Development of a High-Fidelity Benchtop Model for Simultaneous Flow, Pressure, and Imaging Assessment of Transarterial Embolization Procedures

被引:0
作者
Gowda, Prateek C. [1 ]
Weinstein, Robert M. [1 ]
Bhargava, Akanksha [2 ]
Senarathna, Janaka [2 ]
Stewart, Ryan Q. [2 ]
Ekbote, Pallavi V. [2 ]
Singh, Mantej [2 ]
Guan, Emily [2 ]
Banghar, Serena [2 ]
Pathak, Arvind P. [1 ,2 ,3 ,4 ,5 ]
Weiss, Clifford R. [1 ,2 ]
机构
[1] Johns Hopkins Univ, Sch Med, Russell H Morgan Dept Radiol & Radiol Sci, Div Intervent Radiol, 7203 Sheikh Zayed Tower,Suite 7,1800 Orleans St, Baltimore, MD 21287 USA
[2] Johns Hopkins Univ, Dept Biomed Engn, Baltimore, MD 21218 USA
[3] Johns Hopkins Univ, Sidney Kimmel Comprehens Canc Ctr, Baltimore, MD 21218 USA
[4] Johns Hopkins Univ, Dept Elect Engn, Baltimore, MD 21218 USA
[5] Johns Hopkins Univ, Inst Nanobiotechnol, Baltimore, MD 21218 USA
基金
美国国家卫生研究院;
关键词
3D printing; Blood flow; Hemodynamics; Hepatic artery; Hepatocellular carcinoma; In vitro model; Interventional radiology; Pressure; Transarterial embolization; Vascular phantom; CHEMOEMBOLIZATION; ARTERY; DYNAMICS; DENSITY;
D O I
10.1007/s13239-024-00749-8
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
PurposeThe development of new endovascular technologies for transarterial embolization has relied on animal studies to validate efficacy before clinical trials are undertaken. Because embolizations in animals and patients are primarily conducted with fluoroscopy alone, local hemodynamic changes are not assessed during testing. However, such hemodynamic metrics could be important indicators of procedure efficacy that could support improved patient outcomes, such as via the determination of procedural endpoints. The purpose of this study is to create a high-fidelity benchtop system for multiparametric (i.e., hemodynamic and imaging) assessment of transarterial embolization procedures.MethodsThe benchtop system consists of a 3D printed, anatomically accurate vascular phantom; a flow loop with a cardiac output simulator; a high-speed video camera; and pressure transducers and flow meters. This system enabled us to vary the heart rate and blood pressure and to simulate clinically relevant hemodynamic states, such as healthy adult, aortic regurgitation, and hypovolemic shock.ResultsWith our radiation-free angiography-mimetic imaging system, we could simultaneously assess gauge pressure and flow values during transarterial embolization. We demonstrated the feasibility of recapitulating the digital subtraction angiography workflow. Finally, we highlighted the utility of this system by characterizing the relationship between an imaging-based metric of procedural endpoint and intravascular flow. We also characterized hemodynamic changes associated with particle embolization within a branch of the hepatic artery and found them to be within reported patient data.ConclusionOur benchtop vascular system was low-cost and reproduced transarterial embolization-related hemodynamic phenomena with high fidelity. We believe that this novel platform enables the characterization of patient physiology, novel catheterization devices, and techniques.
引用
收藏
页码:738 / 748
页数:11
相关论文
共 22 条
  • [1] Dynamic Effects of Aortic Arch Stiffening on Pulsatile Energy Transmission to Cerebral Vasculature as A Determinant of Brain-Heart Coupling
    Aghilinejad, Arian
    Amlani, Faisal
    King, Kevin S.
    Pahlevan, Niema M.
    [J]. SCIENTIFIC REPORTS, 2020, 10 (01)
  • [2] A proof-of-concept study of the in-vivo validation of a computational fluid dynamics model of personalized radioembolization
    Anton, Raul
    Antonana, Javier
    Aramburu, Jorge
    Ezponda, Ana
    Prieto, Elena
    Andonegui, Asier
    Ortega, Julio
    Vivas, Isabel
    Sancho, Lidia
    Sangro, Bruno
    Bilbao, Jose Ignacio
    Rodriguez-Fraile, Macarena
    [J]. SCIENTIFIC REPORTS, 2021, 11 (01)
  • [3] In Vitro Model for Simulating Drug Delivery during Balloon-Occluded Transarterial Chemoembolization
    Aramburu, Jorge
    Anton, Raul
    Fukamizu, Junichi
    Nozawa, Daiki
    Takahashi, Makoto
    Ozaki, Kouji
    Ramos, Juan Carlos
    Sangro, Bruno
    Bilbao, Jose Ignacio
    Tomita, Kosuke
    Matsumoto, Tomohiro
    Hasebe, Terumitsu
    [J]. BIOLOGY-BASEL, 2021, 10 (12):
  • [4] Pressure Wire Assessment of Hemodynamic Alterations after Chemoembolization of Hepatocellular Carcinoma
    Borowski, Allison M.
    Frangos, Andrea
    McCann, Jeffrey W.
    Brown, Daniel B.
    [J]. ACADEMIC RADIOLOGY, 2013, 20 (08) : 1037 - 1040
  • [5] Density- and viscosity-matched Newtonian and non-Newtonian blood-analog solutions with PDMS refractive index
    Brindise, Melissa C.
    Busse, Margaret M.
    Vlachos, Pavlos P.
    [J]. EXPERIMENTS IN FLUIDS, 2018, 59 (11)
  • [6] Impact of Yttrium-90 Microsphere Density, Flow Dynamics, and Administration Technique on Spatial Distribution: Analysis Using an In Vitro Model
    Caine, Marcus
    McCafferty, Michael S.
    McGhee, Scott
    Garcia, Pedro
    Mullett, Wayne M.
    Zhang, Xunli
    Hill, Martyn
    Dreher, Matthew R.
    Lewis, Andrew L.
    [J]. JOURNAL OF VASCULAR AND INTERVENTIONAL RADIOLOGY, 2017, 28 (02) : 260 - 268
  • [7] Arterial diameter of the celiac trunk and its branches. Anatomical study
    da Silveira, Luis Augusto
    Cassiano Silveira, Fernando Braga
    Sassoli Fazan, Valeria Paula
    [J]. ACTA CIRURGICA BRASILEIRA, 2009, 24 (01) : 43 - 47
  • [8] NON-INVASIVE ASSESSMENT OF ELASTIC MODULUS OF ARTERIAL CONSTRUCTS DURING CELL CULTURE USING ULTRASOUND ELASTICITY IMAGING
    Dutta, Debaditya
    Lee, Kee-Won
    Allen, Robert A.
    Wang, Yadong
    Brigham, John C.
    Kim, Kang
    [J]. ULTRASOUND IN MEDICINE AND BIOLOGY, 2013, 39 (11) : 2103 - 2115
  • [9] Fako V, 2017, HEPAT ONCOL, V4, P55, DOI 10.2217/hep-2017-0009
  • [10] Selective Internal Radiation Therapy: Quantifying Distal Penetration and Distribution of Resin and Glass Microspheres in a Surrogate Arterial Model
    Jernigan, Shaphan R.
    Osborne, Jason A.
    Mirek, Christopher J.
    Buckner, Gregory
    [J]. JOURNAL OF VASCULAR AND INTERVENTIONAL RADIOLOGY, 2015, 26 (06) : 897 - 904