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Biology subjects

Sengul, E.

Publications and source records attributed to Sengul, E..

2 recordsLinked to original sources

Absence of a prolonged macrophage and B cell response inhibits heart regeneration in the Mexican cavefish

A balanced immune response after cardiac injury is crucial to successful heart regeneration, but knowledge of what distinguishes a regenerative from a scarring response is still limited. The Mexican cavefish provides a unique comparative model to study heart regeneration and scarring within a single species. Surface-dwelling fish are capable of heart regeneration whereas their cave-dwelling Pachon counterparts lack this ability, similar to the human heart. Using single-cell transcriptomics and immune perturbations, we find significant differences in the immune response between the two populations. Unlike the transient response in the scarring Pachon, the regenerative surface fish heart generates an unexpected functionally active prolonged innate and adaptive immune response at the late stages of regeneration. Inhibiting the overall prolonged immune response impairs regeneration and cardiomyocyte proliferation. Further characterisation of specific cell types shows that late-present macrophages are phagocytic, and their depletion disrupts regeneration but not cardiomyocyte proliferation while inhibiting B cells impairs regeneration by reducing cardiomyocyte proliferation. This B cell response is conserved in zebrafish. Our findings reveal critical immune mechanisms distinguishing regenerative and non-regenerative responses, offering insights for potential therapeutic strategies to enhance heart repair.

developmental biology↗

Injured endocardium obtains characteristics of haemogenic endothelium during adult zebrafish heart regeneration

Reactivation of embryonic developmental pathways during regeneration aims to restore tissue architecture and functionality. We previously reported that following cryoinjury, a heterogeneous population of Runx1-expressing endocardial cells differentially upregulates genes associate with scarring and myofibroblast identity. Further analysis of our published RNAseq data alongside 5 publicly available datasets now identifies additional heterogeneity in the Runx1-positive injured endocardium. Here, we show that the endocardium also reactivates a dormant endocardial-to-haematopoietic transition (EHT) mechanism. Runx1-expressing endocardial cells upregulate genes associated with haemogenesis and morphologically display features of EHT. Live imaging shows cells budding off the endocardium and lineage analysis identifies overlap with leukocyte markers. Ablation of runx1 function further shifts differentiation of the endocardium towards the EHT fate. The identification of transient runx1-expressing cells transitioning towards myofibroblast or haemogenic endocardium identities demonstrates the complexity of the zebrafish endocardial injury response and highlights the role of Runx1 in regulating cell fate decisions in the endocardium.

developmental biology↗