherapy or in combination. After treatment, we compared the tumor volume in the control, monotherapy (Tegavivint or PD-1 only) and combination therapy groups (Tegavivint and PD-1). We assessed T cell tumor infiltration using immunohistochemistry and flow cytometry. Results: In vitro, Tegavivint suppresses the growth of F331 and F420 cell lines with IC50s of 9.52nM and 49.4nM, respectively after 72hours of treatment. In vivo, anti-PD1 monotherapy did not show any significant anti-tumor activity, but Tegavivint monotherapy significantly suppressed the growth of murine tumors (p<0.05) and the combination therapy further improved overall anti-tumor activity. IHC staining showed an increase in CD8-positive T cells in Tegavivint monotherapy and combination therapy treated tumors compared with the control tumors. Furthermore, flow cytometry validated the increase in CD8-positive T cell infiltration and also showed an increase in intratumoral NK cells in Tegavivint treated tumors. Conclusions: These results indicate that TBL1 inhibition, via Tegavivint, inhibits nuclear β-catenin activity and alters the tumor immune microenvironment and enhances immune checkpoint blockade in OS. Future directions include more comprehensive profiling and molecular analysis of the tumor and immune microenvironment, and evaluation of additional immune modulatory approaches for the treatment of OS. Citation Format: Kengo Nakahata, Bikesh K. Nirala, Ryan L. Shuck, Lyazat Kurenbekova, Jason T. Yustein. Targeting TBL1 inhibits nuclear β-catenin activity and enhances immune checkpoint inhibition efficacy in osteosarcoma [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2022; 2022 Apr 8-13. Philadelphia (PA): AACR; Cancer Res 2022;82(12_Suppl):Abstract nr 6046.
ABSTRACT Rhabdomyosarcoma (RMS) is the most common soft tissue sarcoma in children, with overall long-term survival rates of ∼65-70%. Thus, additional molecular insights and representative models are critical for identifying and evaluating new treatment modalities. Using MyoD-Cre-mediated introduction of mutant K-RasG12D and perturbations in p53, we developed a novel genetically engineered mouse model (GEMM) for RMS. The anatomic sites of primary RMS development recapitulated human disease, including tumors in the head, neck, extremities and abdomen. We confirmed RMS histology and diagnosis through Hematoxylin and Eosin staining, and positive immunohistochemical staining for desmin, myogenin, and phosphotungstic acid–Hematoxylin. Cell lines from GEMM tumors were established with the ability to engraft in immunocompetent mice with comparable histological and staining features as the primary tumors. Tail vein injection of cell lines had high metastatic potential to the lungs. Transcriptomic analyses of p53R172H/K-RasG12D GEMM-derived tumors showed evidence of high molecular homology with human RMS. Finally, pre-clinical use of these murine RMS lines showed similar therapeutic responsiveness to chemotherapy and targeted therapies as human RMS cell lines.
Rhabdomyosarcoma (RMS) is the most common soft tissue sarcoma in children, with overall long-term survival rates of about 65-70%. Thus, additional molecular insights and representative models are critical for further identifying and evaluating new treatment modalities. Using MyoD-Cre mediated introduction of mutant K-Ras G12D and perturbations in p53 we have developed a novel genetically engineered mouse model (GEMM) for RMS. Specifically, we directly crossed mice expressing MyoD promoter-regulated Cre-recombinase with germline p53 Flox or Lox-Stop-Lox (LSL) knock-in alleles expressing oncogenic p53 R172H and/or K-Ras G12D mutants. The anatomic sites of primary RMS development observed in these mice recapitulated human disease, with the most frequent sites of tumor growth seen in the head, neck, extremities, and abdomen. We have confirmed RMS histology and diagnosis through hematoxylin and eosin (H&E) staining, as well as positive immunohistochemistry (IHC) staining for desmin, myogenin, and phosphotungstic acid hematoxylin (PTAH). We established cell lines from several of the GEMM tumors with the ability to engraft and develop tumors in immunocompetent mice with similar histological and staining features as the primary tumors. Furthermore, injection of syngeneic RMS lines via tail vein had high metastatic potential to the lungs. Transcriptomic analyses of p53 R172H /K-Ras G12D GEMM-derived tumors showed evidence of high molecular homology with human RMS. Specifically, we noted alterations in gene ontologies including immune response, metabolism and mRNA processing. Finally, pre-clinical use of these murine RMS lines demonstrated similar therapeutic responsiveness to relevant chemotherapy and targeted therapies as human cell line models. Summary Statement We have developed a new conditional genetically engineered mouse model of rhabdomyosarcoma (RMS) with homologous molecular signature to human RMS that provides valuable pre-clinical models for evaluating novel therapies.
Ewing sarcoma (ES) is the second most common bone tumor in children and young adults. Unfortunately, there have been minimal recent advancements in improving patient outcomes, especially in metastatic and recurrent diseases. In this study, we investigated the biological role of p21-activated kinases (PAKs) in ES, and the ability to therapeutically target them in high-risk disease. Via informatics analysis, we established the inverse association of PAK1 and PAK4 expression with clinical stage and outcome in ES patients. Through expression knockdown and small-molecule inhibition of PAKs, utilizing FRAX-597, KPT-9274, and PF-3758309 in multiple ES cell lines and patient-derived xenograft models, we further explored the role of PAKs in ES tumor growth and metastatic capabilities. In vitro studies in several ES cell lines indicated that diminishing PAK1 and PAK4 expression reduces tumor cell viability, migratory, and invasive properties. In vivo studies using PAK4 inhibitors, KPT-9274 and PF-3758309 demonstrated significant inhibition of primary and metastatic tumor formation, while transcriptomic analysis of PAK4-inhibitor-treated tumors identified concomitant suppression of Notch, β-catenin, and hypoxia-mediated signatures. In addition, the analysis showed enrichment of anti-tumor immune regulatory mechanisms, including interferon (IFN)-ɣ and IFN-α responses. Altogether, our molecular and pre-clinical studies are the first to establish a critical role for PAKs in ES development and progression, and consequently as viable therapeutic targets for the treatment of high-risk ES in the near future.
Abstract Rhabdomyosarcoma (RMS) is the most prevalent pediatric soft-tissue sarcoma. Multimodal treatment, including surgery and traditional chemotherapy with radiotherapy, has contributed to improvements in overall survival rates. However, patients with recurrent or metastatic disease have 5-year survival rates of less than 30%. One reason for the lack of therapeutic advancement is identification and targeting of critical signaling nodes. p21-activated kinases (PAK) are a family of serine/threonine kinases downstream of multiple critical tumorigenic receptor tyrosine kinase receptors and oncogenic regulators, including IGFR and RAS signaling, that significantly contribute to aggressive malignant phenotypes. Here, we report that RMS cell lines and tumors exhibit enhanced PAK4 expression levels and activity, which are further activated by growth factors involved in RMS development. Molecular perturbation of PAK4 in multiple RMS models in vitro and in vivo resulted in inhibition of RMS development and progression. Fusion-positive and -negative RMS models were sensitive to two PAK4 small-molecule inhibitors, PF-3758309 and KPT-9274, which elicited significant antitumor and antimetastatic potential in several primary and metastatic in vivo models, including a relapsed RMS patient-derived xenograft model. Transcriptomic analysis of PAK4-targeted tumors revealed inhibition of the RAS-GTPase, Hedgehog, and Notch pathways, along with evidence of activation of antitumor immune response signatures. This PAK4-targeting gene signature showed prognostic significance for patients with sarcoma. Overall, our results show for the first time that PAK4 is a novel and viable therapeutic target for the treatment of high-risk RMS. Significance: These data demonstrate a novel oncogenic role for PAK4 in rhabdomyosarcoma and show that targeting PAK4 activity is a promising viable therapeutic option for advanced rhabdomyosarcoma.
Abstract Introduction: Osteosarcoma is the most common bone tumor in children and adolescents. Many patients have disease progression through standard chemotherapy regimens of methotrexate, cisplatin, and doxorubicin. Presently, there are no salvage therapies that have added significant survival benefits, leaving minimal options for relapsed and resistant disease. Additionally, there are no clinically significant biomarkers for this disease that would predict treatment failures. N-acetylgalactosaminyltransferase 14 (GALNT14) is an enzyme that initiates O-linked glycosylation to outer membrane-bound and extracellular proteins. Using transcriptomic analyses, we identified GALNT14 overexpression correlated with poor tumor necrosis and survival outcomes. Therefore, we hypothesize that GALNT14 contributes to metastatic and chemoresistant phenotypes in pediatric osteosarcoma. Methods: Transcriptomic data from the Therapeutically Applicable Research for Generating Effective Treatments (TARGET) database and RNA-sequencing of institutional patient-derived xenografts (PDXs) revealed that overexpression of GALNT14 correlated to poor necrosis rates. Gene Set Enrichment Analysis (GSEA) also identified upregulation of glycosylation pathways. Aberrant expression of GALNT14 was confirmed using quantitative polymerase chain reaction (qPCR) and Western blot analyses in various osteosarcoma cell lines. Transient GALNT14 knockdown and overexpression were then analyzed for effects on proliferation, invasion, migration, and chemotherapy response in vitro. Kaplan-Meier curves demonstrating overall survival (OS) and event-free survival (EFS) were established using data from the TARGET database. Results: GALNT14 expression was higher in both commercial and PDX cell lines that were known to be more prone for chemoresistance and invasiveness. The highest quartile of patients based on GALNT14 overexpression had 40% OS and 25% EFS, compared to 80% (p=0.002) and 75% (p<0.001) for the lowest quartile of expression, respectively. Summary: GALNT14 shows promise as a predictive marker of chemoresistance and metastasis for pediatric osteosarcoma. Future functional genomic studies through gain and loss-of-function assays will evaluate the role of GALNT14 in osteosarcoma chemoresistance and metastatic potential. Citation Format: Zachary D. Prudowsky, Tajhal Patel, Kimal Rajapakshe, Christian Coarfa, Ryan Shuck, Nino Rainusso, Jason Yustein. The role of GALNT14 in chemoresistant and metastatic osteosarcoma [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2021; 2021 Apr 10-15 and May 17-21. Philadelphia (PA): AACR; Cancer Res 2021;81(13_Suppl):Abstract nr 405.
Osteosarcoma (OS) is the most common bone tumor in pediatric patients, particularly in adolescents and young adults. Unfortunately, over the past four decades, there has been minimal progress towards improving patient outcomes, especially for those with metastatic disease. Currently, no effective molecular targeted therapies are available for the OS, however many OS patients possess genetically defined somatic DNA copy number alterations (SCNAs), including amplification of chromosome 8q24. 8q24.2 region harbors the oncogene c-Myc, and the SCNA is associated with decreased overall survival rates. Furthermore, enhanced c-Myc transcript levels are significantly correlated with worse prognosis. There is a scarcity of reliable and reproducible in vivo animal models that mimic SCNAs and can be used to provide both intrinsic and extrinsic molecular insights into c-Myc-osteosarcoma biology. We have developed a novel conditional c- Myc knock-in mouse model to understand the mechanisms that underlie the ability of c-Myc to drive development and progression of OS and utilize for identification of c-Myc-dependent molecular vulnerabilities. A tissue-specific GEMM for osteosarcoma was developed by altering p53 (f/+) and c-Myc (c- Myc-in) genes in the osteoblast derived cells. Either c-Myc WT or the c-Myc T58A phosphorylation mutant was knocked-in from the constitutively active ROSA26 locus in response to Cre-recombinase. Differential gene expression in c-Myc-driven and non-driven-tumor tissue samples were quantified by RNA sequencing. The protein expression profiles were evaluated for both groups by comprehensive mass spectrometry (MS) analysis and reverse phase proteome analysis (RPPA). Osteosarcoma was confirmed for GEMM tumors by histopathological (HE 2020 Apr 27-28 and Jun 22-24. Philadelphia (PA): AACR; Cancer Res 2020;80(16 Suppl):Abstract nr 6147.
Background: The Wnt/beta-catenin pathway is closely associated with osteosarcoma (OS) development and metastatic progression. We investigated the antitumor activity of Tegavivint, a novel beta-catenin/transducin beta-like protein 1 (TBL1) inhibitor, against OS employing in vitro, ex vivo, and in vivo cell line and patient-derived xenograft (PDX) models that recapitulate high risk disease. Methods: The antitumor efficacy of Tegavivint was evaluated in vitro using established OS and PDX-derived cell lines. Use of an ex vivo three-dimensional pulmonary metastasis assay assessed targeting of beta-catenin activity during micro- and macrometastatic development. The in vivo activity of Tegavivint was evaluated using chemoresistant and metastatic OS PDX models. Gene and protein expression were quantified by quantitative Reverse transcription polymerase chain reaction or immunoblot analysis. Bone integrity was determined via microCT. All statistical tests were two-sided. Results: Tegavivint exhibited antiproliferative activity against OS cells in vitro and actively reduced micro- and macrometastatic development ex vivo. Multiple OS PDX tumors (n = 3), including paired patient primary and lung metastatic tumors with inherent chemoresistance, were suppressed by Tegavivint in vivo. We identified that metastatic lung OS cell lines (n = 2) exhibited increased stem cell signatures, including enhanced concomitant aldehyde dehydrogenase (ALDH1) and beta-catenin expression and downstream activity, which were suppressed by Tegavivint (ALDH1: control group, mean relative mRNA expression = 1.00, 95% confidence interval [CI] = 0.68 to 1.22 vs Tegavivint group, mean = 0.011, 95% CI = 0.0012 to 0.056, P < .001; beta-catenin: control group, mean relative mRNA expression = 1.00, 95% CI = 0.71 to 1.36 vs Tegavivint group, mean = 0.45, 95% CI = 0.36 to 0.52, P < .001). ALDH1(high) PDX-derived lung OS cells, which demonstrated enhanced metastatic potential compared with ALDH(low) cells in vivo, were sensitive to Tegavivint. Toxicity studies revealed decreased bone density in male Tegavivint-treated mice (n = 4 mice per group). Conclusions: Tegavivint is a promising therapeutic agent for advanced stages of OS via its targeting of the beta-catenin/ALDH1 axis.
Abstract Osteosarcoma (OS) is the most common bone cancer in children and adolescents, and patients with metastatic disease still have extremely poor prognosis and no effective targeted therapy. It has been reported that the activation of Wnt/β-catenin pathway is closely associated with OS development and metastatic progression. Tegavivint (BC2059), a novel small molecule inhibitor of the Wnt/β-catenin pathway, has been reported to be active against multiple types of cancer cells in vitro, and anti-tumor efficacy has been published in animal models of acute myeloid leukemia and multiple myeloma. In this study, we investigated the antitumor activity of Tegavivint against metastatic OS both in vitro and in vivo using established human OS cell lines (143B, SaOS-2, LM7) and patient-derived xenograft (PDX) models. In vitro, Tegavivint effectively inhibited tumor cell survival in a dose-dependent manner in all established OS cell lines and OS PDX-derived cells. Subsequent in vivo studies using an orthotopic model of LM7 cells engrafted in the tibia of NSG mice demonstrated complete regression of the primary tumors in all treated mice as well as a significant reduction in lung metastasis by the treatment with Tegavivint. We further examined the activity of Tegavivint using a pair of PDX models derived from an inherently chemo-resistant OS patient at different disease stages: PDX63 was derived from the pre-treatment biopsy of the primary tumor, and PDX84 was derived from the relapsed metastatic lung lesion of the same patient after chemotherapy. The growth of subcutaneously engrafted PDX63 tumors was significantly suppressed by the treatment with Tegavivint alone and Tegavivint enhanced the antitumor activity of doxorubicin. Analysis of mRNA expression by qPCR in the tumor tissue demonstrated significant downregulation of critical genes by Tegavivint, including c-Myc and ALDH1, which is a potential marker for cancer stem cells. Furthermore, in an innovative lung metastasis model using PDX84 tumor-dissociated cells intravenously (IV) injected in NSG mice, we demonstrated that Tegavivint treatment markedly reduced the number of lung metastases. Finally, PDX84-derived cells were sorted into ALDH1-high and ALDH1-low populations. ALDH1-high cells showed higher expression of β-catenin and higher sensitivity to Tegavivint than the ALDH1-low cells in vitro and subsequent IV injection of ALDH1-high PDX84 or ALDH1-low PDX84 cells demonstrated significantly more lung lesions in the ALDH1-high group than the ALDH1-low group. The number of ALDH1-high derived lung metastases was significantly suppressed by Tegavivint. Taken together, our preclinical findings demonstrate that Tegavivint has promising therapeutic potential for primary and metastatic OS through the blockade of Wnt signaling /ALDH1 axis. Citation Format: Motonari Nomura, Nino C. Rainusso, Ruolan Han, Jeff Larson, Ryan L. Shuck, Lyazat Kurenbekova, Jason T. Yustein. Tegavivint suppresses progression and metastasis of osteosarcoma via blockade of Wnt signaling/ALDH1 axis: Preclinical study of a novel Wnt/β-catenin pathway inhibitor [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2018; 2018 Apr 14-18; Chicago, IL. Philadelphia (PA): AACR; Cancer Res 2018;78(13 Suppl):Abstract nr 3186.
Osteosarcoma (OS) is a highly aggressive mesenchymal malignancy and the most common primary bone tumor in the pediatric population. OS frequently presents with or develops distal metastases. Patients with metastatic disease have extremely poor survival rates, thus necessitating improved molecular insights into OS metastatic biology. Utilizing our previously characterized genetically engineered mouse model (GEMM) of metastatic OS, we identified enhanced differential expression of Transglutaminase-2 (TGM2) in metastatic OS. However, the role of TGM2 in sarcoma development and metastatic progression remains largely undefined. To further investigate the role of TGM2 in OS metastasis, we performed both gain- and loss-of-function studies for TGM2 in human and mouse OS cell lines. Our data provide evidence that enhanced expression of TGM2 in metastatic OS contributes to migratory and invasive phenotypes. Besides the effects on metastatic phenotypes, we also observed that TGM2 contributes to OS stem-like properties. In addition, treatment with transglutaminase inhibitors had analogous effects on proliferation and migration to TGM2 knockdown. Finally, in vivo xenograft studies demonstrated that TGM2 functionally alters metastatic potential and survival outcome. Together, these data highlight TGM2 as a pro-metastatic factor in OS and a potential avenue for future therapeutic intervention to inhibit metastatic disease.
Purpose: Radiation therapy (RT) is a viable therapeutic option for Ewing sarcoma (ES) patients. However, little progress has been made to elucidate the mechanisms of radioresistance. This study establishes a novel ES irradiation-adapted model designed to assess molecular and F-18 fluorodeoxyglucose (FDG) positron emission tomography (PET) alterations secondary to RT. Methods and Materials: Radiation-adapted cell lines (RACLs) were created in vitro by exposing ES human cell lines to fractionated doses of radiation. Assays to assess migration or invasion potential and RNA expression were performed on the RACLs. Orthotopic intratibial in vivo investigations were performed with irradiation-sensitive and irradiation-adapted ES cells to generate tumors. Transplanted mice were imaged using F-18-FDG PET followed by fractionated RT directed at the primary tumor. Mice were monitored for tumor regression and change in metabolic activity using 18F-FDG PET imaging. Protein expression analyses were performed on the RACLs and orthotopic tumors. Results: Exposure to fractionated doses of radiation caused a significant increase in migratory and invasive properties in the RACLs when compared with nonirradiated wild-type ES cells. RACL transcriptomic and proteomic analysis suggests enhanced activation of the mammalian target of rapamycin-AKT pathway when compared with wild-type ES cells. Irradiation-adapted tumors demonstrated significantly less tumor regression (P = .03) than wild-type tumors. Wild-type tumors also had decreased expression of lactate dehydrogenase A protein and significantly lower metabolic activity after RT compared with irradiation-adapted tumors (P = .03). Conclusions: We developed novel in vitro and in vivo irradiation-adapted ES models. In vitro investigations revealed increased migratory and invasive phenotypes in the RACLs. In vivo investigations demonstrated increased metabolic activity and significantly decreased sensitivity to RT in the irradiation-adapted tumors as demonstrated by growth response curves and F-18-FDG PET activity. Investigations of the RACLs identified possible radiosensitizing-dependent targets in lactate dehydrogenase A and the mammalian target of rapamycin-AKT pathway. (C) 2018 Elsevier Inc. All rights reserved.
SummaryAging is often accompanied by a dramatic increase in cancer susceptibility. To gain insights into how aging affects tumor susceptibility, we generated a conditional mouse model in which oncogenic KrasG12D was activated specifically in lungs of young (3–5 months) and old (19–24 months) mice. Activation of KrasG12D in old mice resulted in shorter survival and development of higher‐grade lung tumors. Six weeks after KrasG12D activation, old lung tissues contained higher numbers of adenomas than their young tissue counterparts. Lung tumors in old mice displayed higher proliferation rates, as well as attenuated DNA damage and p53 tumor suppressor responses. Gene expression comparison of lung tumors from young and old mice revealed upregulation of extracellular matrix‐related genes in young tumors, indicative of a robust cancer‐associated fibroblast response. In old tumors, numerous inflammation‐related genes such as Ccl7, IL‐1β, Cxcr6, and IL‐15ra were consistently upregulated. Increased numbers of immune cells were localized around the periphery of lung adenomas from old mice. Our experiments indicate that more aggressive lung tumor formation in older KrasG12D mice may be in part the result of subdued tumor suppressor and DNA damage responses, an enhanced inflammatory milieu, and a more accommodating tissue microenvironment.