Published February 12, 2024 | Version v1

The Macrophage Landscape Across the Lifespan of a Human Cardiac Allograft

  • 1. ROR icon Texas Heart Institute
  • 1. ROR icon Baylor College of Medicine
  • 2. ROR icon Texas Children's Hospital
  • 3. ROR icon Texas Heart Institute
  • 4. ROR icon The University of Texas System

Description

BACKGROUND:

Much of our knowledge of organ rejection after transplantation is derived from rodent models.

METHODS:

We used single-nucleus RNA sequencing to investigate the inflammatory myocardial microenvironment in human pediatric cardiac allografts at different stages after transplantation. We distinguished donor- from recipient-derived cells using naturally occurring genetic variants embedded in single-nucleus RNA sequencing data.

RESULTS:

Donor-derived tissue resident macrophages, which accompany the allograft into the recipient, are lost over time after transplantation. In contrast, monocyte-derived macrophages from the recipient populate the heart within days after transplantation and form 2 macrophage populations: recipient MP1 and recipient MP2. Recipient MP2s have cell signatures similar to donor-derived resident macrophages; however, they lack signatures of pro-reparative phagocytic activity typical of donor-derived resident macrophages and instead express profibrotic genes. In contrast, recipient MP1s express genes consistent with hallmarks of cellular rejection. Our data suggest that recipient MP1s activate a subset of natural killer cells, turning them into a cytotoxic cell population through feed-forward signaling between recipient MP1s and natural killer cells.

CONCLUSIONS:

Our findings reveal an imbalance of donor-derived and recipient-derived macrophages in the pediatric cardiac allograft that contributes to allograft failure.

Files

Table S1 – Patient demographics and data source.pdf

Additional details

Funding

American Heart Association
Early Detection of Cardiac Allograft Vasculopathy in post-transplant Pediatric Hearts via Single-Cell Genomics 824138