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An Efficient, Short Stimulus PANC-1 Cancer Cell Ablation and Electrothermal Therapy Driven by Hydrophobic Interactions

Promising results in clinical studies have been demonstrated by the utilization of electrothermal agents (ETAs) in cancer therapy. However, a difficulty arises from the balance between facilitating the degradation of ETAs, and at the same time, increasing the electrothermal performance/stability req...

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Autores principales: Meivita, Maria P., Lee, Denise, Naikar, J Shamita, Go, Shao-Xiang, Teoh, Wey Chyi, Tan, Yaw Sing, Bajalovic, Natasa, Loke, Desmond K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9867450/
https://www.ncbi.nlm.nih.gov/pubmed/36678734
http://dx.doi.org/10.3390/pharmaceutics15010106
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author Meivita, Maria P.
Lee, Denise
Naikar, J Shamita
Go, Shao-Xiang
Teoh, Wey Chyi
Tan, Yaw Sing
Bajalovic, Natasa
Loke, Desmond K.
author_facet Meivita, Maria P.
Lee, Denise
Naikar, J Shamita
Go, Shao-Xiang
Teoh, Wey Chyi
Tan, Yaw Sing
Bajalovic, Natasa
Loke, Desmond K.
author_sort Meivita, Maria P.
collection PubMed
description Promising results in clinical studies have been demonstrated by the utilization of electrothermal agents (ETAs) in cancer therapy. However, a difficulty arises from the balance between facilitating the degradation of ETAs, and at the same time, increasing the electrothermal performance/stability required for highly efficient treatment. In this study, we controlled the thermal signature of the MoS(2) by harnessing MoS(2) nanostructures with M13 phage (MNM) via the structural assembling (hydrophobic interaction) phenomena and developed a combined PANC-1 cancer cell–MNM alternating current (AC)-stimulus framework for cancer cell ablation and electrothermal therapy. A percentage decrease in the cell viability of ~23% was achieved, as well as a degradation time of 2 weeks; a stimulus length of 100 μs was also achieved. Molecular dynamics (MD) simulations revealed the assembling kinetics in integrated M13 phage–cancer cell protein systems and the structural origin of the hydrophobic interaction-enabled increase in thermal conduction. This study not only introduced an ‘ideal’ agent that avoided the limitations of ETAs but also provided a proof-of-concept application of MoS(2)-based materials in efficacious cancer therapy.
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spelling pubmed-98674502023-01-22 An Efficient, Short Stimulus PANC-1 Cancer Cell Ablation and Electrothermal Therapy Driven by Hydrophobic Interactions Meivita, Maria P. Lee, Denise Naikar, J Shamita Go, Shao-Xiang Teoh, Wey Chyi Tan, Yaw Sing Bajalovic, Natasa Loke, Desmond K. Pharmaceutics Article Promising results in clinical studies have been demonstrated by the utilization of electrothermal agents (ETAs) in cancer therapy. However, a difficulty arises from the balance between facilitating the degradation of ETAs, and at the same time, increasing the electrothermal performance/stability required for highly efficient treatment. In this study, we controlled the thermal signature of the MoS(2) by harnessing MoS(2) nanostructures with M13 phage (MNM) via the structural assembling (hydrophobic interaction) phenomena and developed a combined PANC-1 cancer cell–MNM alternating current (AC)-stimulus framework for cancer cell ablation and electrothermal therapy. A percentage decrease in the cell viability of ~23% was achieved, as well as a degradation time of 2 weeks; a stimulus length of 100 μs was also achieved. Molecular dynamics (MD) simulations revealed the assembling kinetics in integrated M13 phage–cancer cell protein systems and the structural origin of the hydrophobic interaction-enabled increase in thermal conduction. This study not only introduced an ‘ideal’ agent that avoided the limitations of ETAs but also provided a proof-of-concept application of MoS(2)-based materials in efficacious cancer therapy. MDPI 2022-12-28 /pmc/articles/PMC9867450/ /pubmed/36678734 http://dx.doi.org/10.3390/pharmaceutics15010106 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Meivita, Maria P.
Lee, Denise
Naikar, J Shamita
Go, Shao-Xiang
Teoh, Wey Chyi
Tan, Yaw Sing
Bajalovic, Natasa
Loke, Desmond K.
An Efficient, Short Stimulus PANC-1 Cancer Cell Ablation and Electrothermal Therapy Driven by Hydrophobic Interactions
title An Efficient, Short Stimulus PANC-1 Cancer Cell Ablation and Electrothermal Therapy Driven by Hydrophobic Interactions
title_full An Efficient, Short Stimulus PANC-1 Cancer Cell Ablation and Electrothermal Therapy Driven by Hydrophobic Interactions
title_fullStr An Efficient, Short Stimulus PANC-1 Cancer Cell Ablation and Electrothermal Therapy Driven by Hydrophobic Interactions
title_full_unstemmed An Efficient, Short Stimulus PANC-1 Cancer Cell Ablation and Electrothermal Therapy Driven by Hydrophobic Interactions
title_short An Efficient, Short Stimulus PANC-1 Cancer Cell Ablation and Electrothermal Therapy Driven by Hydrophobic Interactions
title_sort efficient, short stimulus panc-1 cancer cell ablation and electrothermal therapy driven by hydrophobic interactions
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9867450/
https://www.ncbi.nlm.nih.gov/pubmed/36678734
http://dx.doi.org/10.3390/pharmaceutics15010106
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