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Regulation of Cell-Nanoparticle Interactions through Mechanobiology

Bio-nano interactions have been extensively explored in nanomedicine to develop selective delivery strategies and reduce systemic toxicity. To enhance the delivery of nanocarriers to cancer cells and improve the therapeutic efficiency, different nanomaterials have been developed. However, the limite...

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Published in:Nano letters 2025-01
Main Authors: Cassani, Marco, Niro, Francesco, Fernandes, Soraia, Pereira-Sousa, Daniel, Faes Morazzo, Sofia, Durikova, Helena, Wang, Tianzheng, González-Cabaleiro, Lara, Vrbsky, Jan, Oliver-De La Cruz, Jorge, Klimovic, Simon, Pribyl, Jan, Loja, Tomas, Skladal, Petr, Caruso, Frank, Forte, Giancarlo
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container_title Nano letters
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creator Cassani, Marco
Niro, Francesco
Fernandes, Soraia
Pereira-Sousa, Daniel
Faes Morazzo, Sofia
Durikova, Helena
Wang, Tianzheng
González-Cabaleiro, Lara
Vrbsky, Jan
Oliver-De La Cruz, Jorge
Klimovic, Simon
Pribyl, Jan
Loja, Tomas
Skladal, Petr
Caruso, Frank
Forte, Giancarlo
description Bio-nano interactions have been extensively explored in nanomedicine to develop selective delivery strategies and reduce systemic toxicity. To enhance the delivery of nanocarriers to cancer cells and improve the therapeutic efficiency, different nanomaterials have been developed. However, the limited clinical translation of nanoparticle-based therapies, largely due to issues associated with poor targeting, requires a deeper understanding of the biological phenomena underlying cell-nanoparticle interactions. In this context, we investigate the molecular and cellular mechanobiology parameters that control such interactions. We demonstrate that the pharmacological inhibition or the genetic ablation of the key mechanosensitive component of the Hippo pathway, i.e., yes-associated protein, enhances nanoparticle internalization by 1.5-fold. Importantly, this phenomenon occurs independently of nanoparticle properties, such as size, or cell properties such as surface area and stiffness. Our study reveals that the internalization of nanoparticles in target cells can be controlled by modulating cell mechanosensing pathways, potentially enhancing nanotherapy specificity.
doi_str_mv 10.1021/acs.nanolett.4c04290
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title Regulation of Cell-Nanoparticle Interactions through Mechanobiology
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