3D Modelling on Biodegradable Nanoparticle-Enhanced Cryoablation of Liver Tumor Based on Real Anatomical Model.
Cryo Letters
; 37(6): 411-420, 2016.
Article
em En
| MEDLINE
| ID: mdl-28072428
BACKGROUND: Nanoparticle-enhanced freezing is of great importance for developing a conformal targeted cryoablation for liver tumor with complex shape. However, the safety and biocompatibility of nanoparticles should also be of major concerns. OBJECTIVE: This study is to investigate the enhanced cryoablation mediated by the MgO nanoparticles which are nontoxic, biodegradable, and have few side-effects on the human body. MATERIALS AND METHODS: A three-dimensional numerical model has been developed based on a real geometrical anatomical structure to characterize such nanocryosurgical freezing of liver tumor. The evolutions of temperature field and ablation volume were investigated subject to different concentrations and scopes of the loaded nanoparticles, respectively. Additionally, the results of different probe numbers were also taken into consideration. RESULTS: It was found that the lesion growth was evidently affected by the configurations of both the nanoparticles and cryoprobes. Both ablation and frozen regions were enlarged with the increase of the loading ratio and scope of MgO nanoparticles. It was worth mentioning that thermal-physiological behavior of the adjacent large blood vessels also played an important role in affecting the target temperature field distribution. CONCLUSION: The present study established a feasible way for verisimilarly simulating the physiological manifestation of human liver in the process of nano-freezing modality, which would provide a valuable guidance for future clinical practice of conformal nano-cryoablation on liver tumor.
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Bases de dados:
MEDLINE
Assunto principal:
Criocirurgia
/
Nanotecnologia
/
Neoplasias Hepáticas
/
Modelos Anatômicos
/
Modelos Teóricos
Tipo de estudo:
Guideline
Limite:
Humans
Idioma:
En
Revista:
Cryo Letters
Assunto da revista:
BIOLOGIA
/
QUIMICA
Ano de publicação:
2016
Tipo de documento:
Article