Abstract Purpose: Zoledronic acid is being increasingly recognized for its antitumor properties, but the underlying functions are not well understood. In this study, we hypothesized that zoledronic acid inhibits ovarian cancer angiogenesis preventing Rac1 activation. Experimental Design: The biologic effects of zoledronic acid were examined using a series of in vitro [cell invasion, cytokine production, Rac1 activation, reverse-phase protein array, and in vivo (orthotopic mouse models)] experiments. Results: There was significant inhibition of ovarian cancer (HeyA8-MDR and OVCAR-5) cell invasion as well as reduced production of proangiogenic cytokines in response to zoledronic acid treatment. Furthermore, zoledronic acid inactivated Rac1 and decreased the levels of Pak1/p38/matrix metalloproteinase-2 in ovarian cancer cells. In vivo, zoledronic acid reduced tumor growth, angiogenesis, and cell proliferation and inactivated Rac1 in both HeyA8-MDR and OVCAR-5 models. These in vivo antitumor effects were enhanced in both models when zoledronic acid was combined with nab-paclitaxel. Conclusions: Zoledronic acid has robust antitumor and antiangiogenic activity and merits further clinical development as ovarian cancer treatment. Clin Cancer Res; 21(9); 2127–37. ©2015 AACR.
Clinical correlation of miR-155 and TP53 expression with survival in the lung adenocarcinoma - TCGA dataset when distinguishing between TP53 wild-type and TP53 mutated samples. (A-B) Kaplan-Meier survival analysis for patients expressing high levels of miR-155 vs. low levels of miR-155 in samples that express wild-typeTP53 or harbor TP53 mutations that do not affect TP53 function (A), and in samples expressing mutated TP53 that affects TP53 function (B). (C-D) Kaplan-Meier survival analysis for patients expressing high levels of miR-155 and low levels of TP53 vs. low levels of miR-155 and high levels of TP53 in samples that express wild-type TP53 or harbor TP53 mutations that do not affect TP53 function (C), and in samples expressing mutated TP53 that affects TP53 function (D).
The regulation of microRNA (miRNA) biogenesis, function and degradation involves a range of mechanisms, including interactions with RNA-binding proteins. The potential contribution of regulatory miRNAs to the expression of these RNA interactor proteins that could control other miRNAs expression is still unclear. Here we demonstrate a regulatory circuit involving oncogenic and tumor-suppressor miRNAs and an RNA-binding protein in a chemotherapy-resistant ovarian cancer model. We identified and characterized miR-15a-5p and miR-25-3p as negative regulators of hnRNPA1 expression, which is required for the processing of miR-18a-3p, an inhibitor of the K-RAS oncogene. The inhibition of miR-25-3p and miR-15a-5p decreased the proliferation, motility, invasiveness and angiogenic potential and increased apoptosis when combined with docetaxel. Alteration of this regulatory circuit causes poor overall survival outcome in ovarian cancer patients. These results highlight miR-15a-5p and miR-25-3p as key regulators of miR-18a-3p expression and its downstream target K-RAS, through direct modulation of hnRNPA1 expression. Our results demonstrate the therapeutic potential of inhibiting miR-25-3p and miR-15a-5p and the use of miR-18a-3p/KRAS ratio as a prominent outcome prognostic factor.
Supplementary Figure Legends, Materials and Methods, and Table 1. Supplementary Figure Legends, Supplementary Material and Methods for RNA isolation, cDNA synthesis, and quantification of RNA species, Supplementary Table 1. Primer Sequences.
Supplementary Figures 1-7. Supplementary Figure 1. (A) Capan-2 animal protocol. Supplementary Figure 2. Effects of the combination of ZA with nab-paclitaxel on the mRNA levels of alpha-SMA and Rap1A in vivo. Supplementary Figure 3. (A) Reduction of pancreatic tumor volume by Gem alone or ZA alone. Supplementary Figure 4. Cell viability assessed by MTS assay. Supplementary Figure 5. Isobologram analysis. Supplementary Figure 6. Combination of ZA with nab-paclitaxel decrease fibronectin levels in vitro and laminin levels in vivo. Supplementary Figure 7. Mechanistic association of ZA and nab-paclitaxel.
Supplementary Table S1 Clinical characteristics of two chronic lymphocytic leukemia patient datasets; Supplementary Table S2 Clinical characteristics of two lung cancer patient datasets; Supplementary Table S3 Clinical characteristics of the ALL dataset; Supplementary Table S4 Integrated function and pathway analysis on 248 experimentally validated targets of miR-155; Supplementary Table S5 Univariate and multivariate analyses of survival with patient characteristics and miR-155 and TP53 expression as categorical and continuous variables in different patient cohorts; Supplementary Table S6 Estimate of Cox model and multivariate Cox model, as well as the HR estimated based on the model for miR-155 high and TP53 low vs. miR-155 low and TP53 high.
Sepsis remains a leading cause of death for humans and currently has no pathogenesis-specific therapy. Hampered progress is partly due to a lack of insight into deep mechanistic processes. In the past decade, deciphering the functions of small noncoding miRNAs in sepsis pathogenesis became a dynamic research topic. To screen for new miRNA targets for sepsis therapeutics, we used samples for miRNA array analysis of PBMCs from patients with sepsis and control individuals, blood samples from 2 cohorts of patients with sepsis, and multiple animal models: mouse cecum ligation puncture-induced (CLP-induced) sepsis, mouse viral miRNA challenge, and baboon Gram+ and Gram- sepsis models. miR-93-5p met the criteria for a therapeutic target, as it was overexpressed in baboons that died early after induction of sepsis, was downregulated in patients who survived after sepsis, and correlated with negative clinical prognosticators for sepsis. Therapeutically, inhibition of miR-93-5p prolonged the overall survival of mice with CLP-induced sepsis, with a stronger effect in older mice. Mechanistically, anti-miR-93-5p therapy reduced inflammatory monocytes and increased circulating effector memory T cells, especially the CD4+ subset. AGO2 IP in miR-93-KO T cells identified important regulatory receptors, such as CD28, as direct miR-93-5p target genes. In conclusion, miR-93-5p is a potential therapeutic target in sepsis through the regulation of both innate and adaptive immunity, with possibly a greater benefit for elderly patients than for young patients.
Supplementary Figures 1-6. Supplementary Figure S1: In vivo and in vitro effects of ZA on apoptosis. Supplementary Figure S2: Nab-paclitaxel inhibits tube formation.Supplementary Figure S3: RPPA analysis in HeyA8 MDR treated with ZA. Supplementary Figure S4: Functional changes induced by ZA in HeyA8 MDR. Supplementary Figure S5: ZA decreases angiogenic factors. Supplementary Figure S6: ZA inhibits cell invasion
Clinical correlation of miR-155 expression with survival in leukemia. Kaplan-Meier survival analysis for patients expressing high levels of miR-155 vs. low levels of miR-155 in two CLL cohorts, CLL - NEJM (A) and CLL - Italy (B), and in one ALL cohort, ALL - MDACC (C).
High MET expression in ACC patients (S1); High MET mRNA expression levels in ACC (S2); cMET signaling is activated in ACC (S3); Increased HGF/cMET signaling is associated with enhanced proliferation and reduced apoptosis in tumors from ACC patients (S4); HGF stimulates NCI-H295R ACC cell proliferation (S5); HGF/cMET signaling is important for ACC cell energy metabolism (S6).
<p>Basic patients characteristics of the cohort used for serum HGF measurements ; Patients characteristics of second TMA ; Genes with significantly (P {less than or equal to} 0.05, absolute value of log ratio > 0.1) changed expression in tumors from ACC patients (dataset GSE10927) relative to expression in normal adrenocortical tissues ; Biological processes Significantly (P<0.05) changed in tumors from ACC patients with high MET expression relative to tumors with low MET expression (dataset GSE10927) as presented in Figure 2a ; Genes significantly (P {less than or equal to} 0.05, absolute value of log ratio > 0.1) changed in tumors from ACC patients with high MET expression compared to those with low MET expression (dataset GSE10927) ; Gene set enrichment analysis of ACC patients' cohort for genes related to cell proliferation (dataset GSE10927) ; Gene set enrichment analysis of ACC patients' cohort for genes related to the negative regulation of cell apoptosis (dataset GSE10927) ; Gene set enrichment analysis of ACC patients' cohort for genes related to cell proliferation (dataset GSEA49278) ; Gene set enrichment analysis of ACC patients' cohort for genes related to the negative regulation of cell apoptosis (dataset GSEA49278) ; Drug metabolism-related genes with significantly (P {less than or equal to} 0.05, absolute value of log ratio > 0.1) changed expression in tumors from ACC patients (dataset GSE10927) with high MET expression relative to those with low MET expression ; Gene set enrichment analysis detail of ACC patients' cohort for genes associated with resistance and metabolism of cisplatin, etoposide and doxorubicin (dataset GSEA10927) ; Gene set enrichment analysis detail of ACC patients' cohort for genes associated with resistance and metabolism of cisplatin, etoposide and doxorubicin (dataset GSEA49278) .</p>
Supplementary Table Legend from Hepatocyte Growth Factor/cMET Pathway Activation Enhances Cancer Hallmarks in Adrenocortical Carcinoma
In vivo orthotopic lung cancer model for the role of miR-155 in chemoresistance. (A) Injection and treatment schedule for CDDP (green arrows) and anti-miR negative control (NC) or anti-miR-155 liposomal nanoparticles (red stars) for four different treatment groups: mice that were injected with A549-LVEV cells and untreated (group 1), injected with A549-LVEV cells and treated with anti-miR-NC and CDDP (group 2), injected with A549-155LV cells and treated with anti-miR-NC and CDDP (group 3), and injected with A549-155LV cells and treated with anti-miR-155 and CDDP (group 4). (B) Representative pictures of dissected mice belonging to each of the treatment groups described in panel A of this Figure. Tumor nodules are marked by dotted white circles. (C-D) Graphs of the primary tumor size (C) and aggregate mass of nodules in mediastinum (D) of the four treatment groups mentioned above. (E) In situ hybridization for miR-155 for each of the four treatment groups mentioned above. (F) Immunohistochemical analysis for Ki-67 (proliferation) and CD31 (angiogenesis), as well as the TUNEL assay (apoptosis) and TP53 immunostaining for each of the four treatment groups mentioned above.
背景与目的 2型糖尿病(type Ⅱ diabetes mellitus,DM2)是包括乳腺癌在内的多种癌症的危险因素。目前,尚未建立可用于研究的糖尿病乳腺癌小鼠模型。另外,调节癌症生长的糖尿病信号通路也尚未明确。在本研究中,我们建立了一个糖尿病乳腺癌小鼠模型,并证实了糖尿病在乳腺癌进展中的影响。方法通过将瘦素受体突变(Lepr db/+ )小鼠和MMTV-ErbB2/neu小鼠杂交,成功构建了人表皮生长因子受体2阳性(human epidermal growth factor receptor 2,Her2 + 或ERBB2)的乳腺癌转基因小鼠模型。用抗糖尿病药物治疗该小鼠模型来评价治疗DM2对肿瘤生长的影响。用磁共振波谱成像分析肿瘤代谢情况。结果 用二甲双胍/罗格列酮治疗MMTV-ErbB2/Lepr db/db 小鼠模型可降低血清胰岛素水平,延长生存,降低肿瘤累积发生率,抑制肿瘤进展。超极化 13 C标记的丙酮酸/乳酸转换代谢流降低,表明抗胰岛素抵抗治疗抑制了体内实验中肿瘤糖酵解。用二甲双胍处理MMTV-ErbB2/Lepr db/db 转基因小鼠来源的肿瘤细胞,降低了耗氧量和乳酸产量,使细胞代谢发生了重新编程。二甲双胍可降低Myc和丙酮酸激酶M2型同工酶(pyruvate kinase isozyme 2,PKM2)的表达,引起代谢重编程。另外,二甲双胍可阻断mTOR/AKT信号通路并改变脂肪因子谱。结论 MMTV-ErbB2/Lepr db/db 转基因小鼠模型可用于糖尿病HER2 + 人乳腺癌的研究。本研究明确了糖尿病状态下HER2 + 人乳腺癌中失调的信号通路,该通路可被抗胰岛素抵抗治疗干预。
Immunosenescence is described as age-associated changes within the immune system that are responsible for decreased immunity and increased cancer risk. Physically active individuals have fewer ‘senescent’ and more naïve T-cells compared to their sedentary counterparts, but it is not known if exercise training can rejuvenate ‘older looking’ T-cell profiles. We determined the effects of 12-weeks supervised exercise training on the frequency of T-cell subtypes in peripheral blood and their relationships with circulating levels of the muscle-derived cytokines (i.e. ‘myokines’) IL-6, IL-7, IL-15 and osteonectin in older women at high risk of breast cancer. The intervention involved 3 sessions/week of either high intensity interval exercise (HIIT) or moderate intensity continuous exercise (MICT) and were compared to an untrained control (UC) group. HIIT decreased total granulocytes, CD4+ T-cells, CD4+ naïve T-cells, CD4+ recent thymic emigrants (RTE) and the CD4:CD8 ratio after training, whereas MICT increased total lymphocytes and CD8 effector memory (EM) T-cells. The change in total T-cells, CD4+ naïve T-cells, CD4+ central memory (CM) T-cells and CD4+ RTE was elevated after MICT compared to HIIT. Changes in $$ \dot{\mathrm{V}}{\mathrm{O}}_{2\max } $$ after training, regardless of exercise prescription, was inversely related to the change in highly differentiated CD8+ EMRA T-cells and positively related to changes in β2-adrenergic receptor (β2-AR) expression on CM CD4+ and CM CD8+ T-cells. Plasma myokine levels did not change significantly among the groups after training, but individual changes in IL-7 were positively related to changes in the number of β2-AR expressing CD4 naïve T cells in both exercise groups but not controls. Further, CD4 T-cells and CD4 naive T-cells were negatively related to changes in IL-6 and osteonectin after HIIT but not MICT, whereas CD8 EMRA T-cells were inversely related to changes in IL-15 after MICT but not HIIT. Aerobic exercise training alters the frequency of peripheral T-cells associated with immunosenescence in middle aged/older women at high risk of breast cancer, with HIIT (pro-senescent) and MICT (anti-senescent) evoking divergent effects. Identifying the underlying mechanisms and establishing whether exercise-induced changes in peripheral T-cell numbers can alter the risk of developing breast cancer warrants investigation.
Purpose Preclinical evidence suggests that natural killer cell (NK-cell) function and myokines facilitate the protective effects of exercise for breast cancer prevention. Since higher-intensity exercise acutely promotes greater mobilization and larger changes in NK-cell cytotoxicity than lower-intensity, high-intensity interval training (HIIT) might offer increased immune protection compared to moderate-intensity continuous-training (MICT). This study compared a 12-week HIIT program to a 12-week MICT program and usual care on changes in resting NK-cell function and circulating myokines among women at high risk for breast cancer. Methods Thirty-three women were randomized to HIIT, MICT, or usual care, for a supervised exercise intervention. Blood was collected at baseline and end-of-study. The cytotoxic activity of CD3−/CD56+ NK-cells against the K562 target cell line in vitro was determined by flow cytometry. Circulating myokines (IL-15, IL-6, irisin, OSM, osteonectin, IL-7) were assessed with luminex multiplex assays and ELISA. One-way ANOVA and paired sample t-tests assessed between- and within-group differences, respectively. Pearson correlation coefficients determined relationships between baseline fitness and change variables. Results Significant differences were not observed between groups for change in NK-cell function or circulating myokines ( p > 0.05). Significant correlations were only observed for baseline peak aerobic capacity (ml/kg/min) and change in NK-cell-specific lysis ( r = − 0.43, p = 0.02) and hemacytotoxicity for the total sample ( r = − 0.46, p = 0.01). Conclusion Our findings suggest that exercise intensity may not significantly impact change in resting NK-cell function and circulating myokines among women at high risk for breast cancer. Structured exercise training may have a larger impact on NK-cell function in those with lower levels of cardiorespiratory fitness. Clinical trial registration: NCT02923401; Registered on October 4, 2016
Type II diabetes mellitus (DM2) is a significant risk factor for cancers, including breast cancer. However, a proper diabetic breast cancer mouse model is not well-established for treatment strategy design. Additionally, the precise diabetic signaling pathways that regulate cancer growth remain unresolved. In the present study, we established a suitable mouse model and demonstrated the pathogenic role of diabetes on breast cancer progression. We successfully generated a transgenic mouse model of human epidermal growth factor receptor 2 positive (Her2 + or ERBB2) breast cancer with DM2 by crossing leptin receptor mutant ( Lepr db/+ ) mice with MMTV- ErbB2 /neu) mice. The mouse models were administrated with antidiabetic drugs to assess the impacts of controlling DM2 in affecting tumor growth. Magnetic resonance spectroscopic imaging was employed to analyze the tumor metabolism. Treatment with metformin/rosiglitazone in MMTV- ErbB2 / Lepr db/db mouse model reduced serum insulin levels, prolonged overall survival, decreased cumulative tumor incidence, and inhibited tumor progression. Anti-insulin resistance medications also inhibited glycolytic metabolism in tumors in vivo as indicated by the reduced metabolic flux of hyperpolarized 13 C pyruvate-to-lactate reaction. The tumor cells from MMTV- ErbB2 / Lepr db/db transgenic mice treated with metformin had reprogrammed metabolism by reducing levels of both oxygen consumption and lactate production. Metformin decreased the expression of Myc and pyruvate kinase isozyme 2 (PKM2), leading to metabolism reprogramming. Moreover, metformin attenuated the mTOR/AKT signaling pathway and altered adipokine profiles. MMTV- ErbB2 / Lepr db/db mouse model was able to recapitulate diabetic HER2 + human breast cancer. Additionally, our results defined the signaling pathways deregulated in HER2 + breast cancer under diabetic condition, which can be intervened by anti-insulin resistance therapy.