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Biology subjects

Moslehi, J. J.

Publications and source records attributed to Moslehi, J. J..

2 recordsLinked to original sources

A CD4-CD8 T-cell circuit converts cardiac inflammation into tissue injury

Inflammatory T-cell infiltration is widely considered a hallmark of cardiac immune-mediated tissue injury, yet whether inflammation alone is sufficient to cause cardiac damage remains unclear. Using a spontaneous genetic model of immune checkpoint inhibitor myocarditis, we show that cardiac immune infiltration and tissue injury are separable processes. CD4+ T-cells promote disease by licensing pathogenic CD8+ T-cell responses through CD40L signaling, whereas perforin-dependent CD8+ cytotoxicity is specifically required to induce cardiomyocyte death and cardiac arrhythmias. Loss of perforin prevented cardiac injury and rescued survival despite persistent myocardial inflammation, demonstrating that inflammatory infiltration is insufficient to produce lethal myocarditis in the absence of a cytotoxic effector program. CD40L blockade similarly attenuated pathogenic CD8+ T-cell activation, myocardial inflammation, and mortality. These findings identify a cooperative CD4-CD8 T-cell circuit that governs autoimmune cardiac injury and establish that acquisition of cytotoxic effector function, rather than inflammation alone, determines the transition from immune infiltration to tissue destruction.

immunology↗

Single-nuclear RNA sequencing of endomyocardial biopsies identifies persistence of donor-recipient chimerism with distinct signatures in severe cardiac allograft vasculopathy

Cardiac allograft vasculopathy (CAV) is the leading cause of late allograft failure and mortality after heart transplantation. As current standards of diagnosis and treatment of CAV have significant limitations, understanding cell-specific responses may prove critical for developing improved detection strategies and novel therapeutics. This study is the first to successfully utilize human endomyocardial biopsy (EMB) samples to isolate large numbers of intact nuclei for single-nuclear transcriptomics. These data also lay the groundwork for ongoing experiments to study serial, routinely-collected EMB specimens after heart transplantation to identify novel biomarkers and pathways through which early CAV pathogenesis can be interrupted, thereby prolonging allograft survival.

systems biology↗