| Literature DB >> 25576037 |
Nithya Subramanian1,2, Jagat R Kanwar3, Prasanna Kumar Athalya4,5, Narayanan Janakiraman6, Vikas Khetan7, Rupinder K Kanwar8, Sailaja Eluchuri9, Subramanian Krishnakumar10,11.
Abstract
BACKGROUND: Epithelial cell adhesion molecule (EpCAM) is overexpressed in solid tumors and regarded as a putative cancer stem cell marker. Here, we report that employing EpCAM aptamer (EpApt) and EpCAM siRNA (SiEp) dual approach, for the targeted delivery of siRNA to EpCAM positive cancer cells, efficiently inhibits cancer cell proliferation.Entities:
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Year: 2015 PMID: 25576037 PMCID: PMC4307906 DOI: 10.1186/s12929-014-0108-9
Source DB: PubMed Journal: J Biomed Sci ISSN: 1021-7770 Impact factor: 8.410
Figure 1Schematic showing the cell specific silencing strategy mediated by PEI nanocomplex fabricated with aptamer and siRNA. PEI nanoparticle is formed using sodium citrate as charge stabilizer, followed by the addition of siRNA and EpCAM aptamer to form the PEI-Apt-siRNA complex. This complex guided by the aptamer, binds to the EpCAM positive cells and delivers the siRNA in the cytoplasm resulting in target gene silencing and inhibition of cellular function pertained to it.
Figure 2Effect of citrate on the nanocomplex size, charge and characterization of the nanocomplex. Graph showing the hydrodynamic sizes (A) and surface charge (B) of PEI: citrate nanocomplexes formed using different ratio of PEI to citrate measured using zetasizer. C. Titration of different concentration of aptamer and siRNA was carried out and loaded onto 2% agarose gel with ethidium bromide and checked for the retention of the PEI complex on the wells. Lane 3 shows 200nM of aptamer and 200nM of siRNA is required to saturate 0.3μgs of PEI and the next highest concentration of 300nM of aptamer & siRNA respectively had some amount of free siRNA and aptamer (lane 4). Lane 5 & 6 indicates free aptamer and siRNA indicated with red and black arrow respectively. On the right, histogram plot showing Particle size distribution of the PEI-Apt-siRNA nanocomplex. D. Histogram overlay plot showing the percent number distribution of the PEI nanocore alone and PEI-nanocomplex with aptamer and siRNA (hydrodynamic diameter in nm) measured using zetasizer. E. Graph showing the total counts of representative zeta-potential (mV) of the PEI nanocore and the PEI-Apt-siEp nanocomplex. F. TEM images of the PEI nanocomplex left panel showing the uniformity of particle distribution and histogram showing distinct particles with a spherical shape (G). H. Graph showing the percentage cell proliferation upon treating with different concentration from 0.1 to 3 μg/mL of PEI on MCF-7 and WERI-Rb1 cell line till 48 h. Inhibitory effect of PEI on the cell proliferation and mitrochondrial activity was assessed by MTT assay.
Figure 3Expression of EpCAM & binding of the complexes on cells. A. Histogram overlay plot showing the expression levels of EpCAM protein in MCF-7 cells were evaluated using antibody based method and flow cytometry. B. Histogram overlay plot of MCF-7 cells bound to EpApt/EpDT3 or ScrApt/ScrDT3. C. Histogram overlay plot of MCF-7 cells bound to aptamer alone or PEI-Apt-siRNA complexes. D. Histogram overlay of WERI-Rb1 cells. Aptamer alone or complexes were added to cells and incubated for 2 h, washed & checked by flow cytometry. E. Flow cytometry analysis and histogram overlay plot showing the cells blocked with EpCAM antibody before incubating with EpDT3-FI or with EpDT3-FI alone and unstained cells. F. Flow cytometry analysis and histogram overlay plot of cells blocked with antibody followed by incubation with PEI-EpApt-SiEp.
Figure 4Cell Uptake of the PEI nanocomplex by MCF-7 and WERI-Rb1 cells. The fabricated PEI complexes and free aptamer were added to MCF-7 cells (upper panel A-E), WERI-Rb1 cells (lower panel A-E) and incubated for their uptake at 37°C for 4 h followed DAPI counterstaining and microscopic evaluation. Images were taken at 40× using AxioObserver fluorescent microscope. Legend on the top of phase image represents the aptamer or nanocomplex added to the respective panels.
Figure 5Expression of EpCAM post silencing using PEI Nanocomplexes. A. qPCR analysis, graph showing the fold change in the EpCAM expression levels, calculated by normalizing with untreated controls and using GAPDH as internal control gene. qPCR was performed post treatment with PEI alone or PEI-Apt-siRNA complexes or silencing using Lipo-siEp. B. Immunoblots were performed for EpCAM and beta-actin to check the silencing efficiency at protein level using EpCAM C-10 primary antibody from Santa Cruz at 1:400 dilution, secondary anti- mouse IgG HRP from Santacruz at 1:1000 dilution. C. Densitometry of the immunoblot normalized with tubulin-internal control and untreated control. D. Cell proliferation was assessed by performing MTT assay. The graph represents the percentage cell proliferation after treatment with the aptamer alone or PEI alone or PEI-Apt-siRNA complexes. Percentage cell proliferation was calculated considering untreated cells as controls in MCF-7 &WERI-Rb1 cell lines.