bioRxiv Science⌕ Search

Biology subjects

Rurik, J. G.

Publications and source records attributed to Rurik, J. G..

2 recordsLinked to original sources

Collateral Immune Cell Signaling Compromises the Efficacy of T-cell Engaging Therapies for Cardiac Fibrosis

Cardiac fibrosis is causally linked to heart failure progression and survival. Currently, there are no approved treatments that directly target cardiac fibrosis. Recent studies have identified a subset of activated cardiac fibroblasts distinct from myofibroblasts that are marked by fibroblast activation protein (FAP) expression, emerge in the injured and diseased heart through inflammatory signaling, and contribute to fibrosis. Using a genetic mouse model, we demonstrate the potential benefits of FAP+ fibroblast depletion following myocardial infarction. Unexpectedly, while FAP targeted bispecific T-cell engaging antibodies (BiTE(R) molecules) effectively eliminate FAP+ fibroblasts from the heart, they surprisingly lead to accelerated deterioration of cardiac function, enhanced remodeling, and increased scar size. FAP BiTE(R) molecules elicit a robust cytokine response within the heart with prominent activation of interferon gamma (IFNg) and CD40 ligand pathways. Target cell killing was independent of IFNg; and CD40L signaling and blockade of these pathways was sufficient to unmask the protective therapeutic effects of FAP+ fibroblast depletion. Mechanistically, we reveal that IFNg; signaling to fibroblasts drives the differentiation of an independent lineage of activated fibroblasts not typically found in the infarcted heart, which are responsible for the harmful effects of FAP BiTE(R) molecules. Collectively, these findings highlight a previously unrecognized cardiac liability of BiTE(R) molecules and inform the design of the next generation of therapeutics.

immunology↗

In vivo anti-FAP CAR T therapy reduces fibrosis and restores liver homeostasis in metabolic dysfunction-associated steatohepatitis

In this study, we aimed to determine the efficacy of in vivo chimeric antigen receptor (CAR) T cell therapy, generated by targeted lipid nanoparticles (t-LNPs), as an anti-fibrotic in metabolic dysfunction-associated steatotic liver disease. Hepatic fibrosis is a key predictor of mortality in liver disease, driven by fibrogenic hepatic stellate cells (HSCs). In heart, chimeric antigen receptor (CAR) T cells targeting fibroblast activation protein alpha (FAP) reduce murine cardiac fibrosis. However, the value of this approach in liver is unknown. We explored the anti-fibrotic potential of in vivo-generated anti-FAP CAR T cells in metabolic dysfunction-associated steatohepatitis (MASH), a highly prevalent disease with no approved anti-fibrotic therapies. We first established that FAP expression in both human and murine MASH is specific to HSCs. We then used flow cytometry, Sirius Red morphometry, digital pathology analysis, and single nuclear RNA-sequencing to assess the impact of anti-FAP CAR T cell therapy on murine MASH. Anti-CD5 targeted-LNPs carrying anti-FAPCAR mRNA generate activated, transient anti-FAP CAR T cells, which significantly reduced fibrosis by depleting pro-fibrogenic HSCs, and by modulating immune cells, endothelial cells and hepatocytes in a non-cell autonomous manner to mitigate inflammation and restore hepatic homeostasis. These findings reinforce the potential of in vivo CAR T therapy to attenuate a highly morbid and pervasive liver disease through integrated, multicellular salutary effects. One Sentence SummaryRNA-based treatment transiently reprograms immune cells to target scar-forming cells in fatty liver disease, thus improving liver health overall.

cell biology↗