Literature DB >> 29932032

Liver Radioembolization: An Analysis of Parameters that Influence the Catheter-Based Particle-Delivery via CFD.

Jorge Aramburu1, Raúl Antón1,2, Alejandro Rivas1, Juan C Ramos1, Bruno Sangro2,3,4, José I Bilbao2,3.   

Abstract

Radioembolization (RE) is a valuable treatment for liver cancer. It consists of administering radioactive microspheres by an intra-arterially placed catheter with the aim of lodging these microspheres, which are driven by the bloodstream, in the tumoral bed. Even though it is a safe treatment, some radiation-induced complications may arise. In trying to detect or solve the possible incidences that cause nontarget irradiation, simulating the particle- hemodynamics in hepatic arteries during RE by computational fluid dynamics (CFD) tools has become a valuable approach. This paper reviews the parameters that influence the outcome of RE and that have been studied via numerical simulations. In this numerical approach, the outcome of RE is regarded as successful if particles reach the artery branches that feed tumor-bearing liver segments. Up to 10 parameters have been reviewed. The variation of each parameter actually alters the hemodynamic pattern in the vicinities of the catheter tip and locally alters the incorporation of the particles into the bloodstream. Therefore, in general, the local influences of these parameters should result in global differences in terms of particle distribution in the hepatic artery branches. However, it has been observed that under some (qualitatively described) appropriate conditions where particles align with blood streamlines, the local influence resulting from a variation of a given parameter vanishes and no global differences are observed. Furthermore, the increasing number of CFD studies on RE suggests that numerical simulations have become an invaluable research tool in the study of RE. Copyright© Bentham Science Publishers; For any queries, please email at epub@benthamscience.net.

Entities:  

Keywords:  Radioembolization; computational fluid-particle dynamics; hemodynamics; hepatic artery; liver cancer; particle delivery.

Mesh:

Year:  2020        PMID: 29932032     DOI: 10.2174/0929867325666180622145647

Source DB:  PubMed          Journal:  Curr Med Chem        ISSN: 0929-8673            Impact factor:   4.530


  5 in total

1.  Personalized Dosimetry for Liver Cancer Y-90 Radioembolization Using Computational Fluid Dynamics and Monte Carlo Simulation.

Authors:  Emilie Roncali; Amirtahà Taebi; Cameron Foster; Catherine Tram Vu
Journal:  Ann Biomed Eng       Date:  2020-01-31       Impact factor: 3.934

2.  Computational study of a novel catheter for liver radioembolization.

Authors:  Julio Ortega; Raúl Antón; Juan Carlos Ramos; Alejandro Rivas; Gorka S Larraona; Bruno Sangro; José Ignacio Bilbao; Jorge Aramburu
Journal:  Int J Numer Method Biomed Eng       Date:  2022-02-27       Impact factor: 2.648

3.  Computational Modeling of the Liver Arterial Blood Flow for Microsphere Therapy: Effect of Boundary Conditions.

Authors:  Amirtahà Taebi; Rex M Pillai; Bahman S Roudsari; Catherine T Vu; Emilie Roncali
Journal:  Bioengineering (Basel)       Date:  2020-06-29

4.  A proof-of-concept study of the in-vivo validation of a computational fluid dynamics model of personalized radioembolization.

Authors:  Raúl Antón; Javier Antoñana; Jorge Aramburu; Ana Ezponda; Elena Prieto; Asier Andonegui; Julio Ortega; Isabel Vivas; Lidia Sancho; Bruno Sangro; José Ignacio Bilbao; Macarena Rodríguez-Fraile
Journal:  Sci Rep       Date:  2021-02-16       Impact factor: 4.379

5.  In Vitro Model for Simulating Drug Delivery during Balloon-Occluded Transarterial Chemoembolization.

Authors:  Jorge Aramburu; Raúl Antón; Junichi Fukamizu; Daiki Nozawa; Makoto Takahashi; Kouji Ozaki; Juan Carlos Ramos; Bruno Sangro; José Ignacio Bilbao; Kosuke Tomita; Tomohiro Matsumoto; Terumitsu Hasebe
Journal:  Biology (Basel)       Date:  2021-12-16
  5 in total

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