| Literature DB >> 36038818 |
Kana Mizuta1,2, Takuma Matsubara3, Akino Goto1, William N Addison1, Mitsushiro Nakatomi4, Kou Matsuo5, Yukiyo Tada-Shigeyama6, Tatsuki Yaginuma7, Hiromi Honda8, Izumi Yoshioka2, Shoichiro Kokabu9.
Abstract
BACKGROUND: Melanoma is a malignant tumor characterized by high proliferation and aggressive metastasis. To address the molecular mechanisms of the proto-oncogene, Rous sarcoma oncogene (Src), which is highly activated and promotes cell proliferation, migration, adhesion, and metastasis in melanoma. Plectin, a cytoskeletal protein, has recently been identified as a Src-binding protein that regulates Src activity in osteoclasts. Plectin is a candidate biomarker of certain tumors because of its high expression and the target of anti-tumor reagents such as ruthenium pyridinecarbothioamide. The molecular mechanisms by which plectin affects melanoma is still unclear. In this study, we examined the role of plectin in melanoma tumor formation.Entities:
Keywords: Cell adhesion; Melanoma; Plectin; Src; Tumor genesis
Mesh:
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Year: 2022 PMID: 36038818 PMCID: PMC9426213 DOI: 10.1186/s12885-022-10033-4
Source DB: PubMed Journal: BMC Cancer ISSN: 1471-2407 Impact factor: 4.638
Fig. 1Src signaling is impaired in plectin deficient cells. A PLECTIN levels in control B16 and 2 clones of plectin deficient B16 cells (PKO1 and PKO2) were determined by western blotting analysis. B SRC was immunoprecipitated with an anti-Src antibody (IP:SRC) and interaction with PLECTIN was detected by western blotting analysis. C Expression and phosphorylation of PYK2, or GAPDH was determined by western blotting assay 24 h after plating. D Src was immunoprecipitated with an anti-Src antibody (IP:SRC) and interaction with PYK2 was detected by western blotting analysis. E Cells were stained with Rhodamine-phalloidin and vimentin/anti-mouse Alexa fluor 488. Long actin fibers are indicated by arrows. Cell shapes are outlined with a dotted line in the bright-field image. Scale bar = 50 μm. F Quantification of the number of elongated cells in samples shown in (E) (n = 5). *; p < 0.05 vs control
Fig. 2Plectin knockout cells form low density tumors. A Control or PKO cells (1 × 105 cells per mouse) were subcutaneously injected into BALB/cAJcl-nu/nu mice (n = 8). Photographs of extracted tumors 2 weeks after injection. Scale bar = 10 mm. B Tumor density was calculated from excised tumor weight and volume. Averages of the total tumor density of all tumors excised from each mouse is shown in the graph (n = 8). C Sections of tumors were stained with H&E. Scale bar = 50 μm. D Cell density and the area between cells were calculated. (*; p < 0.05 vs control)
Fig. 3Cell proliferation is decreased in plectin knockout cells. A Cells were plated at a density of 2.5 × 104 cells per well in 24-well plates for the indicated time period after which cells were trypsinized and the number of cells determined with an automated cell counter (n = 6). B Cells were plated at a density of 5 × 103 cells per well in a 96 well plate and the number of viable cells measured by CCK-8 assay at the indicated time (n = 4). C mRNA was harvested from control or PKO cells 1 d after plating. Expression of Ccnd1 was determined by real time qPCR (n = 3). D Control or plectin knockout B16 cells were fixed and stained with anti-Ki-67/Alexa fluor 555 and DAPI. The percentage of Ki-67 positive cells relative to DAPI positive cells was calculated. (n = 5), *; p < 0.05 vs control
Fig. 4Cell adhesion is impaired in plectin knockout cells. A Cells were cultured at a density of 5 × 103 cells per 15 μl drop on the inner side of a dish lid to form spheroids for 7 d. Images were acquired with a stereoscopic microscope and volumes quantified with ImageJ. Scale bar = 250 μm (n = 5). B Confluent cells were detached with dispase and mechanically fragmented by pipetting. The left panel shows an image of the fragmented cell monolayer and the right panel shows quantification of the number of cell fragments. Scale bar = 20 mm (n = 6). C Cells were plated on a fibronectin-coated dish and counted the number of adherent cells after 2 h. The adherent cells were stained with crystal violet (left 3 panels). After taken photo, the adherent cells were lysed and measured the absorbance shown at graph (right panel) (n = 6), *; p < 0.05 vs control
Fig. 5Src overexpression alters cell shape of plectin knockout melanoma cells. A Src was overexpressed in B16 and PKO1. Expression and phosphorylation of PYK2 was determined by western blotting analysis. B Cells were immunostained with anti-Flag/Alexa fluor 488, Rhodamine-phalloidin and DAPI 1 d after Src introduction. Cell shapes are outlined with a dotted line in the bright-field image. Scale bar = 50 μm. C The number of elongated cells were quantified (n = 5). *; p < 0.05 vs control Src(−), #; p < 0.05 vs PKO1 Src(−), ns; no significance vs control Src(−)
Fig. 6Src overexpression rescues cell proliferation and adhesion of plectin knockout melanoma cells. A Cells were plated at a density of 2.5 × 104 cells per well in 24-well plates and the number of cells quantified with an automated cell counter (n = 6). B Cells were plated at 1 d after Src introduction. The number of viable cells were determined by CCK-8 assay at indicated time (n = 3). C Cells were fixed and stained with DAPI, anti-Ki-67/Alexa fluor 555 and anti-Flag/Alexa fluor 488 at 1 d after plating. The percentage of Ki-67 positive cells relative to DAPI was calculated. Scale bur = 100 μm (n = 5). D Src was introduced into the cells for 1 d. Cells were cultured at 5 × 103 cells per 15 μl drop on a dish lid to form spheroid for 7 d. Spheroids were observed by stereoscopic microscope and measured by ImageJ. Scale bar = 500 μm (n = 6). E The confluent cells were detached with dispase and number of cell fragments was taken photo (left panel) and quantified (right panel). Scale bar = 20 mm (n = 6). F Cells were plated on a fibronectin-coated dish 1 d after Src introduction. After 2 h incubation, the adherent cells were stained with crystal violet (left 4 panels) and counted (right panel). Scale bar = 10 μm (n = 6), *; p < 0.05 vs control Src(−), #; p < 0.05 vs PKO Src(−), ns; no significance vs control Src(−)