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CO(2) bubbling-based 'Nanobomb' System for Targetedly Suppressing Panc-1 Pancreatic Tumor via Low Intensity Ultrasound-activated Inertial Cavitation

Noninvasive and targeted physical treatment is still desirable especially for those cancerous patients. Herein, we develop a new physical treatment protocol by employing CO(2) bubbling-based 'nanobomb' system consisting of low-intensity ultrasound (1.0 W/cm(2)) and a well-constructed pH/te...

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Autores principales: Zhang, Kun, Xu, Huixiong, Chen, Hangrong, Jia, Xiaoqing, Zheng, Shuguang, Cai, Xiaojun, Wang, Ronghui, Mou, Juan, Zheng, Yuanyi, Shi, Jianlin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4568455/
https://www.ncbi.nlm.nih.gov/pubmed/26379793
http://dx.doi.org/10.7150/thno.12691
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author Zhang, Kun
Xu, Huixiong
Chen, Hangrong
Jia, Xiaoqing
Zheng, Shuguang
Cai, Xiaojun
Wang, Ronghui
Mou, Juan
Zheng, Yuanyi
Shi, Jianlin
author_facet Zhang, Kun
Xu, Huixiong
Chen, Hangrong
Jia, Xiaoqing
Zheng, Shuguang
Cai, Xiaojun
Wang, Ronghui
Mou, Juan
Zheng, Yuanyi
Shi, Jianlin
author_sort Zhang, Kun
collection PubMed
description Noninvasive and targeted physical treatment is still desirable especially for those cancerous patients. Herein, we develop a new physical treatment protocol by employing CO(2) bubbling-based 'nanobomb' system consisting of low-intensity ultrasound (1.0 W/cm(2)) and a well-constructed pH/temperature dual-responsive CO(2 )release system. Depending on the temperature elevation caused by exogenous low-intensity therapeutic ultrasound irradiation and the low pH caused by the endogenous acidic-environment around/within tumor, dual-responsive CO(2 )release system can quickly release CO(2 )bubbles, and afterwards, the generated CO(2 )bubbles waves will timely explode before dissolution due to triggering by therapeutic ultrasound waves. Related bio-effects (e.g., cavitation, mechanical, shock waves, etc) caused by CO(2 )bubbles' explosion effectively induce instant necrosis of panc-1 cells and blood vessel destruction within panc-1 tumor, and consequently inhibit the growth of panc-1 solid tumor, simultaneously minimizing the side effects to normal organs. This new physiotherapy employing CO(2) bubbling-based 'nanobomb' system promises significant potentials in targetedly suppressing tumors, especially for those highly deadly cancers.
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spelling pubmed-45684552015-09-15 CO(2) bubbling-based 'Nanobomb' System for Targetedly Suppressing Panc-1 Pancreatic Tumor via Low Intensity Ultrasound-activated Inertial Cavitation Zhang, Kun Xu, Huixiong Chen, Hangrong Jia, Xiaoqing Zheng, Shuguang Cai, Xiaojun Wang, Ronghui Mou, Juan Zheng, Yuanyi Shi, Jianlin Theranostics Research Paper Noninvasive and targeted physical treatment is still desirable especially for those cancerous patients. Herein, we develop a new physical treatment protocol by employing CO(2) bubbling-based 'nanobomb' system consisting of low-intensity ultrasound (1.0 W/cm(2)) and a well-constructed pH/temperature dual-responsive CO(2 )release system. Depending on the temperature elevation caused by exogenous low-intensity therapeutic ultrasound irradiation and the low pH caused by the endogenous acidic-environment around/within tumor, dual-responsive CO(2 )release system can quickly release CO(2 )bubbles, and afterwards, the generated CO(2 )bubbles waves will timely explode before dissolution due to triggering by therapeutic ultrasound waves. Related bio-effects (e.g., cavitation, mechanical, shock waves, etc) caused by CO(2 )bubbles' explosion effectively induce instant necrosis of panc-1 cells and blood vessel destruction within panc-1 tumor, and consequently inhibit the growth of panc-1 solid tumor, simultaneously minimizing the side effects to normal organs. This new physiotherapy employing CO(2) bubbling-based 'nanobomb' system promises significant potentials in targetedly suppressing tumors, especially for those highly deadly cancers. Ivyspring International Publisher 2015-09-12 /pmc/articles/PMC4568455/ /pubmed/26379793 http://dx.doi.org/10.7150/thno.12691 Text en © 2015 Ivyspring International Publisher. Reproduction is permitted for personal, noncommercial use, provided that the article is in whole, unmodified, and properly cited. See http://ivyspring.com/terms for terms and conditions.
spellingShingle Research Paper
Zhang, Kun
Xu, Huixiong
Chen, Hangrong
Jia, Xiaoqing
Zheng, Shuguang
Cai, Xiaojun
Wang, Ronghui
Mou, Juan
Zheng, Yuanyi
Shi, Jianlin
CO(2) bubbling-based 'Nanobomb' System for Targetedly Suppressing Panc-1 Pancreatic Tumor via Low Intensity Ultrasound-activated Inertial Cavitation
title CO(2) bubbling-based 'Nanobomb' System for Targetedly Suppressing Panc-1 Pancreatic Tumor via Low Intensity Ultrasound-activated Inertial Cavitation
title_full CO(2) bubbling-based 'Nanobomb' System for Targetedly Suppressing Panc-1 Pancreatic Tumor via Low Intensity Ultrasound-activated Inertial Cavitation
title_fullStr CO(2) bubbling-based 'Nanobomb' System for Targetedly Suppressing Panc-1 Pancreatic Tumor via Low Intensity Ultrasound-activated Inertial Cavitation
title_full_unstemmed CO(2) bubbling-based 'Nanobomb' System for Targetedly Suppressing Panc-1 Pancreatic Tumor via Low Intensity Ultrasound-activated Inertial Cavitation
title_short CO(2) bubbling-based 'Nanobomb' System for Targetedly Suppressing Panc-1 Pancreatic Tumor via Low Intensity Ultrasound-activated Inertial Cavitation
title_sort co(2) bubbling-based 'nanobomb' system for targetedly suppressing panc-1 pancreatic tumor via low intensity ultrasound-activated inertial cavitation
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4568455/
https://www.ncbi.nlm.nih.gov/pubmed/26379793
http://dx.doi.org/10.7150/thno.12691
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