Human-scale navigation of magnetic microrobots in hepatic arteries

Навигация магнитных микророботов в печёночных артериях в масштабе человеческого организма
Ning Li, Phillip Fei, Cyril Tous, Mahdi Rezaei Adariani, Marie-Lou Hautot, Inès Ouedraogo, Amina Hadjadj, Ivan P. Dimov, Quan Zhang, Simon Lessard, Zeynab Nosrati, C. Ng, Katayoun Saatchi, Urs O. Häfeli, Charles Tremblay, Samuel Kadoury, An Tang, Sylvain Martel, Gilles Soulez
2024-02-14

MRI-compatible balloon inflationhepatic artery navigationhepatocellular carcinoma embolizationmagnetic microrobotsmagnetic resonance navigation
Using external actuation sources to navigate untethered drug-eluting microrobots in the bloodstream offers great promise in improving the selectivity of drug delivery, especially in oncology, but the current field forces are difficult to maintain with enough strength inside the human body (>70-centimeter-diameter range) to achieve this operation. Here, we present an algorithm to predict the optimal patient position with respect to gravity during endovascular microrobot navigation. Magnetic resonance navigation, using magnetic field gradients in clinical magnetic resonance imaging (MRI), is combined with the algorithm to improve the targeting efficiency of magnetic microrobots (MMRs). Using a dedicated microparticle injector, a high-precision MRI-compatible balloon inflation system, and a clinical MRI, MMRs were successfully steered into targeted lobes via the hepatic arteries of living pigs. The distribution ratio of the microrobots (roughly 2000 MMRs per pig) in the right liver lobe increased from 47.7 to 86.4% and increased in the left lobe from 52.2 to 84.1%. After passing through multiple vascular bifurcations, the number of MMRs reaching four different target liver lobes had a 1.7- to 2.6-fold increase in the navigation groups compared with the control group. Performing simulations on 19 patients with hepatocellular carcinoma (HCC) demonstrated that the proposed technique can meet the need for hepatic embolization in patients with HCC. Our technology offers selectable direction for actuator-based navigation of microrobots at the human scale.
1
After multiple vascular bifurcations, navigation increased microrobot delivery to four target lobes by 1.7- to 2.6-fold versus controls; simulations in 19 HCC patients indicated feasibility for hepatic embolization.
2
Combining gravity-optimized positioning with MRI-based magnetic navigation improves targeting of drug-eluting magnetic microrobots in hepatic arteries.
3
In living pigs, microrobots were successfully steered through hepatic arteries into targeted liver lobes using clinical MRI-compatible systems.
4
Right-lobe microrobot distribution increased from 47.7% to 86.4%, while left-lobe distribution increased from 52.2% to 84.1%.
5
The study introduces an algorithm that predicts optimal patient positioning relative to gravity for magnetic microrobot navigation.

Magnetic drug-eluting microrobots navigated through the hepatic arteries to targeted liver lobes

Human-scale endovascular navigation and targeting efficiency of microrobots under gravity-dependent patient positioning and MRI magnetic-field actuation

Publication Details
Publication Date
2024-02-14
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Authors
Ning Li
Phillip Fei
Cyril Tous
Mahdi Rezaei Adariani
Marie-Lou Hautot
Inès Ouedraogo
Amina Hadjadj
Ivan P. Dimov
Quan Zhang
Simon Lessard
Zeynab Nosrati
C. Ng
Katayoun Saatchi
Urs O. Häfeli
Charles Tremblay
Samuel Kadoury
An Tang
Sylvain Martel
Gilles Soulez
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