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Updated: Nov 17, 2025

Rapid and Robust Analysis of Cellular and Molecular Polarization Induced by Chemokine Signaling
Published on: December 12, 2014
MSN, MWCNT and ZnO nanoparticle-induced CHO-K1 cell polarisation is linked to cytoskeleton ablation
Karmveer Yadav1, Syed Azmal Ali2, Ashok Kumar Mohanty2
1N.T. Lab-1, Division of Animal Biochemistry, ICAR-National Dairy Research Institute, Karnal, 132001, India. karmveery3@gmail.com.
Background:
The cellular response to nanoparticles (NPs) for the mechanical clue and biochemical changes are unexplored. Here, we provide the comprehensive analysis of the Chinese Hamster Ovary (CHO-K1) cell line to study cell behaviour following the exposure of mesoporous silica nanoparticle (MSN), multiwall carbon nanotubes (MWCNTs), and zinc oxide (ZnO) NPs.
Results:
Through the high-throughput proteomic study, we observed that the effect of NPs is alone not restricted to cell viability but also on cell polarisation. In the case of MSN, no drastic changes were observed in cellular morphology, but it upregulated chaperons that might prevent protein aggregation. However, MWCNT showed elongated cell appearance with numerous cytoplasmic vacuoles, and induce lamellipodia formation through actin polymerisation. The cytoskeleton remodelling was accompanied by the increased expression of Dlc-1, cofilin and Rac1 proteins. While ZnO NPs resulted in the rounded cell morphology along with nuclear abnormalities. The proteome analysis revealed that UBXN11 control cell roundness and DOCK3 leads to actin stress fibre formation and finally, loss of cell adhesion. It enhances the expression of catastrophic DNA damage and apoptotic proteins, which was unrecoverable even after 72 h, as confirmed by the colony formation assay. All three NPs trigger over-expression of the endocytic pathway, ubiquitination, and proteasomal complex proteins. The data indicate that ZnO and MSN entered into the cells through clathrin-mediated pathways; whereas, MWCNT invades through ER-mediated phagocytosis.
Conclusions:
Based on the incubation and concentration of NPs, our work provides evidence for the activation of Rac-Rho signalling pathway to alter cytoskeleton dynamics. Our results assist as a sensitive early molecular readout for nanosafety assessment.
Insights
Nanoparticles (NPs) alter cell behavior, impacting viability and polarization. Zinc oxide NPs caused DNA damage and cell death, highlighting nanosafety assessment needs.
Area of Science:
- Cellular and Molecular Toxicology
- Nanomaterial Safety
- Biochemistry
Background:
- Cellular responses to nanoparticles (NPs) regarding mechanical and biochemical changes are not well understood.
- This study investigates the effects of mesoporous silica nanoparticle (MSN), multiwall carbon nanotubes (MWCNTs), and zinc oxide (ZnO) NPs on Chinese Hamster Ovary (CHO-K1) cells.
Purpose of the Study:
- To comprehensively analyze the cellular behavior of CHO-K1 cells upon exposure to MSN, MWCNTs, and ZnO NPs.
- To understand the molecular mechanisms underlying NP-induced cellular changes, including viability, morphology, and internal pathways.
Main Methods:
- High-throughput proteomic analysis to assess protein expression changes.
- Cellular morphology and abnormality assessments.
- Colony formation assays to evaluate cell recovery and viability.
Main Results:
- NPs affected cell viability and polarization; ZnO NPs induced DNA damage and apoptosis, with no recovery after 72 hours.
- MSN upregulated chaperones, MWCNTs caused cytoskeletal remodeling and lamellipodia formation, while ZnO NPs led to rounded cells and nuclear abnormalities.
- All NPs triggered overexpression of the endocytic pathway, ubiquitination, and proteasomal complex proteins, with distinct cellular entry mechanisms observed for each NP type.
Conclusions:
- NP exposure activates the Rac-Rho signaling pathway, altering cytoskeleton dynamics.
- The study provides sensitive early molecular readouts for nanosafety assessment based on NP incubation and concentration.
Related Concept Videos
Polarity of the Cytoskeleton
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