Lysyl oxidases crosslink type I collagen to promote fibrosis and cancer progression in mouse mammary tumor models. Pancreatic ductal adenocarcinomas (PDACs) are highly fibrotic and contain abundant type I collagen with elevated expression of lysyl oxidases. Indeed, inhibition of lysyl oxidases constitute an attractive anti-tumor therapeutic strategy, with several reported preclinical studies demonstrating efficacy at reducing PDAC fibrosis and progression. Yet, lysyl oxidase was first described as an anti-oncogene through its effect of directly suppressing cell transformation by mutant Ras which is present in around 90% of human pancreatic tumors. These prior studies highlight the dual functions, anti-ras and pro-fibrotic, of lysyl oxidases in pancreatic cancer. As a result, clinical trials targeting lysyl oxidase in cancers have demonstrated limited efficacy. Here we examined the effects of perturbation of lysyl oxidase activity or expression using syngeneic orthotopic transplantation models expressing mutant Ras and intravital imaging. Unexpectedly, genetic or pharmacological inhibition of lysyl oxidases increased invasion along collagen fibers and distant metastasis. Furthermore, inhibition of lysyl oxidases promoted focal adhesion kinase (FAK) activity which was required for metastasis. We found that mutant Kras status dictated lysyl oxidase-mediated suppression on FAK signaling in both mouse and human pancreatic cancer cells. These results suggest that the effect of lysyl oxidase on metastasis are dependent on signaling from Ras and FAK. These results strongly caution against inhibiting lysyl oxidases for cancers driven by mutant Ras. Lijuan Sun, Jean Albrengues, John E. Wilkinson, Sarah L. Dallas, Valerie M. Weaver, Mikala Egeblad, Mario A. Shields. Lysyl oxidases suppress pancreatic cancer progression by inhibiting focal adhesion kinase signaling [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2025; Part 1 (Regular Abstracts); 2025 Apr 25-30; Chicago, IL. Philadelphia (PA): AACR; Cancer Res 2025;85(8_Suppl_1):Abstract nr 138.
Tumour necrosis is associated with poor prognosis in cancer1,2 and is thought to occur passively when tumour growth outpaces nutrient supply. Here we report, however, that neutrophils actively induce tumour necrosis. In multiple cancer mouse models, we found a tumour-elicited Ly6GHighLy6CLow neutrophil population that was unable to extravasate in response to inflammatory challenges but formed neutrophil extracellular traps (NETs) more efficiently than classical Ly6GHighLy6CHigh neutrophils. The presence of these 'vascular-restricted' neutrophils correlated with the appearance of a 'pleomorphic' necrotic architecture in mice. In tumours with pleomorphic necrosis, we found intravascular aggregates of neutrophils and NETs that caused occlusion of the tumour vasculature, driving hypoxia and necrosis of downstream vascular beds. Furthermore, we found that cancer cells adjacent to these necrotic regions (that is, in 'perinecrotic' areas) underwent epithelial-to-mesenchymal transition, explaining the paradoxical metastasis-enhancing effect of tumour necrosis. Blocking NET formation genetically or pharmacologically reduced the extent of tumour necrosis and lung metastasis. Thus, by showing that NETs drive vascular occlusion, pleomorphic necrosis and metastasis, we demonstrate that tumour necrosis is not necessarily a passive byproduct of tumour growth and that it can be blocked to reduce metastatic spread.
Chronic stress is associated with increased risk of metastasis and poor survival in cancer patients, yet the reasons are unclear. We show that chronic stress increases lung metastasis from disseminated cancer cells 2- to 4-fold in mice. Chronic stress significantly alters the lung microenvironment, with fibronectin accumulation, reduced T cell infiltration, and increased neutrophil infiltration. Depleting neutrophils abolishes stress-induced metastasis. Chronic stress shifts normal circadian rhythm of neutrophils and causes increased neutrophil extracellular trap (NET) formation via glucocorticoid release. In mice with neutrophil-specific glucocorticoid receptor deletion, chronic stress fails to increase NETs and metastasis. Furthermore, digesting NETs with DNase I prevents chronic stress-induced metastasis. Together, our data show that glucocorticoids released during chronic stress cause NET formation and establish a metastasis-promoting microenvironment. Therefore, NETs could be targets for preventing metastatic recurrence in cancer patients, many of whom will experience chronic stress due to their disease.
Abstract In a previous study, we developed a strategy to reprogram tumor-associated macrophages (TAMs) and induce a collaborative innate-adaptive immune response by combining monophosphoryl lipid A (MPLA) with IFNγ. However, we also observed downregulation of extracellular matrix (ECM)-associated genes in MPLA+IFNγ-treated mammary tumors, indicating that the combination treatment impacts the tumor microenvironment beyond just the immune cells. In this study, we investigated how MPLA+IFNg treatment modulates the tumor ECM, with a particular focus on fibroblasts-the major ECM-producing cells. Using scRNA-seq to profile mammary carcinomas, we identified six macrophage populations (C1q+, Ccr2+, Spp1+, Lyz+, mt+ and ki67+ TAMs) and two fibroblast populations (Cd34+ and a-SMA+ fibroblasts) in MMTV-PyMT tumor. MPLA+IFNγ treatment increased the numbers and percentages of Lyz+ TAMs and Cd34+ fibroblasts, while the numbers and percentages of Spp1+ TAMs and α-SMA+ fibroblasts were decreased by the treatment. Thus, MPLA+IFNγ treatment induced significant changes in both macrophage and fibroblast populations. Further analysis revealed an unusual gene expression pattern in Lyz+ TAMs. Mgst1 and Gng12 expression was detected in Lyz+ TAMs at levels comparable to those in fibroblasts, despite these genes typically being expressed in fibroblasts but not in macrophages of normal human tissues. However, to our surprise, MPLA+IFNγ treatment did not significantly increase Mgst1 and Gng12 expression of mono-cultured TAMs or bone marrow-derived macrophages, suggesting that these genes were not directly upregulated by MPLA+IFNγ treatment. Instead, the Mgst1 and Gng12 transcripts may have originated from engulfed fibroblasts. In addition, following MPLA+IFNγ treatment, more iNOS+ macrophages (which we previously identified as tumoricidal macrophages) were found in very close proximity to α-SMA+ fibroblasts. To directly test whether MPLA+IFNg-treated TAMs kill and engulf fibroblasts, we performed ex vivo co-cultures of TAMs and fibroblasts. Following MPLA+IFNγ treatment, TAMs effectively killed and engulfed the fibroblasts, whereas minimal fibroblast engulfment was observed in the control co-cultures. Our data suggest that tumoricidal MPLA+IFNγ-treated TAMs can regulate the ECM of tumors by targeting and eliminating the major ECM-producing cells, the fibroblasts. Ongoing studies are determining the functional consequences of the TAM-mediated regulation of fibroblasts and ECM composition. Citation Format: Lijuan Sun, Bodu Liu, Yixin Zhao, Mikala Egeblad. MPLA+IFNg-activated tumor-associated macrophages alter fibroblast composition [abstract]. In: Proceedings of the AACR Special Conference in Cancer Research: Tumor-body Interactions: The Roles of Micro- and Macroenvironment in Cancer; 2024 Nov 17-20; Boston, MA. Philadelphia (PA): AACR; Cancer Res 2024;84(22_Suppl):Abstract nr C024.
There is emerging evidence that exposure to chronic stress is associated with increased risk of metastasis and poor survival in cancer patients. However, the underlying molecular and cellular mechanisms responsible for the effects of stress on tumor progression remain unclear. To determine how stress promotes metastasis, we established new mouse models in which multiple chronic stress exposure promoted breast cancer metastasis to the lungs. We found that chronic stress generates a pro-metastatic lung microenvironment with e.g., reduced T cell infiltration and increased extracellular matrix (ECM) deposition and neutrophil infiltration. Among them, neutrophils were required for these changes as their depletion abolished the pro-metastatic effects of stress and normalized the lung tumor microenvironment. Mechanistically, we analyzed neutrophils from chronically stressed mice and identified dramatically altered transcriptomes, including increased expression of several glucocorticoid receptor regulated genes. Phenotypically, neutrophils from stress exposed mice exhibited increased ROS production, and an increased ability to inhibit T cell activation and to form spontaneous neutrophil extracellular traps (NETs). The stress-associated changes to neutrophils were dependent on glucocorticoid receptor (GR) signaling as neutrophil-specific GR knockout mice showed no increase in NET-formation, a normalized lung microenvironment and no increase in lung metastasis upon stress exposure. Among the changes in the neutrophils caused by stress exposure, we found that the formation of pro-metastatic NETs was critical as directly digesting NETs with DNase I prevented stress-induced metastasis and normalized the lung microenvironment. In sum, this work shows that chronic stress exposure causes a glucocorticoid-mediated increase in NET formation and that NETs are critical drivers in the establishment of a stress-induced, metastasis-promoting microenvironment. Targeting NETs could be an important strategy to prevent metastatic recurrence in cancer patients, many of whom will experience stress due to their cancer diagnosis and subsequent treatments. Citation Format: Xue-Yan He, David Ng, Yuan Gao, Evdokia Michalopoulou, Shanu George, Jose M. Adrover, Lijuan Sun, Jean Albrengues, Ledong Wan, Xiao Han, Christopher Vakoc, Linda Van Aelst, Mikala Egeblad. Untangling the connection between stress and metastatic breast cancer [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 62.
Supplementary Data from MiR-21 Indicates Poor Prognosis in Tongue Squamous Cell Carcinomas as an Apoptosis Inhibitor
We recently established an in vitro co-culture system in which monophosphoryl lipid A + interferon -gamma (MPLA+IFN gamma)-treated tumor-associated macrophages (TAMs) killed cancer cells. Here, we describe a step-by-step protocol for isolating TAMs and cancer cells from mouse primary mammary carcinomas, the setup of the co-culture system, and the image acquisition approach. The technical difficulties in the co-culture assay involve isolating pure TAMs and cancer cells from the same tumor and staining them with different dyes to track the macro-phages' tumoricidal activity.For complete details on the use and execution of this protocol, please refer to Sun et al. (2021).(1)
Chronic inflammation increases the risk of several cancers, including gastric, colon, and hepatic cancers. Conversely, tumors, similar to tissue injury, trigger an inflammatory response coordinated by the innate immune system. Cellular and molecular mediators of inflammation modulate tumor growth directly and by influencing the adaptive immune response. Depending on the balance of immune cell types and signals within the tumor microenvironment, inflammation can support or restrain the tumor. Adding to the complexity, research from the past two decades has revealed that innate immune cells are highly heterogeneous and plastic, with variable phenotypes depending on tumor type, stage, and treatment. The field is now on the cusp of being able to harness this wealth of data to (a) classify tumors on the basis of their immune makeup, with implications for prognosis, treatment choice, and clinical outcome, and (b) design therapeutic strategies that activate antitumor immune responses by targeting innate immune cells.
Increasing evidence has shown that chemo-resistance is related to the process of epithelial-mesenchymal transition (EMT) and increased invasiveness by tongue squamous cell carcinoma (TSCC) cells. Long non-coding RNAs (lncRNAs) play pivotal roles in tumor metastasis and progression. However, the roles and mechanisms of lncRNAs in cisplatin-resistance-induced EMT and metastasis are not well understood. In this study, a chemotherapy-induced lncRNA 1 (CILA1) was discovered by using microarrays and was functionally identified as a regulator of chemo-sensitivity in TSCC cells. Upregulation of CILA1 promotes EMT, invasiveness, and chemo-resistance in TSCC cells, whereas the inhibition of CILA1 expression induces mesenchymal-epithelial transition (MET) and chemosensitivity, and inhibits the invasiveness of cisplatin-resistant cells both in vitro and in vivo. We also found that CILA1 exerts its functions via the activation of the Wnt/beta-catenin signaling pathway. High CILA1 expression levels and low levels of phosphorylated beta-catenin were closely associated with cisplatin resistance and advanced disease stage, and were predictors of poor prognosis in TSCC patients. These findings provided a new biomarker for the chemo-sensitivity of TSCC tumors and a therapeutic target for TSCC treatment.
We have recently reported a long noncoding RNA that interacts with nuclear factor κB (NFκB) and represses NFκB activation by physically masking the phosphorylation site of inhibitor of NFκB (IκB). Our findings have revealed a new class of long noncoding RNAs (lncRNAs) that directly interact with proteins involved in signal transduction pathways and interfere with cell signaling. This implicates a potential strategy for the design of RNA-based targeted drugs.
About 50-70% of breast cancers are estrogen receptor ' (ER') positive and most of them are sensitive to endocrine therapy including tamoxifen. However, one third of these patients will eventually develop resistance and relapse. We found that the expression of miR-15a and miR-16 were significantly decreased in tamoxifen resistant ER positive breast cancer cell lines. Exogenous expression of miR-15a/16 mimics re-sensitized resistant cells to tamoxifen by inhibiting Cyclin E1 and B cell lymphoma-2 (Bcl-2) to induce cell growth arrest and apoptosis respectively. Further, we identified that a repressive member of E2F family, E2F7, was responsible for the suppression of miR-15a/16 cluster by competing with E2F1 for E2F binding site at the promoter of their host gene DLEU2. Moreover, high expression of E2F7 is correlated with high risk of relapse and poor prognosis in breast cancer patients receiving tamoxifen treatment. Together, our results suggest that overexpression of E2F7 represses miR-15a/16 and then increases Cyclin E1 and Bcl-2 that result in tamoxifen resistance. E2F7 may be a valuable prognostic marker and a therapeutic target of tamoxifen resistance in breast cancer.
Long noncoding RNA NBAT1 (neuroblastoma associated transcript 1) regulates cell proliferation and invasion by interacting with PRC2 (polycomb repressive complex 2) member EZH2 (enhancer of zeste 2). Decreased expression of NBAT1 is associated with poor clinical outcome in neuroblastomas. However, the roles of NBAT1 in other cancers remain unknown. Here, we report that NBAT1 is down-regulated in various types of cancer. Particularly, reduced NBAT1 in breast cancer is associated with tumor metastasis and poor patient prognosis. In vitro, ectopic NBAT1 inhibits migration and invasion of breast cancer cells. Mechanistic study shows that NBAT1 is associated with PRC2 member EZH2 and regulates global gene expression profile. Among them, DKK1 (dickkopf WNT signaling pathway inhibitor 1) is found to be regulated by NBAT1 in a PRC2 dependent manner, and is responsible for NBAT1's effects in inhibiting migration and invasion of breast cancer cells. Taken together, our study demonstrates that long noncoding RNA NBAT1 is a potential breast cancer prognostic marker, as well as a potential therapeutic target to inhibit breast cancer metastasis.
Cisplatin has been widely employed as a cornerstone chemotherapy treatment for a wide spectrum of solid neoplasms; increasing tumor responsiveness to cisplatin has been a topic of interest for the past 30 years. Strong evidence has indicated that mitochondrial fission participates in the regulation of apoptosis in many diseases; however, whether mitochondrial fission regulates cisplatin sensitivity remains poorly understood. Here, we show that MFF mediated mitochondrial fission and apoptosis in tongue squamous cell carcinoma (TSCC) cells after cisplatin treatment and that miR-593-5p was downregulated in this process. miR-593-5p attenuated mitochondrial fission and cisplatin sensitivity by targeting the 3' untranslated region sequence of MFF and inhibiting its translation. In exploring the underlying mechanism of miR-593-5p downregulation, we observed that BRCA1 transactivated miR-593-5p expression and attenuated cisplatin sensitivity in vitro. The BRCA1-miR-593-5p-MFF axis also affected cisplatin sensitivity in vivo. Importantly, in a retrospective analysis of multiple centers, we further found that the BRCA1-miR-593-5p-MFF axis was significantly associated with cisplatin sensitivity and the survival of patients with TSCC. Together, our data reveal a model for mitochondrial fission regulation at the transcriptional and post-transcriptional levels; we also reveal a new pathway for BRCA1 in determining cisplatin sensitivity through the mitochondrial fission program.
Mitochondria play an important role in the initiation of apoptosis. However, whether cisplatin can induce apoptosis by initiating a mitochondrial fission pathway and the mechanism underlying this effect remain poorly understood. In this study, we show that the mitochondrial fission protein FIS1 is upregulated upon cisplatin treatment in tongue squamous cell carcinoma (TSCC) cells. FIS1 knockdown can attenuate mitochondrial fission and cisplatin sensitivity. We found that FIS1 is a direct target of miR-483-5p and that miR-483-5p can inhibit mitochondrial fission and cisplatin sensitivity in vitro and in vivo. Furthermore, we found that miR-483-5p and FIS1 are significantly associated with cisplatin sensitivity and with overall survival in patients with TSCC in a retrospective analysis of multiple centers. This study revealed that a novel mitochondrial fission pathway composed of miR-483-5p and FIS1 regulates cisplatin sensitivity. The modulation of miR-483-5p and FIS1 levels may provide a new approach for increasing cisplatin sensitivity.
NF-κB is a critical link between inflammation and cancer, but whether long non-coding RNAs (lncRNAs) regulate its activation remains unknown. Here, we identify an NF-KappaB Interacting LncRNA (NKILA), which is upregulated by NF-κB, binds to NF-κB/IκB, and directly masks phosphorylation motifs of IκB, thereby inhibiting IKK-induced IκB phosphorylation and NF-κB activation. Unlike DNA that is dissociated from NF-κB by IκB, NKILA interacts with NF-κB/IκB to form a stable complex. Importantly, NKILA is essential to prevent over-activation of NF-κB pathway in inflammation-stimulated breast epithelial cells. Furthermore, low NKILA expression is associated with breast cancer metastasis and poor patient prognosis. Therefore, lncRNAs can directly interact with functional domains of signaling proteins, serving as a class of NF-κB modulators to suppress cancer metastasis.
BACKGROUND:Salivary Adenoid cystic carcinoma (SACC) patients with local invasion and lung metastasis are often resistant to conventional therapy such as operation, chemotherapy and radiotherapy. To explore the underling mechanisms, we studied the roles of miRNA in regulating invasiveness of SACC cells.METHODS:MicroRNA profiling was done in SACC cells with microarray. MiRNA mimics or antisense oligonucleotide was transfected and invasiveness of SACC cells was evaluated by adhesion assay and transwell assay. The target gene of miRNA was identified by luciferase reporter assay and "rescue" experiment. Tumor metastasis was evaluated by BALB/c-nu mice xenografts. MiRNA and its target gene expression were identified by in-situ hybridization and immunohistochemistry respectively, in 302 patients from affiliated hospitals of Sun Yat-sen University and in 148 patients from affiliated hospitals of Central South University, and correlated to the clinicopathological status of the patients.RESULTS:MiR-320a was down-regulated in high lung metastatic ACCM and SACC-LM cells compared with the corresponding low metastatic ACC2 and SACC-83 cells, and inhibited adhesion, invasion and migration of SACC cells by targeting integrin beta 3 (ITGB3). In vivo, enforced miR-320a expression suppressed metastasis of SACC xenografts. In the two independent sets, miR-320a was downregulated in primary SACCs with metastasis compared to those without metastasis, and low expression of this miRNA predicts poor patient survival and rapid metastasis. Multivariate analysis showed that miR-320a expression was an independent indicator of lung metastasis.CONCLUSIONS:MiR-320a inhibits metastasis in SACCs by targeting ITGB3 and may serve as a therapeutic target and prognostic marker in salivary cancers.
Epithelial‐to‐mesenchymal transition (EMT) is implicated in embryonic development and various pathological events. Transforming growth factor beta (TGFβ) has been reported to induce EMT in tumor cells, which is a critical step in the process of metastasis leading to cancer spreading and treatment failure. However, the involvement of microRNA during the EMT process in tongue squamous cell carcinoma (TSCC) remains to be determined. To address this question, TSCC cell lines SCC9 and CAL27 were treated with human recombinant TGFβ1 for 48 h. miRNA microarray illustrated that miR‐639 was significantly downregulated in TGFβ‐treated SCC9 cells. Ectopic expression of miR‐639 with miRNA mimics effectively blocked TGFβ‐induced EMT in SCC9 and CAL27 cells, but inhibition of miR‐639 in SCC9 and CAL27 cells with antisense oligonucleotides induced EMT. Computational microRNA target predictions detected a conserved sequence matching to the seed region of miR‐639 in the 3′‐UTR of FOXC1 mRNA. Luciferase reporter assays revealed that miR‐639 targets FOXC1. Ectopic expression of FOXC1 induces EMT in TSCC cells. Silencing FOXC1 expression blocked TGFβ‐induced EMT in SCC9 cells. Clinically, reduced miR‐639 expression was associated with metastasis in TSCC and poor patient survival. The data from the present study suggest that reduced expression of miR‐639 underscores the mechanism of TGFβ‐induced EMT in TSCC by targeting FOXC1 and may serve as therapeutic targets in the process of metastasis.
Tumor metastasis is one of the most serious challenges for human cancers as the majority of deaths caused by cancer are associated with metastasis, rather than the primary tumor. Recent studies have demonstrated that tumor cell plasticity plays a critical role in tumor metastasis by giving rise to various cell types which is necessary for tumor to invade adjacent tissues and form distant metastasis. These include differentiation of cancer stem cells (CSCs), or epithelial-mesenchymal transition (EMT) and its reverse process, mesenchymal-epithelial transition (MET). A growing body of evidence has demonstrated that the biology of tumor cell plasticity is tightly linked to functions of non-coding RNAs (ncRNAs), especially microRNAs (miRNAs) and long non-coding RNAs (lncRNAs). Therefore, understanding the mechanisms how non-coding RNAs regulate tumor cell plasticity is essential for discovery of new diagnostic markers and therapeutic targets to overcome metastasis.
PURPOSE: To evaluate the relationship between the expression of miR-15b and its target BMI1 and the chemoresistance and prognosis of tongue squamous cell carcinoma(TSCC) patients.METHODS: The expression of miR-15b in 86 paraffin-embedded TSCC tissues were assayed by in situ hybridization,and the expression of BMI1 protein determined by immunohistochemical staining.The relationship between the expression of miR-15b and BMI1 and the patients' clinico-pathological characteristics was analysed with SPSS 17.0 software package.RESULTS: Compared with the cisplatin sensitive TSCC,the miR-15b expression of the cisplatin resistant TSCC was significantly down-regulated(P 0.001),but the BMI1 expression was significantly up-regulated(P0.001).Patients with lower miR-15b expression had worse overall disease-free survival than those exhibited higher miR-15b expression(P=0.001),patients with higher BMI1 expression had poorer prognosis than those with lower BMI1 expression(P=0.029).CONCLUSIONS: miR-15b acts as a cancer suppressor gene in TSCC.Reduced miR-15b expression is associated with chemotherapeutic resistance in TSCC and poor patient's survival,and could be involved in the mechanisms of chemoresistance in TSCC.