A small molecule STAT3 inhibitor, LLL12, enhances cisplatin‑ and paclitaxel‑mediated inhibition of cell growth and migration in human ovarian cancer cells

  • Authors:
    • Ruijie Zhang
    • Xiang Chen
    • Shengling Fu
    • Liang Xu
    • Jiayuh Lin
  • View Affiliations

  • Published online on: June 29, 2020     https://doi.org/10.3892/or.2020.7667
  • Pages: 1224-1232
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Abstract

Ovarian cancer is one of the most lethal cancer types in American women. The platinum agent cisplatin, and/or paclitaxel, remains the first‑line chemotherapy for ovarian cancer, but the treatment success is severely limited by chemoresistance. As previously reported, persistent STAT3 signaling is associated with resistance to cisplatin and paclitaxel. To investigate whether the STAT3 small molecule inhibitor LLL12 can enhance the treatment effect of cisplatin and paclitaxel in ovarian cancer cells, A2780, SKOV3, CAOV‑3 and OVCAR5 cells were treated with LLL12, cisplatin and paclitaxel, alone or combination, and cell viability, cell migration, cell growth and protein expression levels were then evaluated. It was found that, for all four human ovarian cancer cell lines, STAT3 phosphorylation was significantly inhibited by LLL12. The combined treatment of LLL12 with paclitaxel or LLL12 with cisplatin exerted significantly greater inhibition of cell viability, cell migration and cell growth than did monotherapy. In addition, LLL12 and cisplatin in combination, or the three drugs in combination, also led to greater inhibition of cell viability and cell migration than combined cisplatin and paclitaxel treatment, a standard treatment for ovarian cancer. The present results demonstrated that the STAT3 small molecule inhibitor LLL12 is a potent inhibitor of STAT3 phosphorylation, cell viability and migration in human ovarian cancer cells. Combining LLL12 with cisplatin or paclitaxel may be a viable therapeutic approach in the treatment of patients with ovarian cancer exhibiting persistent STAT3 signaling.

Introduction

Ovarian cancer accounts for ~5% of global cancer incidence and mortality among women, and is the fifth leading cause of cancer death among American women (1). The standard treatment regimen is cytoreductive surgery followed by a platinum-based regimen of primary chemotherapy (2). This chemotherapy regimen greatly improves patient five-year survival. However, the effect on long-term survival for advanced tumors is not as marked (36). The limited response to chemotherapy remains a major obstacle in the treatment of patients with advanced ovarian cancer (3).

For ovarian cancer, chemotherapy with cisplatin and/or paclitaxel remains the first-line treatment. Cisplatin can induce cell apoptosis by interfering with DNA repair mechanisms (7), while paclitaxel promotes the assembly of microtubules and inhibits microtubule depolymerization (8). However, the relapse rate of patients with advanced ovarian cancers is ~70%, due to chemoresistance (3,4). To enhance the chemosensitivity and reduce the recurrence rate, many types of combination therapies have been assessed (7). However, no ‘perfect’ therapeutic targets have been discovered. Therefore, there is an urgent need to find new therapeutic targets to overcome cisplatin and/or paclitaxel resistance.

As key mediators of cytokine signaling, STAT proteins have become a research focus due to their contribution to oncogenesis (912). In many human malignancies, STAT proteins, especially STAT3, are constitutively activated, and the activation rate in ovarian cancer is 94% (13). Many studies suggest that constitutively activated STAT3 participates in various processes key to malignant progression, such as promoting migration, invasion, cell proliferation, angiogenesis, epithelial-mesenchymal transition (EMT) and metastasis, and it can also induce multidrug chemoresistance (1318). In particular, cisplatin resistance and paclitaxel resistance has been reported to be associated with the overexpression of STAT3 (13,1922). Therefore, inhibitors of STAT3 may be used as novel anticancer therapeutics, combined with conventional chemotherapy.

STAT3 activation is induced by phosphorylation of the tyrosine 705 (Tyr705) residue. A STAT3 inhibitor, LLL12, was previously developed through structure-based drug design. Using Computer models with docking simulation, we found that LLL12 directly binds to the phosphoryl tyrosine 705(pTyr705) binding site (2324). Numerous experiments have been performed on LLL12, and it can inhibit STAT3 phosphorylation (Tyr705) and STAT3 activity in various human malignant tumors: Multiple myeloma cells, breast cancer cells and pancreatic cancer cells (2324). STAT3 downstream targets are consequently downregulated to induce cell apoptosis and the inhibition of cell proliferation, migration and colony formation (2324). However, in ovarian cancer, the function of LLL12 remains unclear.

LLL12 was assayed in four ovarian cancer cell lines (SKOV3, CAOV-3, A2780 and OVCAR5). Although none of these are cisplatin-resistant (or paclitaxel-resistant) ovarian cancer cloned cells, according to the published literature (25,26) and the authors' preliminary results (Figs. S1 and S2), SKOV3 and CAOV-3 cells are more resistant to cisplatin and paclitaxel than A2780 and OVCAR5 cells. In particular, of the high-grade serous human ovarian cancer cell lines, CAOV-3 is considerably more resistant to cisplatin and paclitaxel than OVCAR5.

The present study provides evidence that LLL12 inhibits STAT3 phosphorylation (Tyr705) to decrease the survival of human ovarian cancer cells, and targeting the STAT3 axis may enhance the chemotherapeutic efficiency of cisplatin and paclitaxel in ovarian cancer cells, which may also be key to overcoming cisplatin and paclitaxel resistance.

Materials and methods

Materials

The STAT3 inhibitor, LLL12, was synthesized by Professor Chenglong Li at the College of Pharmacy, Ohio State University (Columbus, OH, USA). The stock solution was 20 mM (in sterile DMSO) and was stored at −20°C.

Cell lines

Human ovarian cancer cell lines (A2780, SKOV3, CAOV-3 and OVCAR5), were purchased from the American Type Culture Collection. A2780, SKOV3 and CAOV-3 were maintained in DMEM (Corning, Inc.; cat. no. 10-013-CV) with 10% FBS (Sigma-Aldrich; Merck KGaA; cat. no. F2442) and 1% penicillin/streptomycin (PS); OVCAR5 cells were maintained in RPMI1640 medium (Corning, Inc.; cat. no. 10-040-CV) with 10% FBS and 1% PS. All cell lines were grown in a humidified 37°C incubator with 5% CO2.

Western blot analysis

Ovarian cancer cells were seeded in 10-cm plates at ~70% cell density. They were treated with LLL12 (A2780: 0.25, 0.5 or 1.0 µM; SKOV3: 1.0, 2.5 or 5.0 µM; CAOV-3: 1.0, 2.5 or 5.0 µM; and OVCAR5: 0.25, 0.5 or 1.0 µM) or DMSO. Then, the cells were cultured overnight before being harvested for western blot analysis. Ovarian cancer cells were lysed in cold lysis buffer (Cell Lysis Buffer, Cell Signaling Technology, Inc.; 0.5% 0.2 M PMSF, 0.5% 0.2 M NaF, 0.5% 0.2 M NaPP, 0.5% 0.1 M Na3VO4 and 4% 25X CP1) and determined using a Microplate BCA Protein Assay kit (Thermo Fisher Scientific, Inc.; cat. no. 23252). Then, equal amounts of proteins (40 µg) were separated by 10% SDS-PAGE. Proteins were transferred to a PVDF membrane at 350 mA for 110 min, and then were blocked with 5% milk for 1 h at room temperature and incubated with antibodies overnight at 4°C: Anti-phosphorylated (p)-STAT3 (Tyr705) (Cell Signaling Technology, Inc.; rabbit mAb; cat. no. NC-CST-9145S), STAT3 (Cell Signaling Technology, Inc.; Rabbit mAb; cat. no. 4904) and GAPDH (Cell Signaling Technology, Inc.; Rabbit mAb; cat. no. 2118S). All primary antibodies were diluted 1:1,000 in 5% milk. After washing in TBS with Tween-20 three times for 5 min, the membranes were blotted with the horseradish peroxidase-conjugated anti-rabbit IgG secondary antibody diluted 1:10,000 in 5% milk (Cell Signaling Technology, Inc.; cat. no. 7074) at room temperature for 1.5 h. The p-STAT3 protein were detected by West Femto Maximum Sensitivity Substrate (Thermo Fisher Scientific, Inc.; cat. no. 34096); the STAT3 and GAPDH proteins were detected by enhanced chemiluminescence substrate (PerkinElmer, Inc; cat. no. NEL104001EA). All membranes were scanned with a Storm Scanner (GE Healthcare). The basal level of p-STAT3 in all four cell lines were also tested using the same method.

MTT assay

A2780, SKOV3, CAOV-3 and OVCAR5 cells were seeded in 96-well microtiter plates at a density of 3,000 cells in 100 µl medium/well. On the second day, the cells were treated in each well with LLL12 (0.1, 1.0, 0.1 and 0.01 µM for A2780, SKOV3, CAOV-3 and OVCAR5, respectively), cisplatin (0.5, 2.5, 2.5 and 2.5 µM for A2780, SKOV3, CAOV-3 and OVCAR5, respectively), paclitaxel (5, 0.25, 0.5 and 0.25 µM for A2780, SKOV3, CAOV-3 and OVCAR5, respectively), a combination or the vehicle control (DMSO) at 37°C. After 72 h, 20 µl MTT (Roche Diagnostics) was added to each well. After being incubated for 4 h at 37°C, each well was supplemented with 150 µl N,N-dimethylformamide (certified ACS; Fisher Chemical; Thermo Fisher Scientific, Inc.) solubilization solution, followed by an incubation overnight protected from light at room temperature. The cell viability was assessed using the absorbance at 595 nm of each well. The DMSO cells were set at 100% and the cell viability of drug-treated cells was determined relative to that of DMSO cells. CompuSyn software (www.combosyn.com; 2005 release for Windows) was used to determine the combination index (CI). The CI value indicates an additive effect when equal to 1, an antagonistic effect when >1, and a synergistic effect when <1, based on the theorem of Chou and Talalay (27). The half-maximal inhibitory concentration (IC50) of cisplatin, paclitaxel and LLL12 in the four cell lines was also tested using the MTT assay. The cells were treated with at least five different concentrations of the corresponding drugs and the IC50 was calculated using GraphPad Prism 7 software (GraphPad Software, Inc.).

Wound healing/cell migration assay

A2780 and SKOV3 cells were seeded in 6-well plates, followed by incubation at 37°C overnight. When the cells reached 100% confluence, the monolayer was scratched using a 100-µl pipette tip. After washing with PBS twice, new medium (10% FBS) with DMSO, or LLL12, cisplatin, paclitaxel or a combination was added to each well. Cells were incubated at 37°C until the wounds in the DMSO wells were healed (18 h for SKOV3; 56 h for A2780). The inhibition of migration was observed by microscope (Nikon TS100 inverted microscope; Nikon Corporation; ×10 magnification) and measured using ImageJ software (National Institutes of Health; version 1.52). The formula for percentage wound healing was as follows: 100-[(final area/initial area) ×100%] (28). An accompanying MTT assay was performed at the same time; 20,000 cells/well were seeded in 96-well plates and treated with the same drugs to evaluate cell viability. The timepoints and the drug concentrations were the same as those for the migration assay.

Cell growth assay

For the cell growth assays, A2780, SKOV3, CAOV-3 and OVCAR5 cells were seeded in 12-well plates. The cell density was dependent on the growth ability of the cells (A2780: 0.5×104 cells/well; SKOV3: 1×104 cells/well; CAOV-3: 2.5×104 cells/well; and OVCAR5: 1×104 cells/well). Then, the cells were treated with DMSO (1 µl), or LLL12, cisplatin, paclitaxel or a combination. A2780 cells were treated with DMSO, or LLL12 (0.05 µmol/l), cisplatin (0.25 µmol/l), paclitaxel (10 nmol/l) or a combination. SKOV3 cells were treated with DMSO, or LLL12 (0.25 µmol/l), cisplatin (0.5 µmol/l), paclitaxel (10 nmol/l) or a combination. CAOV-3 cells were treated with DMSO, or LLL12 (0.05 µmol/l), cisplatin (0.25 µmol/l), paclitaxel (10 nmol/l) or a combination. OVCAR5 cells were treated with DMSO, or LLL12 (0.05 µmol/l), cisplatin (0.25 µmol/l), paclitaxel (10 nmol/l) or a combination. Cell numbers were counted on days 2, 4, 6 and 8 after treatment. Then, growth curves were drawn and the cell numbers on day 8 were compared.

Statistical analysis

Significance was determined using GraphPad Prism 7 software (GraphPad Software Inc.). The data are expressed as the mean ± SD from three repeats. One- and two-way ANOVA with Tukey's test was used to analyze the statistical differences between groups. P<0.05 was considered to indicate a statistically significant difference.

Results

STAT3 phosphorylation is inhibited by LLL12 in ovarian cancer cells

To examine the ability of LLL12 to inhibit STAT3 phosphorylation (Tyr705), western blot analysis was performed in ovarian cancer cells (A2780, SKOV3, CAOV-3 and OVCAR5). Compared with DMSO control, the p-STAT3 expression in A2780, SKOV3, CAOV-3 and OVCAR5 ovarian cancer cell lines was decreased after treatment with LLL12 (0.25-1.0 µM) (Fig. 1). Compared with cisplatin or paclitaxel alone, the combination of LLL12 with cisplatin or/and paclitaxel led to a greater inhibitory effect on p-STAT3. These results confirmed that in human ovarian cancer cell lines, LLL12 is a potent STAT3 inhibitor.

LLL12 combined with cisplatin or paclitaxel synergistically inhibits the cell viability of ovarian cancer cells

The first line chemotherapy for ovarian cancer is cisplatin combined with paclitaxel. Therefore, the present study first investigated whether LLL12 and cisplatin or paclitaxel could generate a more potent suppression of cell viability than any single agent alone in ovarian cancer cells. All four ovarian cancer cell lines were treated with different concentrations of LLL12, cisplatin, paclitaxel or a combination. After 72 h of treatment, the combination treatment of LLL12 with cisplatin or paclitaxel induced greater inhibition of cell viability than that of any monotherapy (Fig. 2). The CI values were <1 for all the combination treatments, which indicated that the cell viability of ovarian cancer cells was synergistically inhibited by LLL12 combined with paclitaxel. Compared with the standard ovarian cancer combination treatment of cisplatin with paclitaxel, the combination treatment of LLL12 with cisplatin or/and paclitaxel also generated greater inhibitory effects on cell viability, and the combination of the three drugs elicited the greatest inhibitory effects (Fig. 2).

LLL12 combined with cisplatin inhibits the cell migration of ovarian cancer cells

For tumor invasion and metastasis, cell migration is an important process. Previous studies have indicated that the inhibition of STAT3 may reduce cancer cell migration (1618). Therefore, the present study evaluated the effect of LLL12 combined with cisplatin, compared with a paclitaxel and cisplatin combination, on cell migration. Representative images are shown in Figs. 3 and 4. The A2780 cells were treated with different drugs for 60 h until the wound in the DMSO control group was healed; the combined LLL12 and cisplatin treatment had a more significant inhibitory effect on wound healing/cell migration than either monotherapy (Fig. 3). Compared with the combination treatment of cisplatin with paclitaxel, the combination treatment of LLL12 with cisplatin or/and paclitaxel generated a more significant inhibitory effect on cell migration, and the combination of the three drugs elicited the greatest inhibitory effect (Fig. 3). Consistently, in SKOV3 ovarian cancer cells, the combined LLL12 and cisplatin or/and paclitaxel treatment also exerted a greater inhibitory effect on cell migration than the monotherapies or the paclitaxel and cisplatin combination, and the combination of the three drugs elicited the greatest inhibitory effect (Fig. 4). The accompanying MTT assay was performed at the same time (20,000 cells/well were seeded in 96-well plates, then treated with the same drugs to evaluate cell viability; the timepoints and the drug concentrations were the same as those of the migration assay), and there were no significant differences in cell viability between the groups. This indicated that the inhibition of cell proliferation had little effect on this experiment.

LLL12 combined with cisplatin inhibits the cell growth of ovarian cancer cells

It was demonstrated that LLL12 synergistically inhibited the cell viability of ovarian cancer cells in combination with cisplatin and paclitaxel. The present study further evaluated the effect of LLL12 on cell growth combined with cisplatin or paclitaxel. The results showed that LLL12 inhibited cell growth in all four ovarian cancer lines (Fig. 5). The combined treatment of LLL12 with cisplatin had a more significant inhibitory effect on cell growth than either monotherapy in all four human ovarian cancer cell lines (Fig. 5A). Furthermore, the LLL12 and paclitaxel combination exerted a greater inhibitory effect on cell growth than either single agents alone in all four ovarian cancer cell lines (Fig. 5B).

Discussion

Ovarian cancer is the leading cause of cancer-associated death in women in the US (1). Most patients are diagnosed at a late stage, due to the lack of specific symptoms associated with early-stage ovarian cancer. Standardized treatment for late-stage ovarian cancers is cytoreductive surgery followed by a platinum-based regimen of primary chemotherapy (3). Cisplatin combined with paclitaxel is recognized as the first-line chemotherapy for advanced ovarian cancer worldwide, despite severe side effects (2). Although the treatment regimen is effective and no adequate replacement has yet been found, 75% of patients experience recurrence of ovarian cancer (7), and data show that the 5-year survival rate of patients with ovarian cancer has remained almost unchanged after diagnosis in the past 20 years (1,26). There are many reasons for cancer recurrence, among which chemoresistance to cisplatin and/or paclitaxel is the most commonly reported (29,30). Therefore, there is a need to discover new therapeutic targets and new drugs to enhance the cisplatin- and paclitaxel-mediated inhibitory effect on ovarian cancer. Chemoresistance is multifactorial and complex. Many studies have been performed to explore the gene signatures associated with chemoresistance (3032), and no consistent results have been found.

As reported, STAT proteins have become a research focus due to their contribution to oncogenesis (912). In numerous human malignancies, STAT proteins, especially STAT3, are constitutively activated, and the activation rate in ovarian cancer is 94% (13). Studies have reported that constitutive activation of STAT3 is involved in various processes during malignant progression, including migration, invasion, cell proliferation, angiogenesis, EMT and metastasis, and it may also induce multidrug chemoresistance (1318). In particular, cisplatin and paclitaxel resistance has also been reported to be associated with the overexpression of STAT3 (13,1922); thus, inhibitors of STAT3 may be used as novel anticancer therapeutics, in combination with conventional chemotherapy.

A previous study demonstrated that constitutive activation of STAT3 is present in ovarian cancer cell lines, but not in normal ovarian surface epithelial cells (33). Many studies have shown that the STAT3 pathway is often overexpressed and activated in cisplatin- and/or paclitaxel-resistant ovarian cancer cells, as compared with paired parental cell lines that are cisplatin- and/or paclitaxel-sensitive (16,17,1921). Inhibition of STAT3 enhances apoptosis induced by cisplatin and paclitaxel in ovarian cancer cells (33,34). Furthermore, silencing of the STAT3 signaling pathway can reverse the inherent and induced chemoresistance of human ovarian cancer cells (35). It appears that STAT3 inhibitors may be important for combatting chemoresistance to cisplatin and paclitaxel. Many peptide-based inhibitors of STAT3 have been synthesized and reported, but common problems are poor cell permeability and in vivo stability, which have limited their use (36,37). In addition, nonpeptide small molecule inhibitors of STAT3 have also been synthesized, such as SD-1029 (38) Stattic (39), STA-21 (40), S3I-201 (41) and WP1066 (42) among others.

In order to solve the problems mentioned above, LLL12, a small molecule STAT3 inhibitor, was synthesized (24). According to previous work, LLL12 can inhibit STAT3 phosphorylation in many cancer cells, such as glioblastoma, pancreatic cancer, multiple myeloma and breast cancer cells (23,24,4346). Furthermore, LLL12 has good cell permeability and stability in vivo, and demonstrated marked inhibition of STAT3 phosphorylation in an animal model (23,24,45). Compared with STAT3 inhibitors reported previously, namely S3I-201 and WP1066, LLL12 was demonstrated to be more potent in the inhibition of cancer cell viability (43). It was also demonstrated that LLL12 had a minimal apoptotic effect on normal human cells (23,24). Therefore, LLL12 was assessed in ovarian cancer cells. STAT3 phosphorylation was decreased by LLL12 in all four ovarian cancer cells. Cell viability, cell migration and cell growth assays were performed; the results showed that, compared with monotherapies, the combination of LLL12 and cisplatin or paclitaxel led to more potent inhibition. Simultaneously, it was found that the combination of cisplatin with LLL12 led to more effective inhibition of cell viability and cell migration than that of cisplatin with paclitaxel. The cell migration assay was trialed under serum-starvation conditions, but the cells of the DMSO control group died before the wound healed. Therefore, 10% serum was used in this assay. CAOV-3 and OVCAR5 cells were not tested in the wound healing/cell migration assays, because their growth phenotype in a monolayer is not suitable for wound healing/cell migration assays. The cell density for the cell growth assay was much lower than that used for the western blot analysis; therefore, low doses of LLL12 with cisplatin or paclitaxel were used. If a higher dose of LLL12 is used, it alone could cause an almost complete inhibition of cell growth, and therefore, it would not be possible to verify whether LLL12 in combination with cisplatin or paclitaxel could exert stronger inhibition than either single agent alone.

Of the four cell lines, OVCAR-5 is a human epithelial carcinoma cell line of the ovary, established from the ascitic fluid of a patient with progressive ovarian adenocarcinoma without prior cytotoxic treatment; this cell line had been used as high-grade serous human ovarian cancer cell line since 1984 (47). However, there was a study published in 2016 that provided some evidence that OVCAR-5 might be regarded as non-ovarian, being gastrointestinal in origin (48). An STR profile analysis was performed for the OVCAR5 cells. The results demonstrated that the sample OVCAR5 cells shared 14 out of 14 alleles (100%) with the American Type Culture Collection reference. Additionally, many studies have used OVCAR5 as an ovarian cancer cell line since 20016 (4951), so the experimental data for this cell line was retained in the present study.

From the literatures, there are ovarian cancer cell that were selected by gradually increasing the concentration of cisplatin, and cloning the surviving cells as cisplatin-resistant cells. However, such cisplatin- or paclitaxel-resistant cell lines were unavailable for the present study. Nevertheless, the SKOV3 and CAOV-3 ovarian cancer cell lines are more resistant to cisplatin and paclitaxel than the A2780 and OVCAR5 ovarian cancer cell lines, based on published literature (25,26) and the authors' preliminary results. In particular, among high-grade serous human ovarian cancer cell lines, CAOV-3 is much more resistant to cisplatin or paclitaxel than OVCAR5. Notably, the basal levels of p-STAT3 (Fig. S3) and the IC50 of LLL12 (Fig. S4) were also higher in the SKOV3 and CAOV-3 ovarian cancer cell lines. These results further supported the hypothesis that levels of p-STAT3 are positively associated with resistance to cisplatin and paclitaxel. The results presented in this manuscript showed that LLL12 may enhance the cisplatin- and paclitaxel-mediated inhibition of cell growth and migration in the human ovarian cancer cell lines SKOV3 and CAOV-3, which are resistant to cisplatin or/and paclitaxel.

In conclusion, the present findings suggested LLL12 may enhance the cisplatin- and paclitaxel-mediated inhibition of cell growth and migration in human ovarian cancer cells. This may be key to combatting cisplatin and paclitaxel resistance, which requires further research. Translating these findings to the clinical realm will require further investigation ensure the safety of this potential treatment.

Supplementary Material

Supporting Data

Acknowledgements

The authors would like to thank Dr Rich Eckert at the Department of Biochemistry and Molecular Biology, University of Maryland (Baltimore, MD, USA) for providing the microscope used to evaluate the wound healing assay.

Funding

This research was supported by the University of Maryland School of Medicine and the Comprehensive Cancer Center start up fund.

Availability of data and materials

All data generated or analyzed during this study are included in this published article.

Authors' contributions

JL acquired funding and resources. RZ, XC, SF, LX and JL contributed to the design of the study. RZ, XC, SF and LX acquired and analyzed the data. RZ and JL drafted the manuscript. RZ, XC, SF, LX and JL revised and edited the manuscript. All authors read and approved the final version of the manuscript.

Ethics approval and consent to participate

Not applicable.

Patient consent for publication

Not applicable.

Competing interests

The authors declare that they have no competing interests.

References

1 

Siegel RL, Miller KD and Jemal A: Cancer statistics, 2017. CA Cancer J. Clin. 67:7–30. 2017.

2 

Mei L, Chen H, Wei DM, Fang F, Liu GJ, Xie HY, Wang X, Zou J, Han X and Feng D: Maintenance chemotherapy for ovarian cancer. In The Cochrane Library; John Wiley, Sons. (Hoboken, NJ, USA). 2013.

3 

Dressman HK, Berchuck A, Chan G, Zhai J, Bild A, Sayer R, Cragun J, Clarke J, Whitaker RS, Li L, et al: An integrated genomic-based approach to individualized treatment of patients with advanced-stage ovarian cancer. J Clin Oncol. 25:517–525. 2007. View Article : Google Scholar : PubMed/NCBI

4 

Jazaeri AA, Awtrey CS, Chandramouli GV, Chuang YE, Khan J, Sotiriou C, Aprelikova O, Yee CJ, Zorn KK, Birrer MJ, et al: Gene expression profiles associated with response to chemotherapy in epithelial ovarian cancers. Clin Cancer Res. 11:6300–6310. 2005. View Article : Google Scholar : PubMed/NCBI

5 

Sudo T: Molecular-targeted therapies for ovarian cancer: Prospects for the future. Int J Clin Oncol. 17:424–429. 2012. View Article : Google Scholar : PubMed/NCBI

6 

Sueblinvong T, Ghebre R, Iizuka Y, Pambuccian SE, Isaksson Vogel R, Skubitz AP and Bazzaro M: Establishment, characterization and downstream application of primary ovarian cancer cells derived from solid tumors. PLOS One. 7:e505192012. View Article : Google Scholar : PubMed/NCBI

7 

Dasari S and Tchounwou PB: Cisplatin in cancer therapy: Molecular mechanisms of action. Eur J Pharmacol. 740:364–378. 2014. View Article : Google Scholar : PubMed/NCBI

8 

Beth A: Weaver How Taxol/paclitaxel kills cancer cells. Mol Biol Cell. 25:2677–2681. 2014. View Article : Google Scholar : PubMed/NCBI

9 

Buettner R, Mora LB and Jove R: Activated STAT signaling in human tumors provides novel molecular targets for therapeutic intervention. Clin Cancer Res. 8:945–954. 2002.PubMed/NCBI

10 

Bromberg J and Darnell JE Jr: The role of STATs in transcriptional control and their impact on cellular function. Oncogene. 19:2468–2473. 2000. View Article : Google Scholar : PubMed/NCBI

11 

Turkson J and Jove R: STAT proteins: Novel molecular targets for cancer drug discovery. Oncogene. 19:6613–6626. 2000. View Article : Google Scholar : PubMed/NCBI

12 

Bowman T, Garcia R, Turkson J and Jove R: STATs in oncogenesis. Oncogene. 19:2474–2488. 2000. View Article : Google Scholar : PubMed/NCBI

13 

Duan Z, Foster R, Bell DA, Mahoney J, Wolak K, Vaidya A, Hampel C, Lee H and Seiden MV: Signal transducers and activators of transcription 3pathway activation in drug-resistant ovarian cancer. Clin Cancer Res. 12:5055–5063. 2006. View Article : Google Scholar : PubMed/NCBI

14 

Silver DL, Naora H, Liu J, Cheng W and Montell DJ: Activated signal transducer and activator of transcription (STAT) 3: Localization in focal adhesions and function in ovarian cancer cell motility. Cancer Res. 64:3550–3558. 2004. View Article : Google Scholar : PubMed/NCBI

15 

Rosen DG, Mercado-Uribe I, Yang G, Bast RC Jr, Amin HM, Lai R and Liu J: The role of constitutively active signal transducer and activator of transcription 3 in ovarian tumorigenesis and prognosis. Cancer. 107:2730–2740. 2006. View Article : Google Scholar : PubMed/NCBI

16 

Yue P, Zhang X, Paladino D, Sengupta B, Ahmad S, Holloway RW, Ingersoll SB and Turkson J: Hyperactive EGF receptor, Jaks and Stat3 signaling promote enhanced colony-forming ability, motility and migration of cisplatin-resistant ovarian cancer cells. Oncogene. 31:2309–2322. 2012. View Article : Google Scholar : PubMed/NCBI

17 

Kandala PK and Srivastava SK: Diindolylmethane suppresses ovarian cancer growth and potentiates the effect of cisplatin in tumor mouse model by targeting signal transducer and activator of transcription 3 (STAT3). BMC Med. 10:92012. View Article : Google Scholar : PubMed/NCBI

18 

Colomiere M, Findlay J, Ackland L and Ahmed N: Epidermal growth factor-induced ovarian carcinoma cell migration is associated with JAK2/STAT3 signals and changes in the abundance and localization of alpha6beta1 integrin. Int J Biochem Cell Biol. 41:1034–1045. 2009. View Article : Google Scholar : PubMed/NCBI

19 

Duan Z, Foster R, Bell DA, Mahoney J, Wolak K, Vaidya A, Hampel C, Lee H and Seiden MV: Signal transducers and activators of transcription 3 pathway activation in drug-resistant ovarian cancer. Clin Cancer Res. 12:5055–5063. 2006. View Article : Google Scholar : PubMed/NCBI

20 

Duan Z, Ames RY, Ryan M, Hornicek FJ, Mankin H and Seiden MV: CDDO-Me, a synthetic triterpenoid, inhibits expression of IL-6 and Stat3 phosphorylation in multi-drug resistant ovarian cancer cells. Cancer Chemother Pharmacol. 63:681–689. 2009. View Article : Google Scholar : PubMed/NCBI

21 

Zhang X, Liu P, Zhang B, Wang A and Yang M: Role of STAT3 decoy oligodeoxynucleotides on cell invasion and chemosensitivity in human epithelial ovarian cancer cells. Cancer Genet Cytogenet. 197:46–53. 2010. View Article : Google Scholar : PubMed/NCBI

22 

Sheng WJ, Jiang H, Wu DL and Zheng JH: Early responses of the STAT3 pathway to platinum drugs are associated with cisplatin resistance in epithelial ovarian cancer. Braz J Med Biol Re. 46:650–658. 2013. View Article : Google Scholar

23 

Lin L, Benson DM Jr, DeAngelis S, Bakan CE, Li PK, Li C and Lin J: A small molecule, LLL12 inhibits constitutive STAT3 and IL-6 induced STAT3 signaling and exhibits potent growth suppressive activity in human multiple myeloma cells. Int J Cancer. 130:1459–1469. 2012. View Article : Google Scholar : PubMed/NCBI

24 

Lin L, Hutzen B, Li PK, Ball S, Zuo M, DeAngelis S, Foust E, Sobo M, Friedman L, Bhasin D, et al: A Novel Small Molecule, LLL12, Inhibits STAT3 phosphorylation and activities and exhibits potent growth-suppressive activity in human cancer cells. Neoplasia. 12:39–50. 2010. View Article : Google Scholar : PubMed/NCBI

25 

Yang J, Zaman MM, Vlasakov I, Roy R, Huang L, Martin CR, Freedman SD, Serhan CN and Moses MA: Adipocytes promote ovarian cancer chemoresistance. Sci Rep. 9:133162019. View Article : Google Scholar : PubMed/NCBI

26 

Ma S, Tan W, Du B, Liu W, Li W, Che D and Zhang G: Oridonin effectively reverses cisplatin drug resistance in human ovarian cancer cells via induction of cell apoptosis and inhibition of matrix metalloproteinase expression. Mol Med Rep. 13:3342–3348. 2016. View Article : Google Scholar : PubMed/NCBI

27 

Chou TC: Theoretical basis, experimental design, and computerized simulation of synergism and antagonism in drug combination studies. Pharmacol Rev. 58:621–681. 2006. View Article : Google Scholar : PubMed/NCBI

28 

Fu S, Chen X, Lin HJ and Lin J: Inhibition of interleukin 8/CXC chemokine receptor 1/2 signaling reduces malignant features in human pancreatic cancer cells. Int J Oncol. 53:349–357. 2018.PubMed/NCBI

29 

Cannistra SA: Cancer of the ovary. N Engl J Med. 351:2519–2529. 2004. View Article : Google Scholar : PubMed/NCBI

30 

Bristow RE and Chi DS: Platinum-based neoadjuvant chemotherapy and interval surgical cytoreduction for advanced ovarian cancer: A meta-analysis. Gynecol Oncol. 103:1070–1076. 2006. View Article : Google Scholar : PubMed/NCBI

31 

Arora S, Bisanz KM, Peralta LA, Basu GD, Choudhary A, Tibes R and Azorsa DO: RNAi screening of the kinome identifies modulators of cisplatin response in ovarian cancer cells. Gynecol Oncol. 118:220–227. 2010. View Article : Google Scholar : PubMed/NCBI

32 

Kang J, D'Andrea AD and Kozono D: A DNA repair pathway-focused score for prediction of outcomes in ovarian cancer treated with platinum-based chemotherapy. J Natl Cancer Inst. 104:670–681. 2012. View Article : Google Scholar : PubMed/NCBI

33 

Huang M, Page C, Reynolds RK and Lin J: Constitutive activation of stat 3 oncogene product in human ovarian carcinoma cells. Gynecol Oncol. 79:67–73. 2000. View Article : Google Scholar : PubMed/NCBI

34 

Burke WM, Jin X, Lin HJ, Huang M, Liu R, Reynolds RK and Lin J: Inhibition of constitutively active Stat3 suppresses growth of human ovarian and breast cancer cells. Oncogene. 20:7925–7934. 2001. View Article : Google Scholar : PubMed/NCBI

35 

Han Z, Feng J, Hong Z, Chen L, Li W, Liao S, Wang X, Ji T, Wang S, Ma D, et al: Silencing of the STAT3 signaling pathway reverses the inherent and induced chemoresistance of human ovarian cancer cells. Biochem Biophys Res Commun. 435:188–194. 2013. View Article : Google Scholar : PubMed/NCBI

36 

Turkson J, Ryan D, Kim JS, Zhang Y, Chen Z, Haura E, Laudano A, Sebti S, Hamilton AD and Jove R: Phosphotyrosyl peptides block Stat3-mediated DNA binding activity, gene regulation, and cell transformation. J Biol Chem. 276:45443–45455. 2001. View Article : Google Scholar : PubMed/NCBI

37 

Burke TR Jr, Yao ZJ, Liu DG, Voigt J and Gao Y: Phosphoryltyrosyl mimetics in the design of peptide-based signal transduction inhibitors. Biopolymers. 60:32–44. 2001. View Article : Google Scholar : PubMed/NCBI

38 

Iwamaru A, Szymanski S, Iwado E, Aoki H, Yokoyama T, Fokt I, Hess K, Conrad C, Madden T, Sawaya R, et al: A novel inhibitor of the STAT3 pathway induces apoptosis in malignant glioma cells both in vitro and in vivo. Oncogene. 26:2435–2444. 2007. View Article : Google Scholar : PubMed/NCBI

39 

Siddiquee K, Zhang S, Guida WC, Blaskovich MA, Greedy B, Lawrence HR, Yip ML, Jove R, McLaughlin MM, Lawrence NJ, et al: Selective chemical probe inhibitor of Stat3, identified through structure-based virtual screening, induces antitumor activity. Proc Natl Acad Sci USA. 104:7391–7396. 2007. View Article : Google Scholar : PubMed/NCBI

40 

Song H, Wang R, Wang S and Lin J: A low-molecular-weight compound discovered through virtual database screening inhibits Stat3 function in breast cancer cells. Proc Natl Acad Sci USA. 102:4700–4705. 2005. View Article : Google Scholar : PubMed/NCBI

41 

Schust J, Sperl B, Hollis A, Mayer TU and Berg T: Stattic: A small molecule inhibitor of STAT3 activation and dimerization. Chem Biol. 13:1235–1242. 2006. View Article : Google Scholar : PubMed/NCBI

42 

Duan Z, Bradner JE, Greenberg E, Levine R, Foster R, Mahoney J and Seiden MV: SD-1029 inhibits signal transducer and activator of transcription 3nuclear translocation. Clin Cancer Res. 12:6844–6852. 2006. View Article : Google Scholar : PubMed/NCBI

43 

Wei CC, Ball S, Lin L, Liu A, Fuchs JR, Li PK, Li C and Lin J: Two small molecule compounds, LLL12 and FLLL32, exhibit potent inhibitory activity on STAT3 in human rhabdomyosarcoma cells. Int J Oncol. 38:279–285. 2011.PubMed/NCBI

44 

Onimoe GI, Liu A, Lin L, Wei CC, Schwartz EB, Bhasin D, Li C, Fuchs JR, Li PK, Houghton P, et al: Small molecules, LLL12 and FLLL32, inhibit STAT3and exhibit potent growth suppressive activity in osteosarcoma cells and tumor growth in mice. Invest New Drugs. 30:916–926. 2012. View Article : Google Scholar : PubMed/NCBI

45 

Ball S, Li C, Li PK and Lin J: The Small Molecule, LLL12, Inhibits STAT3 Phosphorylation and Induces Apoptosis in Medulloblastoma and Glioblastoma Cells. PLoS One. 6:e188202011. View Article : Google Scholar : PubMed/NCBI

46 

Couto JI, Bear MD, Lin J, Pennel M, Kulp SK, Kisseberth WC and London CA: Biologic activity of the novel small molecule STAT3 inhibitor LLL12 against canine osteosarcoma cell lines. BMC Vet Res. 8:2442012. View Article : Google Scholar : PubMed/NCBI

47 

Hamilton TC, Young RC and Ozols RF: Experimental model systems of ovarian cancer: Applications to the design and evaluation of new treatment approaches. Semin Oncol. 11:285–298. 1984.PubMed/NCBI

48 

Blayney JK, Davison T, McCabe N, Walker S, Keating K, Delaney T, Greenan C, Williams AR, McCluggage WG, Capes-Davis A, et al: Prior knowledge transfer across transcriptional data sets and technologies using compositional statistics yields new mislabelled ovarian cell line. Nucleic Acids Res. 44:e1372016. View Article : Google Scholar : PubMed/NCBI

49 

Bratcher NA, Frost DJ, Hickson J, Huang X, Medina LM, Oleksijew A, Ferguson DC and Bolin S: Effects of buprenorphine in a preclinical orthotopic tumor model of ovarian carcinoma in female CB17 SCID Mice. J Am Assoc Lab Anim Sci. 58:583–588. 2019. View Article : Google Scholar : PubMed/NCBI

50 

Capo-Chichi CD, Cai KQ and Xu XX: Overexpression and cytoplasmic localization of caspase-6 is associated with lamin A degradation in set of ovarian cancers. Biomark Res. 6:302018. View Article : Google Scholar : PubMed/NCBI

51 

Fang Z, Li T, Chen W, Wu D, Qin Y, Liu M, Wu G, He L, Li H and Gu H: Gab2 promotes cancer stem cell like properties and metastatic growth of ovarian cancer via downregulation of miR-200c. Exp Cell Res. 382:1114622019. View Article : Google Scholar : PubMed/NCBI

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September-2020
Volume 44 Issue 3

Print ISSN: 1021-335X
Online ISSN:1791-2431

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Spandidos Publications style
Zhang R, Chen X, Fu S, Xu L and Lin J: A small molecule STAT3 inhibitor, LLL12, enhances cisplatin‑ and paclitaxel‑mediated inhibition of cell growth and migration in human ovarian cancer cells. Oncol Rep 44: 1224-1232, 2020.
APA
Zhang, R., Chen, X., Fu, S., Xu, L., & Lin, J. (2020). A small molecule STAT3 inhibitor, LLL12, enhances cisplatin‑ and paclitaxel‑mediated inhibition of cell growth and migration in human ovarian cancer cells. Oncology Reports, 44, 1224-1232. https://doi.org/10.3892/or.2020.7667
MLA
Zhang, R., Chen, X., Fu, S., Xu, L., Lin, J."A small molecule STAT3 inhibitor, LLL12, enhances cisplatin‑ and paclitaxel‑mediated inhibition of cell growth and migration in human ovarian cancer cells". Oncology Reports 44.3 (2020): 1224-1232.
Chicago
Zhang, R., Chen, X., Fu, S., Xu, L., Lin, J."A small molecule STAT3 inhibitor, LLL12, enhances cisplatin‑ and paclitaxel‑mediated inhibition of cell growth and migration in human ovarian cancer cells". Oncology Reports 44, no. 3 (2020): 1224-1232. https://doi.org/10.3892/or.2020.7667