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Updated: May 5, 2026

Mouse Kidney Transplantation: Models of Allograft Rejection
Published on: October 11, 2014
A Heterogeneous Bipartite Graph Framework for Donor-Recipient Matching in Kidney Transplantation
Sheida Majouni1, Karthik Tennankore2, Samina Abidi3
1NICHE Research Group, Faculty of Computer Science, Dalhousie University, Halifax, Canada.
Abstract:
This paper presents a novel graph-based framework for donor-recipient matching for organ transplantation, specifically targeting kidney transplantation. We pursue donor-recipient matching as a feature set matching problem using a graph-based approach. To represent kidney transplant clinical and operational considerations, we developed a kidney transplant graph by embedding kidney transplantation knowledge and relevant datasets to capture the complex relationships between the heterogeneous donor and recipient feature sets to provide a system for optimal donor and recipient matches. Our approach includes multi-dimensional graph edge types representing clinical considerations to provide comprehensive and optimal pairs. We propose the kidney transplant graph with a graph neural network to optimize donor-recipient compatibility predictions, enhancing decision-making in transplantation.
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