ArticleJournal of the Royal Society, Interface2023
Lumped parameter liver simulation to predict acute haemodynamic alterations following partial resections.
Article in Journal of the Royal Society, Interface, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed.
- Lumped parameter modeling of changes in liver hemodynamics due to cirrhosis.Biomechanics and modeling in mechanobiology · 2026Article
- Hemodynamic impact of acute liver injury on cardiac function: An in silico study via a closed-loop cardiovascular model.PLoS computational biology · 2026Article
- Mechanomedicine in digestive surgery: a theranostic framework integrating mechanical diagnostics and therapeutic modulation across the perioperative continuum.Theranostics · 2026Review
- [Study on the electric field transmission characteristics of conducted-electrode tumor treating fields].Sheng wu yi xue gong cheng xue za zhi = Journal of biomedical engineering = Shengwu yixue gongchengxue zazhi · 2025Article
- A simplified computational liver perfusion model, with applications to organ preservation.Scientific reports · 2025Article
- Lumped parameter liver simulation to predict acute haemodynamic alterations following partial resections.Journal of the Royal Society, Interface · 2023Article
- An Immunological and Translational Framework for Interspecies Exogenic Liver Transplantation.Cell transplantationReview
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Authors and funding
3 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Partial liver resections are routinely performed in living donor liver transplantation and to debulk tumours in liver malignancies, but surgical decisions on vessel reconstruction for adequate inflow and outflow are challenging. Pre-operative evaluation is often limited to radiological imaging, which fails to account for post-resection haemodynamic alterations. Substantial evidence suggests post-surgical increase in local volume flow rate enhances shear stress, signalling hepatic regeneration, but excessive shear stress has been postulated to result in small for size syndrome and liver failure. Predicting haemodynamic alterations throughout the liver is particularly challenging due to the dendritic architecture of the vasculature, spanning several orders of magnitude in diameter. Therefore, we developed a mathematical lumped parameter model with realistic heterogeneities capturing inflow/outflow of the human liver to simulate acute perfusion alterations following surgical resection. Our model is parametrized using clinical measurements, relies on a single free parameter and accurately captures established perfusion characteristics. We quantify acute changes in volume flow rate, flow speed and wall shear stress following variable, realistic liver resections and make comparisons with the intact liver. Our numerical model runs in minutes and can be adapted to patient-specific anatomy, providing a novel computational tool aimed at assisting pre- and intra-operative surgical decisions for liver resections.
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Registered trials
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