Ectopic Expression of Ankrd2 Affects Proliferation, Motility and Clonogenic Potential of Human Osteosarcoma Cells
<p>Ankrd2 is expressed in cell lines derived from human osteosarcoma and human normal osteoblasts. (<b>A</b>) Detection of the <span class="html-italic">ANKRD2</span> transcript in cell lines obtained from human normal osteoblasts (hFOB) and from human osteosarcoma (Saos2, U2OS, HOS and MG63). The fragment was amplified by RT-PCR using cDNA from at least three passages of tumor cells. Housekeeping <span class="html-italic">GAPDH</span> was used as a quality control. No cDNA was added to the control reaction (<b>C</b>). Length of the amplicons are presented in <a href="#app1-cancers-13-00174" class="html-app">Table S1</a>. (<b>B</b>) Total cell lysates from hFOB, Saos2, U2OS, HOS and MG63 were resolved by SDS-PAGE and assayed for Ankrd2 expression. A positive signal was observed at 38 kDa corresponding to the expected molecular weight. Levels of lamin A/C were also determined. β-tubulin and ponceau-red staining of the filter were used as equal loading controls. Expression of Ankrd2 is presented as the ratio between the values of densitometric analysis of the bands of anti-Ankrd2 against those of anti-β-tubulin. Blots are representatives of four repetition. (<b>C</b>) Relative quantification of <span class="html-italic">ANKRD2</span> mRNA expression in hFOB, Saos2, U2OS, HOS and MG63 cell lines as determined by qPCR. <span class="html-italic">GAPDH</span> served as the internal reference. The data are expressed as 2<sup>−ΔCt</sup> × 10<sup>5</sup> and presented as mean ± SD of at least three biological replicates. Statistical analysis was performed with a paired two-tail Student’s <span class="html-italic">t</span>-test. * <span class="html-italic">p</span> < 0.01, ** <span class="html-italic">p</span> < 0.001. Average Ct ± SD values are presented in <a href="#app1-cancers-13-00174" class="html-app">Table S2</a>.</p> "> Figure 2
<p>Characterization of OS cell lines stably expressing Ankrd2 wt and mutant S99A. (<b>A</b>) Total cell lysates obtained from clones of hFOB, Saos2, U2OS, HOS and MG63 overexpressing Flag-tagged Ankrd2 forms (wt and S99A), or transfected with empty vector (EV), were assayed for the expression of ectopic Ankrd2, by the use of an antibody against its Flag-tag, as well as the phosphorylation profile of its S99 [P-Ankrd2, phospho-Ankrd2 (Ser99)]. (<b>B</b>) Fifty μg of total lysates from the same samples of A) were analyzed with the indicated antibodies [P-Akt2, phospho-Akt2 (Ser474)]. The activation status of Akt2 is presented as the ratio between the values of densitometric analysis of the bands of anti-p-Akt2 against those of anti-Akt2. Blots represent the best of four repetitions.</p> "> Figure 3
<p>Ankrd2 overexpression affects proliferation of cell lines from OS and normal osteoblasts. Stable clones of hFOB, Saos2, U2OS, HOS and MG63 overexpressing Flag-Ankrd2wt or transfected with empty vector (EV) were seeded as indicated in six-well tissue culture plates. After 24, 48 and 72 h from seeding, cells were individually collected by trypsinization, stained with trypan blue and living cells counted under light microscopy using a hemocytometer. * <span class="html-italic">p</span> < 0.05, vs. control (EV). Data are representative of a minimum of five independent experiments. Data were analyzed and graphed using the GraphPad Prism software.</p> "> Figure 4
<p>Ankrd2 overexpression affects the motility of human OS cell lines. (<b>A</b>) The 90%-confluent monolayers of OS clones overexpressing Flag-Ankrd2wt (wt) or transfected with empty vector (EV) were wounded with a 200 μL pipette tip. Three “wounds” were formed on each culture dish in duplicate per experiment. Images were acquired by light microscopy at the time of the scratch (T0) and after 7, 24 and, where indicated, 48 h. Measures of the cell free area were taken by the AxioVision software, Feldbach, Switzerland. Data were plotted as the percentage of open wound compared to its original size, at T0, and analyzed using the GraphPad Prism software. Statistical analysis was performed with a paired two-tail Student’s <span class="html-italic">t</span> test. * <span class="html-italic">p</span> < 0.05, ** <span class="html-italic">p</span> < 0.01. (<b>B</b>) A total of 3 × 10<sup>4</sup> cells of Saos2, U2OS, HOS and MG63 clones overexpressing Flag-Ankrd2wt (wt) or those that were transfected with empty vector (EV), were loaded into the upper Boyden chamber in serum-free media and assayed for chemotactic potential. After 5 h of culture in the presence of chemo-attractant, cells were stained with crystal violet and the absorbance at 560 nm was measured. Data were analyzed with the GraphPad Prism software. Data are representative of two independent experiments. Statistical analysis was performed using an unpaired two-tail Student’s <span class="html-italic">t</span> test. <span class="html-italic">p</span> < 0.01.</p> "> Figure 5
<p>Ankrd2 overexpression affects clonogenicity of OS cell lines. (<b>A</b>) 1.2 × 10<sup>2</sup> cells from Saos2, U2OS, HOS and MG63 clones overexpressing Flag-Ankrd2wt, or that were transfected with empty vector (EV), were plated in multi-well plates and allowed to grow for two weeks. Colonies with >50 cells were counted and graphed using the GraphPad Prism software. Statistical analysis was performed using an unpaired two-tail Student’s <span class="html-italic">t</span> test. ** <span class="html-italic">p</span> < 0.001. (<b>B</b>) Saos2, U2OS, HOS and MG63 clones were seeded at a density of 2 × 10<sup>5</sup> cells/35 cm<sup>2</sup> culture dish in complete media containing methyl-cellulose onto a layer of 0.8% agar and allowed to grow. Spheroids were observed under light microscopy, and the diameter of spheroids (reported in μm) composed of >50 cells were measured by AxioVision software and graphed into a vertical scatter plot using the GraphPad Prism software. The bar is 100 μm. Statistical analysis was performed with a two-tail Student’s <span class="html-italic">t</span>-test. * <span class="html-italic">p</span> < 0.01.</p> "> Figure 6
<p>Ankrd2 overexpression affects the activity of MMP2 and MMP9. A total of 1 × 10<sup>6</sup> cells from Saos2, U2OS, HOS and MG63 clones overexpressing Flag-Ankrd2wt, or transfected with empty vector (EV), were seeded into a 35 cm<sup>2</sup> petri dish and serum starved for 24 h. After additional 36 h, media were collected and assayed for their gelatinolytic activity. Total protein (7 μg) from media was resolved on a gelatin embedded polyacrylamide gel under non denaturing conditions. Gelatinolytic activity of MMP2 and MMP9 was visualized as unstained (white) bands. Protease activity of MMP2 and MMP9 in OS clones expressing Ankrd2 wt is reported as the percentage increase with respect to control (empty vector-transfected) clones. MMP2 and MMP9 appeared as two bands corresponding to the inactive pro-enzyme (indicated as pMMP2 and pMMP9) and to the cleaved active form (MMP2 and MMP9).</p> "> Figure 7
<p>Silencing of Ankrd2 expression reduces proliferation and clonogenic potential of U2OS and HOS cells. (<b>A</b>) Stable clones of Ankrd2-silenced U2OS and HOS cells were seeded at a density of 2 × 10<sup>5</sup> cells/well in six-well tissue culture plates. Then, 24, 48 and 72 h after seeding, cells were individually collected and counted under light microscope. As control, the proliferation rate of respective parental and si-scramble cells was also determined. * <span class="html-italic">p</span> < 0.01, vs. si-scramble. Data are representative of a minimum of three independent experiments. Data were analyzed and graphed using the GraphPad Prism software, San Diego, CA, USA. (<b>B</b>) The same clones as in (<b>A</b>) were plated at a density of 13.3 cells/cm<sup>2</sup> and allowed to grow for two weeks. Colonies with >50 cells were counted and the results were graphed using the GraphPad Prism software. Statistical analysis was performed using an unpaired two-tail Student’s <span class="html-italic">t</span>-test. * <span class="html-italic">p</span> < 0.01 vs. si-scramble. (<b>C</b>) Control (si-scramble) and Ankrd2 silenced clones were seeded at a density of 2 × 10<sup>5</sup> cells/35 cm<sup>2</sup> culture dish in complete media containing methyl-cellulose on a 8% layer of 0.8% agar and allowed to grow. Spheroids were observed by light microscopy. Images of U2OS (clone 4, si-Ankrd2_4) and HOS (clone 3, si-Ankrd2_3) unable to form spheroids when partially depleted of Ankrd2 are shown. The bar is 100 μm.</p> ">
Abstract
:Simple Summary
Abstract
1. Introduction
2. Materials and Methods
2.1. Cultures, Transfection and Cellular Treatments
2.2. Plasmids
2.3. Stable Silencing
2.4. RT-PCR and qPCR
2.5. Cell Proliferation/Viability
2.6. Cell Motility Assays
- Wound healing assay: Cells were seeded at 70% of confluence. Once confluence was reached, three wounds (“scratches”) were applied to the monolayer using a 200 µL pipette tip. The wounds were observed and captured in triplicate at the time of wounding (T0) and after 7, 24 and 48 h, under light microscopy using a microscope (Carl Zeiss, Munich, Germany) equipped with an AxioVision digital camera. The width of the scratches was measured using the AxioVision Rel 4.7 Software and the percentage (%) of the wound closure calculated according the formula: ((Tn-T0)/T0) × 100, where T0 is the width of the scratch at the beginning and Tn is the width at 7, 24 and 48 h after the scratch.
- Transwell migration assay: Sub-confluent flasks of Ankrd2-expressing OS-derived cells and their respective controls were starved overnight in IMDM GlutaMAX without FCS. The next day, 2.5 × 105 cells were added to the upper side of the Boyden chamber (Cell Biolabs, Inc., San Diego, CA USA) in triplicate in serum-free medium. FBS-conditioned medium was added to the lower chambers. After 24 h of incubation at 37 °C, non-migrated cells were carefully removed from the upper side of the chamber. Cells that had migrated to the bottom side of the chamber were fixed, and stained with crystal violet and destained. The OD560 was measured on a Tecan Infinite M200 Pro spectrophotometer (Tecan, Männedorf, Switzerland).
2.7. Clonogenic Assay
2.8. Anchorage-Independent Growth Assay
2.9. Protein Extracts and Immunoblot
2.10. Immunofluorescence
2.11. Gelatin Zymography
2.12. Image Processing and Statistical Analysis
3. Results
3.1. Ankrd2 is Expressed in Human Osteosarcoma Cell Lines
3.2. Characterization of Clones of OS Cell Lines Stably Expressing wt and S99A Ankrd2
3.3. Effect of Ankrd2 Overexpression on the Proliferation of OS Cells
3.4. Effect of Ankrd2 Overexpression on OS Cellular Motility
3.4.1. Wound Healing
3.4.2. Chemotactic Migration
3.4.3. Clonogenic Potential
3.4.4. Anchorage Independent Growth
3.5. Effect of Ankrd2 Overexpression on Degradation of the Extracellular Matrix
3.6. Effect of Ankrd2 Silencing in OS Cells
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Osteosarcoma-Derived Cell Line | Effect on Proliferation | Effect on Migration (24 h from Wounding) | Effect on Transwell Migration | Effect on Clonogenicity (Anchorage Dependent) | Effect on Clonogenicity (Anchorage Independent) | Effect on MMP2/9 Activity |
---|---|---|---|---|---|---|
Saos2 | = | - | + | - | = | + |
U2OS | + | - | - | = | + | + |
HOS | + | + | + | = | + | + |
MG63 | - | - | - | - | + | + |
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Piazzi, M.; Kojic, S.; Capanni, C.; Stamenkovic, N.; Bavelloni, A.; Marin, O.; Lattanzi, G.; Blalock, W.; Cenni, V. Ectopic Expression of Ankrd2 Affects Proliferation, Motility and Clonogenic Potential of Human Osteosarcoma Cells. Cancers 2021, 13, 174. https://doi.org/10.3390/cancers13020174
Piazzi M, Kojic S, Capanni C, Stamenkovic N, Bavelloni A, Marin O, Lattanzi G, Blalock W, Cenni V. Ectopic Expression of Ankrd2 Affects Proliferation, Motility and Clonogenic Potential of Human Osteosarcoma Cells. Cancers. 2021; 13(2):174. https://doi.org/10.3390/cancers13020174
Chicago/Turabian StylePiazzi, Manuela, Snezana Kojic, Cristina Capanni, Nemanja Stamenkovic, Alberto Bavelloni, Oriano Marin, Giovanna Lattanzi, William Blalock, and Vittoria Cenni. 2021. "Ectopic Expression of Ankrd2 Affects Proliferation, Motility and Clonogenic Potential of Human Osteosarcoma Cells" Cancers 13, no. 2: 174. https://doi.org/10.3390/cancers13020174
APA StylePiazzi, M., Kojic, S., Capanni, C., Stamenkovic, N., Bavelloni, A., Marin, O., Lattanzi, G., Blalock, W., & Cenni, V. (2021). Ectopic Expression of Ankrd2 Affects Proliferation, Motility and Clonogenic Potential of Human Osteosarcoma Cells. Cancers, 13(2), 174. https://doi.org/10.3390/cancers13020174