scholarly journals Cyclin D1 Determines Mitochondrial Function InVivo

2006 ◽  
Vol 26 (14) ◽  
pp. 5449-5469 ◽  
Author(s):  
Toshiyuki Sakamaki ◽  
Mathew C. Casimiro ◽  
Xiaoming Ju ◽  
Andrew A. Quong ◽  
Sanjay Katiyar ◽  
...  

ABSTRACT The cyclin D1 gene encodes a regulatory subunit of the holoenzyme that phosphorylates and inactivates the pRb tumor suppressor to promote nuclear DNA synthesis. cyclin D1 is overexpressed in human breast cancers and is sufficient for the development of murine mammary tumors. Herein, cyclin D1 is shown to perform a novel function, inhibiting mitochondrial function and size. Mitochondrial activity was enhanced by genetic deletion or antisense or small interfering RNA to cyclin D1. Global gene expression profiling and functional analysis of mammary epithelial cell-targeted cyclin D1 antisense transgenics demonstrated that cyclin D1 inhibits mitochondrial activity and aerobic glycolysis in vivo. Reciprocal regulation of these genes was observed in cyclin D1-induced mammary tumors. Cyclin D1 thus integrates nuclear DNA synthesis and mitochondrial function.

Hypertension ◽  
2000 ◽  
Vol 36 (suppl_1) ◽  
pp. 707-707
Author(s):  
Quy N Diep ◽  
Mohammed El Mabrouk ◽  
Rhian M Touyz ◽  
Ernesto L Schiffrin

P79 Angiotensin II (Ang II) is an important modulator of cell growth via AT 1 receptors, as demonstrated both in vivo and in vitro . Here, we investigated the role of different proteins involved in the cell cycle, including cyclin D1, cyclin-dependent kinase 4 (cdk4) and cdk inhibitors p21 and p27 in blood vessels of Ang II-infused rats and the effect therein of the AT 1 receptor antagonist losartan. Male Sprague Dawley rats were infused for 7 days with Ang II (120 ng/kg/min s.c.) and/or treated with losartan (10 mg/kg/day orally). DNA synthesis in mesenteric arteries was evaluated by radiolabeled 3 H-thymidine incorporation. The expression of p21, p27, cyclin D1, cdk4 and E2F, which play critical roles during G1-phase of the cell cycle process, was examined by Western blot analysis. Tail cuff systolic blood pressure (mmHg) was elevated (p<0.05, n=9) in Ang II-infused rats (161.3±8.2) vs. controls (110.1±5.3) and normalized by losartan (104.4±3.2). Radiolabeled 3 H-thymidine incorporation (cpm/100 μg DNA) showed that Ang II-infusion significantly increased DNA synthesis (152±5 vs. 102±6, p<0.05). Expression of p21 and p27 was significantly decreased in the Ang II group to 23.2±10.4% and 10.3±5.3% of controls, respectively, whereas expression of cyclin D1 and cdk4 was significantly increased in the Ang II group to 213.7±8% and 263.6±37% of controls, respectively. These effects induced by Ang II infusion was normalized in the presence of losartan. Ang II had no effect on the expression of E2F. Thus, when AT 1 receptors are stimulated in vivo , DNA synthesis is enhanced in blood vessels by activation of cyclin D1 and cdk4. Reduction in cell cycle kinase inhibitors p21 and p27 may contribute to activation of growth induced by in vivo AT 1 receptor stimulation.


2003 ◽  
Vol 23 (17) ◽  
pp. 6159-6173 ◽  
Author(s):  
Chenguang Wang ◽  
Nagarajan Pattabiraman ◽  
Jian Nian Zhou ◽  
Maofu Fu ◽  
Toshiyuki Sakamaki ◽  
...  

ABSTRACT The cyclin D1 gene is overexpressed in human breast cancers and is required for oncogene-induced tumorigenesis. Peroxisome proliferator-activated receptor γ (PPARγ) is a nuclear receptor selectively activated by ligands of the thiazolidinedione class. PPARγ induces hepatic steatosis, and liganded PPARγ promotes adipocyte differentiation. Herein, cyclin D1 inhibited ligand-induced PPARγ function, transactivation, expression, and promoter activity. PPARγ transactivation induced by the ligand BRL49653 was inhibited by cyclin D1 through a pRB- and cdk-independent mechanism, requiring a region predicted to form an helix-loop-helix (HLH) structure. The cyclin D1 HLH region was also required for repression of the PPARγ ligand-binding domain linked to a heterologous DNA binding domain. Adipocyte differentiation by PPARγ-specific ligands (BRL49653, troglitazone) was enhanced in cyclin D1−/− fibroblasts and reversed by retroviral expression of cyclin D1. Homozygous deletion of the cyclin D1 gene, enhanced expression by PPARγ ligands of PPARγ and PPARγ-responsive genes, and cyclin D1−/− mice exhibit hepatic steatosis. Finally, reduction of cyclin D1 abundance in vivo using ponasterone-inducible cyclin D1 antisense transgenic mice, increased expression of PPARγ in vivo. The inhibition of PPARγ function by cyclin D1 is a new mechanism of signal transduction cross talk between PPARγ ligands and mitogenic signals that induce cyclin D1.


Blood ◽  
2019 ◽  
Vol 134 (Supplement_1) ◽  
pp. 4408-4408
Author(s):  
Alejandra Ortiz-Ruiz ◽  
Yanira Ruiz-Heredia ◽  
Mehmet Samur ◽  
Pedro Aguilar-Garrido ◽  
Maria Luz Morales ◽  
...  

Introduction Mitochondria controls crucial biological pathways such as proliferation, apoptosis and cell growth. However, the implication of mitochondrial activity in the pathogenesis of Multiple Myeloma (MM) still remains unknown and only a few studies connect the mitochondrial status and MM. We planned to decipher the role of the mitochondria in the MM mechanism of resistance and the potential exploitation of mitochondrial activity as a functional target in the MM therapy. Methods In order to understand the role of mitochondria in MM and its therapeutic exploitation, firstly we explored factors involved in the mitochondrial function (c-Myc, HNRNPK, TFAM, NRF1 and EF-Tu) from 770 MM patients RNAseq CoMMpass℠ data. Furthermore, we performed different studies in our MM 77 patients set: gene expression validation by RT-PCR (n=40), protein expression (COXII) by IHC (n=28); and mitochondrial activity (COX activity) by histoenzymatic-HE assay (n=11). Additionally, we analyzed the impact of bortezomib in the mitochondria regulator CD38 in 50 samples (n=30 RVD, n=20 RD regimens), at diagnosis and 6/9 months follow-up MM patients. We have tested the effect of tigecycline, a mitochondrial inhibitor, in three regimens: monotherapy, pre-treament of tigecycline (48h) with consecutive bortezomib treatment, and in combination with bortezomib in the MM cell lines JJN3, L363 and NCI-H929. To characterize the molecular mechanisms underlying the cytotoxic effect of tigecycline we analysed mitochondria load and activity (MitoTracker green and red) OXPHOS expression by WB and COX2 activity by HE assay. Finally, we followed an in vivo experiment in NSG mice (n=40) engrafted with the JJN3-GFP cell line (1x106) via tail vein and treated by 4 weeks. Analysis of the in vivo imaging and survival curve were obtained. Results The higher expression of factors involved in the mitochondrial function such as: c-Myc, HNRNPK, NRF1 and EF-Tu predict MM poor outcomes (Fig.1A). Furthermore, mitochondrial representative gene and protein expression and activity were found increased in MM relapse stage patients. We showed overexpression of C-Myc, TFAM and EF-Tu on the MM relapsed group (Fig. 1B). Moreover, IHC reveals overexpression of mitochondrial COXII protein in relapse MM patients (p-value ** < 0.001) (Fig. 1C). By functional assays we have demonstrated that gene/protein overexpression drives to an increase of activity (COX HE) in MM at relapse (p-value ***< 0.0001). (Fig. 1D). Moreover, we observed an increase of CD38 expression in patients with RVD regimen, but not without bortezomib (RD regimen) (Fig. 1E). Together these results suggest elevation of mitochondrial activity plays a role in the mechanism of resistance to treatment and/or progression of MM and the consequent relapse of the patients. In vitro studies with tigecyline and bortezomib showed cytotoxic effects in three MM cell lines (IC50 JJN3 11,91 µM; IC50 L363 10,21 µM and NCI-H929 26,37 µM, p-value *< 0.05). Moreover, bortezomib and tigecyline showed high levels of synergism (CI 0,19) (Fig. 1F). In fact, the "conditioning" treatment with tigecyline revert the resistance to bortezomib. The cells treated with tigecycline reflect diminishing in the mitochondria respiration by MitoTracker assays, decrease of COX activity and respiratory chain complexes, suggesting a reduction of mitochondrial activity (Fig. 1G). These molecular effects are exacerbated by the tigecycline and bortezomib combination. However, bortezomib monotherapy not decrease or inclusive, increase, all the molecular mechanisms of mitochondria studied. Finally, mice groups treated with tigecycline alone or in combination with bortezomib reported a better survival and lower JJN3-GFP infiltration (p-value *< 0.05) (Fig. 1H). Conclusion To sum up, these findings highlight new vulnerabilities in myeloma cells, suggesting a potential therapeutic target in the treatment of the disease. The metabolic activation of myeloma cells with the collaboration of CD38 and/or c-Myc overexpression or his regulators (e.g. HNRNPK) in response to bortezomib treatment lead an increase of mitochondria respiration. These data confirm the important role of mitochondria in the loss of efficacy in inhibitors of proteasome treatment. Thus, mitochondrial respiration emerges as a novel target in bortezomib relapsed MM patients, and, potentially, in multiple c-Myc, HNRNPK and CD38 overexpression neoplasms. Disclosures Munshi: Adaptive: Consultancy; Oncopep: Consultancy; Janssen: Consultancy; Takeda: Consultancy; Amgen: Consultancy; Celgene: Consultancy; Abbvie: Consultancy.


1993 ◽  
Vol 3 (1) ◽  
pp. 15-23 ◽  
Author(s):  
M. Ashraf ◽  
C. M. Bray

AbstractOsmopriming of leek seeds (Allium porrum L.) in PEG 6000 solution (−10 bars) at 15°C for 14 days leads to reductions in both the spread of germination and mean time to germination, especially in low-vigour seed lots. In vivo methyl [3H]-thymidine pulse-labelling studies have demonstrated constant and low levels of DNA synthesis in leek embryo tissue during the osmopriming treatment. DNA synthesis during osmopriming was not inhibited by aphidicolin, an inhibitor of nuclear DNA replication. Replicative and repair-type DNA synthesis was investigated using BND-cellulose chromatography and these studies revealed that about 30% of the DNA synthesis after 1 day of priming was of a repair-type. DNA repair-type synthesis contributed to approximately 20% of the [3H]thymidine incorporated into DNA during the rest of the priming period in embryo tissue from both high-vigour and low-vigour seed lots. After 1 day of germination following priming, enhanced levels of both replicative and repair-type DNA synthesis were demonstrated. The replicative type of DNA synthesis detected in leek embyros during the priming period was not inhibited by aphidicolin and appears to represent a significant level of mitochondrial DNA synthesis. DNA synthesis could be detected in both nuclei and mitochondria of leek embryo tissue during the osmopriming treatment in the absence of any detectable cell division.


2011 ◽  
Vol 18 (4) ◽  
pp. C19-C24 ◽  
Author(s):  
Carol A Lange ◽  
Douglas Yee

The majority (∼70%) of breast cancers are steroid hormone receptor (SR) positive at the time of diagnosis. Endocrine therapies that target estrogen receptor α (ERα) action (tamoxifen, toremifene, fulvestrant) or estrogen synthesis (aromatase inhibitors: letrozole, anastrozole, exemestane; or ovarian suppression) are a clinical mainstay. However, up to 50% of SR+ breast cancers exhibit de novo or acquired resistance to these clinical interventions. Mechanisms of resistance to endocrine therapies often include upregulation and/or activation of signal transduction pathways that input to cell cycle regulation. Cyclin D1, the regulatory subunit of cyclin-dependent protein kinases four and six (CDK4/6) serves as a convergence point for multiple signaling pathways. In a recent paper entitled ‘Therapeutically Activating Retinoblastoma (RB): Reestablishing Cell Cycle Control in Endocrine Therapy-Resistant Breast Cancer’, Thangavel et al. reported maintenance of cyclin D1 expression and RB phosphorylation in the face of ER ablation in multiple breast cancer cell line models of endocrine resistance. RB-dysfunction defined a unique gene signature that was associated with luminal B-type breast cancer and predictive of poor response to endocrine therapies. Notably, a new CDK4/6 inhibitor (PD-0332991) was capable of inducing growth arrest by a mechanism that was most consistent with cellular senescence. In this review, these findings are discussed in the context of SRs as important mediators of cell cycle progression, and the frequent loss of cell cycle checkpoint control that typifies breast cancer progression. These studies provide renewed hope of effectively stabilizing endocrine-resistant breast cancers using available complementary (to endocrine-based therapies) cytostatic agents in the form of CDK4/6 inhibitors.


2021 ◽  
Vol 22 (12) ◽  
pp. 6640
Author(s):  
Magdalena Cal ◽  
Irwin Matyjaszczyk ◽  
Karolina Filik ◽  
Rafał Ogórek ◽  
Young Ko ◽  
...  

3-bromopuryvate (3-BP) is a compound with unique antitumor activity. It has a selective action against tumor cells that exhibit the Warburg effect. It has been proven that the action of 3-BP is pleiotropic: it acts on proteins, glycolytic enzymes, reduces the amount of ATP, induces the formation of ROS (reactive oxygen species), and induces nuclear DNA damage. Mitochondria are important organelles for the proper functioning of the cell. The production of cellular energy (ATP), the proper functioning of the respiratory chain, or participation in the production of amino acids are one of the many functions of mitochondria. Here, for the first time, we show on the yeast model that 3-BP acts in the eukaryotic cell also by influence on mitochondria and that agents inhibiting mitochondrial function can potentially be used in cancer therapy with 3-BP. We show that cells with functional mitochondria are more resistant to 3-BP than rho0 cells. Using an MTT assay (a colorimetric assay for assessing cell metabolic activity), we demonstrated that 3-BP decreased mitochondrial activity in yeast in a dose-dependent manner. 3-BP induces mitochondrial-dependent ROS generation which results in ∆sod2, ∆por1, or ∆gpx1 mutant sensitivity to 3-BP. Probably due to ROS mtDNA lesions rise during 3-BP treatment. Our findings may have a significant impact on the therapy with 3-BP.


2020 ◽  
Vol 11 (1) ◽  
Author(s):  
Yi Bao ◽  
Gokce Oguz ◽  
Wee Chyan Lee ◽  
Puay Leng Lee ◽  
Kakaly Ghosh ◽  
...  

AbstractHER2-targeted therapy has yielded a significant clinical benefit in patients with HER2+ breast cancer, yet disease relapse due to intrinsic or acquired resistance remains a significant challenge in the clinic. Here, we show that the protein phosphatase 2A (PP2A) regulatory subunit PPP2R2B is a crucial determinant of anti-HER2 response. PPP2R2B is downregulated in a substantial subset of HER2+ breast cancers, which correlates with poor clinical outcome and resistance to HER2-targeted therapies. EZH2-mediated histone modification accounts for the PPP2R2B downregulation, resulting in sustained phosphorylation of PP2A targets p70S6K and 4EBP1 which leads to resistance to inhibition by anti-HER2 treatments. Genetic depletion or inhibition of EZH2 by a clinically-available EZH2 inhibitor restores PPP2R2B expression, abolishes the residual phosphorylation of p70S6K and 4EBP1, and resensitizes HER2+ breast cancer cells to anti-HER2 treatments both in vitro and in vivo. Furthermore, the same epigenetic mechanism also contributes to the development of acquired resistance through clonal selection. These findings identify EZH2-dependent PPP2R2B suppression as an epigenetic control of anti-HER2 resistance, potentially providing an opportunity to mitigate anti-HER2 resistance with EZH2 inhibitors.


Blood ◽  
2013 ◽  
Vol 122 (21) ◽  
pp. 3094-3094
Author(s):  
Yu Zhang ◽  
Yong Zhang ◽  
Yuji Mishima ◽  
Michele Moschetta ◽  
Wenjing Zhang ◽  
...  

Abstract Background Proline-rich tyrosine kinase (Pyk2) is a non-receptor tyrosine kinase which belongs to the focal adhesion kinase (FAK) family. It is known to facilitate TNF-α induced EMT process in solid tumors, but this has not been investigated in the field of hematologic malignancies. We therefore dissected the role of PyK2 in multiple myeloma (MM) by looking at its ability to modulate MM biology both in vitro and in vivo. Methods Lentiviral packaged small hairpin RNA (shRNA), overexpression plasmid, related scramble probe and empty vector were introduced into MM1.S (GFP+/Luc+) cell line, to generate stable Pyk2 K.D. (#A2 and #A4), Pyk2 K.I., and control cells, respectively. The efficiency of knock-down or knock-in was validated by qPCR and immunoblotting. Cell viability and cell proliferation were detected by using CellTiter-Glo® luminescent assay and thymidine uptake, respectively. Gain- and loss-of fucntion studies were also performed on MM cells in presence of primary bone marrow stromal cells isolated from MM patients (MM-BMSCs). Adhesion of Pyk2 stable cells to fibronectin was measured by using a ECM cell adhesion assay kit. The synergistic effects of Pyk2 with Bortezomib was determined through calculating the DNA synthesis of Pyk2 K.D. cells treated with Bortezomib (2.5-5µM), using Calcusyn software and Chou-Talalay method. Pyk2 K.D. stable cells were intravenously injected into SCID-Biege mice to generate xenograft model. In vivo tumor growth was observed by Bioluminescent Imaging. Pyk2 -dependent-modulation of Wnt/β-catenin pathway signaling was indentified by using immunobloting. Results Knockdown of Pyk2 in MM cells significantly repressed cell viability and proliferation, as well as their adhesive ability to BMSCs, compared to scramble control cells. Moreover, Pyk2 knockdown induced de-adhesion of MM cells from BMSCs thus inducing chemosensitivity of tumor cells to Bortezomib. We next corroborated our findings by studying Pyk2 knock-in MM cells, and showed that stably upregulated Pyk2 expression promoted MM cell growth as measured by either ATP quantitation or DNA synthesis. Upregulation of Pyk2 expression also stablized the adhesion of MM cells to BMSCs, leading to a drug-resistance of MM cells to Bortezomib, compared with vector control cells. Pyk2 related tumor growth was further validated by establishing a xenograft mouse model. By using bioluminescence imaging, we found a significantly lower tumor burden in mice injected with Pyk2 K.D. cells, compared to mice controls (injected with scramble cells). We next dissected the effect of Pyk2 in modulation of cellular signaling in MM cells by using immunoblotting, and demonstrated that Pyk2 played an important role in regulating β-catenin signaling. Indeed, knockdown of Pyk2 induced GSK3β-phosphorylation, leading to increased β-catening-phosphorylation, thus resulting in β-catenin degradation and inhibited translocation to nucleus. Importantly, Pyk2 K.D. cells presented with reduced expression of c-myc and cyclin D1 at protein level. Conversely, Pyk2 overexpression enhanced β-catenin expression together with c-myc and cyclin D1 up-regulation, thus confirming the role of Pyk2 in modulating Wnt/β-catenin signaling activity in MM. Conclusion These findings indicate that Pyk2 exhibits pro-oncogenic properties in MM through modulation of Wnt/β-catenin signaling. Therefore, Pyk2 represents a novel therapeutic target in MM. Disclosures: Ghobrial: Sanofi: Research Funding; Noxxon: Research Funding; BMS: Advisory board, Advisory board Other, Research Funding; Onyx: Advisoryboard Other.


Molecules ◽  
2020 ◽  
Vol 25 (20) ◽  
pp. 4606
Author(s):  
Ashraf N. Abdalla ◽  
Amal Qattan ◽  
Waleed H. Malki ◽  
Imran Shahid ◽  
Mohammad Akbar Hossain ◽  
...  

The hormonal luminal-A is the most pre-dominant sub type of breast cancer (BC), and it is associated with a high level of cyclin D1 in Saudi patients. Tamoxifen is the golden therapy for hormonal BC, but resistance of cancer cells to tamoxifen contributes to the recurrence of BC due to many reasons, including high levels of AIB1 and cyclin D1. Overcoming drug resistance could be achieved by exploring alternative targetable therapeutic pathways and new drugs or combinations. The objective of this study was to determine the differentially enriched pathways in 12 samples of Saudi women diagnosed with luminal-A using the PamChip peptide microarray-based kinase activity profiling, and to compare the activity of HAA2020 and dinaciclib with tamoxifen in singles and combinations in the MCF7 luminal-A cell line. Our results of network and pathway analysis of the 12 samples highlighted the importance of VEGFR and CDKs in promoting luminal-A breast cancer. The activation of VEGF signaling via VEGFR-2 leads to activation of PI3K/AKT kinases and an increase of cell survival, and leads to activation of Hsp90, which induces the phosphorylation of FAK1, resulting in cytoskeleton remodeling. PLC-gamma 1 is also activated, leading to FAK-2 and PKC activation. Notably, the G1/S cell cycle phases and phosphorylation processes contribute to the top seven tumorigenesis processes in the 12 samples. Further, the MTT combination of HAA2020 and dinaciclib showed the best combination index (CI), was more clonogenic against MCF7 cells compared to the other combinations, and it also showed the best selectivity index (SI) in normal MRC5 cells. Interestingly, HAA2020 and dinaciclib showed a synergistic apoptotic and G1 cell cycle effect in MCF7 cells, which was supported by their synergistic CDK2, cyclin D1, and PCNA inhibition activities. Additionally, the combination showed VEGFR-2 and Hsp90 inhibition activities in MCF7 cells. The results show the significance of targeting VEGFR-2 and cyclin D1 in Saudi luminal-A breast cancer patients, and the effect of combining HAA2020 and dinaciclib on those targets in the MCF7 model. It also warrants further preclinical and in vivo investigations for the combination of HAA2020 and dinaciclib as a possible future second-line treatment for luminal-A breast cancers.


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