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Updated: Jun 8, 2026

Mouse Kidney Transplantation: Models of Allograft Rejection
Published on: October 11, 2014
An integrated view of molecular changes, histopathology and outcomes in kidney transplants
P F Halloran1, D G de Freitas, G Einecke
1Department of Medicine, Division of Nephrology & Immunology, University of Alberta, Edmonton, Canada. phil.halloran@ualberta.ca
Abstract:
Data-driven approaches to deteriorating kidney transplants, incorporating histologic, molecular and HLA antibody findings, have created a new understanding of transplant pathology and why transplants fail. Transplant dysfunction is best understood in terms of three elements: diseases, the active injury-repair response and the cumulative burden of injury. Progression to failure is mainly attributable to antibody-mediated rejection, nonadherence and glomerular disease. Antibody-mediated rejection usually develops late due to de novo HLA antibodies, particularly anti-class II, and is often C4d negative. Pure treated T cell-mediated rejection does not predispose to graft loss because it responds well, even with endothelialitis, but it may indicate nonadherence. The cumulative burden of injury results in atrophy-fibrosis (nephron loss), arterial fibrous intimal thickening and arteriolar hyalinosis, but these are not progressive without ongoing disease/injury, and do not explain progression. Calcineurin inhibitor toxicity has been overestimated because burden-of-injury lesions invite this default diagnosis when diseases such as antibody-mediated rejection are missed. Disease/injury triggers a stereotyped active injury-repair response, including de-differentiation, cell cycling and apoptosis. The active injury-repair response is the strongest correlate of organ function and future progression to failure, but should always prompt a search for the initiating injury or disease.
Insights
Understanding kidney transplant failure requires analyzing histologic, molecular, and HLA antibody data. Key factors include antibody-mediated rejection, nonadherence, and glomerular disease, alongside the active injury-repair response.
Area of Science:
- Nephrology
- Transplant Immunology
- Pathology
Background:
- Kidney transplant failure is a complex issue.
- Current understanding often overlooks key pathological drivers.
- Data-driven approaches offer new insights.
Purpose of the Study:
- To re-evaluate the causes of kidney transplant dysfunction and failure.
- To integrate histologic, molecular, and HLA antibody data for a comprehensive understanding.
- To identify key elements contributing to transplant pathology.
Main Methods:
- Utilized data-driven approaches incorporating histologic, molecular, and HLA antibody findings.
- Analyzed factors contributing to transplant dysfunction and failure.
- Examined the roles of disease, injury-repair response, and cumulative injury burden.
Main Results:
- Transplant dysfunction is characterized by disease, active injury-repair response, and cumulative injury.
- Antibody-mediated rejection (often C4d negative), nonadherence, and glomerular disease drive progression to failure.
- The active injury-repair response strongly correlates with organ function and future failure risk.
Conclusions:
- A new understanding of transplant pathology emerges from integrated data analysis.
- Antibody-mediated rejection and nonadherence are primary drivers of late graft loss.
- The active injury-repair response is a critical indicator, necessitating investigation into underlying causes.
Related Concept Videos
Kidney Transplant I: Introduction
Kidney Transplant II: Surgical Procedure
Kidney Transplant III: Nursing Management
Acute Kidney Injury IV: Diagnostic Studies and Prevention
Acute Kidney Injury II: Pathophysiology
